<?xml version="1.0" encoding="UTF-8"?>
<rdf:RDF xmlns="http://purl.org/rss/1.0/"
 xmlns:dc="http://purl.org/dc/elements/1.1/"
 xmlns:dcterms="http://purl.org/dc/terms/"
 xmlns:cc="http://web.resource.org/cc/"
 xmlns:prism="http://prismstandard.org/namespaces/basic/2.0/"
 xmlns:rdf="http://www.w3.org/1999/02/22-rdf-syntax-ns#"
 xmlns:admin="http://webns.net/mvcb/"
 xmlns:content="http://purl.org/rss/1.0/modules/content/">
    <channel rdf:about="https://www.mdpi.com/rss/journal/dna">
		<title>DNA</title>
		<description>Latest open access articles published in DNA at https://www.mdpi.com/journal/dna</description>
		<link>https://www.mdpi.com/journal/dna</link>
		<admin:generatorAgent rdf:resource="https://www.mdpi.com/journal/dna"/>
		<admin:errorReportsTo rdf:resource="mailto:support@mdpi.com"/>
		<dc:publisher>MDPI</dc:publisher>
		<dc:language>en</dc:language>
		<dc:rights>Creative Commons Attribution (CC-BY)</dc:rights>
						<prism:copyright>MDPI</prism:copyright>
		<prism:rightsAgent>support@mdpi.com</prism:rightsAgent>
		<image rdf:resource="https://pub.mdpi-res.com/img/design/mdpi-pub-logo.png?13cf3b5bd783e021?1786617101"/>
				<items>
			<rdf:Seq>
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/3/38" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/3/37" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/3/36" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/3/35" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/3/34" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/3/33" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/3/32" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/3/31" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/2/30" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/2/29" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/2/28" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/2/27" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/2/26" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/2/25" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/2/24" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/2/23" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/2/22" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/2/21" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/2/20" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/2/19" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/2/18" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/2/17" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/1/16" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/1/15" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/1/14" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/1/13" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/1/12" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/1/11" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/1/10" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/1/9" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/1/8" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/1/7" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/1/6" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/1/5" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/1/4" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/1/3" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/1/2" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/6/1/1" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/4/60" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/4/59" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/4/58" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/4/57" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/4/56" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/4/55" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/4/54" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/4/53" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/4/52" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/4/51" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/4/50" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/4/49" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/4/48" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/4/47" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/4/46" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/3/45" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/3/44" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/3/43" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/3/42" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/3/41" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/3/40" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/3/39" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/3/38" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/3/37" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/3/36" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/3/35" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/3/34" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/3/33" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/3/32" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/2/31" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/2/30" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/2/29" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/2/28" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/2/27" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/2/26" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/2/25" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/2/24" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/2/23" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/2/22" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/2/21" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/2/20" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/2/19" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/2/18" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/2/17" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/1/16" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/1/15" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/1/14" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/1/13" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/1/12" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/1/11" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/1/10" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/1/9" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/1/8" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/1/7" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/1/6" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/1/5" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/1/4" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/1/3" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/1/2" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/5/1/1" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/4/4/38" />
            				<rdf:li rdf:resource="https://www.mdpi.com/2673-8856/4/4/37" />
                    	</rdf:Seq>
		</items>
				<cc:license rdf:resource="https://creativecommons.org/licenses/by/4.0/" />
	</channel>

        <item rdf:about="https://www.mdpi.com/2673-8856/6/3/38">

	<title>DNA, Vol. 6, Pages 38: NanoPrism: A Taxonomy-Guided Pipeline for Rapid Functional Profiling of Oxford Nanopore Long-Read Metagenomes</title>
	<link>https://www.mdpi.com/2673-8856/6/3/38</link>
	<description>Background/Objectives: Oxford Nanopore sequencing produces long reads quickly, but most functional profiling tools were developed for short reads or rely on assembly pipelines that are computationally costly and sensitive to long-read error rates. We present NanoPrism, a taxonomy-guided pipeline for rapid functional profiling of long-read metagenomes. Methods: NanoPrism (i) identifies sample composition with Kraken2, (ii) constructs compact species-specific coding sequence (CDS)&amp;amp;ndash;KEGG ortholog databases, and (iii) estimates ortholog abundances by direct minimap2 alignment of nanopore reads with single-copy marker normalization. We evaluated NanoPrism on simulated Pseudomonas aeruginosa PAO1 and PA14 reads and on ZymoBIOMICS mock-community datasets sequenced on GridION and PromethION platforms. Results: On the Zymo long-read datasets, NanoPrism achieved Pearson correlations of 0.917&amp;amp;ndash;0.922 against independent expected ortholog profiles under unit-sum normalization. On matched one-million-read subsets, NanoPrism achieved higher correlations and lower Jensen&amp;amp;ndash;Shannon distances and mean absolute errors than the evaluated DIAMOND-based MEGAN-LR workflow. Experiments that omitted one species at a time from the reference database showed that omission of low-abundance community members had limited effects on the aggregate KO profile, whereas omission of the dominant Listeria monocytogenes reference from the Log community reduced Pearson correlation from approximately 0.92 to 0.29. Conclusions: NanoPrism offers a computationally efficient option for taxonomy-guided functional profiling of bacterial isolates and defined microbial communities. Validation on complex clinical and environmental metagenomes, broader forms of taxonomic-classification error, and dedicated fungal benchmarks remain necessary.</description>
	<pubDate>2026-08-14</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 38: NanoPrism: A Taxonomy-Guided Pipeline for Rapid Functional Profiling of Oxford Nanopore Long-Read Metagenomes</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/3/38">doi: 10.3390/dna6030038</a></p>
	<p>Authors:
		Jiwoong Kim
		Shuheng Gan
		Harish Jawahar
		Ruheng Wang
		Dajiang Liu
		David E. Greenberg
		Yang Xie
		Xiaowei Zhan
		</p>
	<p>Background/Objectives: Oxford Nanopore sequencing produces long reads quickly, but most functional profiling tools were developed for short reads or rely on assembly pipelines that are computationally costly and sensitive to long-read error rates. We present NanoPrism, a taxonomy-guided pipeline for rapid functional profiling of long-read metagenomes. Methods: NanoPrism (i) identifies sample composition with Kraken2, (ii) constructs compact species-specific coding sequence (CDS)&amp;amp;ndash;KEGG ortholog databases, and (iii) estimates ortholog abundances by direct minimap2 alignment of nanopore reads with single-copy marker normalization. We evaluated NanoPrism on simulated Pseudomonas aeruginosa PAO1 and PA14 reads and on ZymoBIOMICS mock-community datasets sequenced on GridION and PromethION platforms. Results: On the Zymo long-read datasets, NanoPrism achieved Pearson correlations of 0.917&amp;amp;ndash;0.922 against independent expected ortholog profiles under unit-sum normalization. On matched one-million-read subsets, NanoPrism achieved higher correlations and lower Jensen&amp;amp;ndash;Shannon distances and mean absolute errors than the evaluated DIAMOND-based MEGAN-LR workflow. Experiments that omitted one species at a time from the reference database showed that omission of low-abundance community members had limited effects on the aggregate KO profile, whereas omission of the dominant Listeria monocytogenes reference from the Log community reduced Pearson correlation from approximately 0.92 to 0.29. Conclusions: NanoPrism offers a computationally efficient option for taxonomy-guided functional profiling of bacterial isolates and defined microbial communities. Validation on complex clinical and environmental metagenomes, broader forms of taxonomic-classification error, and dedicated fungal benchmarks remain necessary.</p>
	]]></content:encoded>

	<dc:title>NanoPrism: A Taxonomy-Guided Pipeline for Rapid Functional Profiling of Oxford Nanopore Long-Read Metagenomes</dc:title>
			<dc:creator>Jiwoong Kim</dc:creator>
			<dc:creator>Shuheng Gan</dc:creator>
			<dc:creator>Harish Jawahar</dc:creator>
			<dc:creator>Ruheng Wang</dc:creator>
			<dc:creator>Dajiang Liu</dc:creator>
			<dc:creator>David E. Greenberg</dc:creator>
			<dc:creator>Yang Xie</dc:creator>
			<dc:creator>Xiaowei Zhan</dc:creator>
		<dc:identifier>doi: 10.3390/dna6030038</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2026-08-14</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2026-08-14</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>3</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>38</prism:startingPage>
		<prism:doi>10.3390/dna6030038</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/3/38</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/6/3/37">

	<title>DNA, Vol. 6, Pages 37: Transcriptomic Profiling of Pim Kinases in Acute Leukemia Highlights Pim3 Upregulation and Its Association with Cytogenetic Risk and Stress Response Pathways</title>
	<link>https://www.mdpi.com/2673-8856/6/3/37</link>
	<description>Background/Objectives: The PIM kinase family, comprising three serine/threonine kinase isoforms (PIM1, PIM2, and PIM3), plays a fundamental role in various cancer types, where they are frequently described as regulators of proliferation, survival, and metabolic pathways. Acute leukemia is a group of hematological malignancies characterized by the uncontrolled clonal proliferation of hematopoietic stem cells, encompassing myeloid (AML) and lymphoblastic (ALL) lineages, which together present limited therapeutic options and poor clinical outcomes. This study investigated the correlation between PIM kinase signaling pathways and the clinicopathological features, molecular pathway interactions, and cytogenetic risk stratification of patients with acute leukemia. Methods: Microarray data and clinical information from AML and ALL patients were retrieved from the Gene Expression Omnibus database. The expression levels of PIM1, PIM2, and PIM3 were assessed across leukemia subtypes and cytogenetic risk groups using ANOVA or Kruskal&amp;amp;ndash;Wallis tests, with Bonferroni post hoc correction, performed in R (v4.5.1). A transcriptome-wide co-expression analysis was conducted using Spearman&amp;amp;rsquo;s rank correlation to identify genes correlated with each PIM isoform. Subsequently, Gene Set Enrichment Analysis (GSEA) was performed on pre-ranked gene lists using the clusterProfiler (v4.16.0) package and Hallmarks of Cancer gene signatures, with pathway significance determined by Benjamini&amp;amp;ndash;Hochberg-adjusted FDR &amp;amp;lt; 0.05. Results: Transcriptomic analysis revealed distinct expression patterns of the PIM kinase family between AML and ALL subtypes, identifying PIM3 as the predominantly dysregulated isoform, marked by significant overexpression across both lineages. Risk-stratified analysis further demonstrated that PIM expression is highly context-dependent, exhibiting dynamic variation across cytogenetic risk groups. Functional enrichment analysis highlighted a potential functional redundancy and compensatory mechanisms among PIM isoforms, with enriched pathways predominantly associated with stress tolerance, hypoxia adaptation, and inflammatory signaling, rather than classical proliferative signatures. Conclusions: Collectively, these findings position the PIM kinase family as a dynamically regulated axis in acute leukemia, deeply integrated with cytogenetic risk profiles and stress-adaptation mechanisms. The consistent upregulation of PIM3 and its correlation with inflammatory and hypoxic signatures suggest a potential role in facilitating tumor survival within adverse microenvironments.</description>
	<pubDate>2026-08-12</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 37: Transcriptomic Profiling of Pim Kinases in Acute Leukemia Highlights Pim3 Upregulation and Its Association with Cytogenetic Risk and Stress Response Pathways</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/3/37">doi: 10.3390/dna6030037</a></p>
	<p>Authors:
		Isabelle Magalhães Farias
		Guilherme Passos De Morais
		Deivide De Sousa Oliveira
		Beatriz Maria Dias Nogueira
		Caio Bezerra Machado
		Flávia Melo Cunha De Pinho Pessoa
		Anna Karolyna Da Costa Machado
		Leidivan Sousa Da Cunha
		Igor Valentim Barreto
		Giulia Freire Sampaio
		Maria Elisabete Amaral De Moraes
		Caroline Aquino Moreira-Nunes
		</p>
	<p>Background/Objectives: The PIM kinase family, comprising three serine/threonine kinase isoforms (PIM1, PIM2, and PIM3), plays a fundamental role in various cancer types, where they are frequently described as regulators of proliferation, survival, and metabolic pathways. Acute leukemia is a group of hematological malignancies characterized by the uncontrolled clonal proliferation of hematopoietic stem cells, encompassing myeloid (AML) and lymphoblastic (ALL) lineages, which together present limited therapeutic options and poor clinical outcomes. This study investigated the correlation between PIM kinase signaling pathways and the clinicopathological features, molecular pathway interactions, and cytogenetic risk stratification of patients with acute leukemia. Methods: Microarray data and clinical information from AML and ALL patients were retrieved from the Gene Expression Omnibus database. The expression levels of PIM1, PIM2, and PIM3 were assessed across leukemia subtypes and cytogenetic risk groups using ANOVA or Kruskal&amp;amp;ndash;Wallis tests, with Bonferroni post hoc correction, performed in R (v4.5.1). A transcriptome-wide co-expression analysis was conducted using Spearman&amp;amp;rsquo;s rank correlation to identify genes correlated with each PIM isoform. Subsequently, Gene Set Enrichment Analysis (GSEA) was performed on pre-ranked gene lists using the clusterProfiler (v4.16.0) package and Hallmarks of Cancer gene signatures, with pathway significance determined by Benjamini&amp;amp;ndash;Hochberg-adjusted FDR &amp;amp;lt; 0.05. Results: Transcriptomic analysis revealed distinct expression patterns of the PIM kinase family between AML and ALL subtypes, identifying PIM3 as the predominantly dysregulated isoform, marked by significant overexpression across both lineages. Risk-stratified analysis further demonstrated that PIM expression is highly context-dependent, exhibiting dynamic variation across cytogenetic risk groups. Functional enrichment analysis highlighted a potential functional redundancy and compensatory mechanisms among PIM isoforms, with enriched pathways predominantly associated with stress tolerance, hypoxia adaptation, and inflammatory signaling, rather than classical proliferative signatures. Conclusions: Collectively, these findings position the PIM kinase family as a dynamically regulated axis in acute leukemia, deeply integrated with cytogenetic risk profiles and stress-adaptation mechanisms. The consistent upregulation of PIM3 and its correlation with inflammatory and hypoxic signatures suggest a potential role in facilitating tumor survival within adverse microenvironments.</p>
	]]></content:encoded>

	<dc:title>Transcriptomic Profiling of Pim Kinases in Acute Leukemia Highlights Pim3 Upregulation and Its Association with Cytogenetic Risk and Stress Response Pathways</dc:title>
			<dc:creator>Isabelle Magalhães Farias</dc:creator>
			<dc:creator>Guilherme Passos De Morais</dc:creator>
			<dc:creator>Deivide De Sousa Oliveira</dc:creator>
			<dc:creator>Beatriz Maria Dias Nogueira</dc:creator>
			<dc:creator>Caio Bezerra Machado</dc:creator>
			<dc:creator>Flávia Melo Cunha De Pinho Pessoa</dc:creator>
			<dc:creator>Anna Karolyna Da Costa Machado</dc:creator>
			<dc:creator>Leidivan Sousa Da Cunha</dc:creator>
			<dc:creator>Igor Valentim Barreto</dc:creator>
			<dc:creator>Giulia Freire Sampaio</dc:creator>
			<dc:creator>Maria Elisabete Amaral De Moraes</dc:creator>
			<dc:creator>Caroline Aquino Moreira-Nunes</dc:creator>
		<dc:identifier>doi: 10.3390/dna6030037</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2026-08-12</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2026-08-12</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>3</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>37</prism:startingPage>
		<prism:doi>10.3390/dna6030037</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/3/37</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/6/3/36">

	<title>DNA, Vol. 6, Pages 36: A Saccharomyces cerevisiae Model for the Overexpression of the Base Excision DNA Repair Protein Ntg1 Reveals Novel Genetic Interactions</title>
	<link>https://www.mdpi.com/2673-8856/6/3/36</link>
	<description>Background/Objectives: The base excision repair (BER) pathway repairs oxidative DNA damage, a common and detrimental form of damage to the genome. Although biochemical steps in BER have been well defined, little is understood about how the pathway is regulated. Such regulation is critical, as cells must respond rapidly to DNA damage while avoiding aberrant activation of repair proteins that can produce DNA damage as intermediates in the repair pathway. Indeed, overexpression of the human BER protein NTHL1, a DNA N-glycosylase, can cause genomic instability and early cellular hallmarks of cancer. Methods: We developed a Saccharomyces cerevisiae model to explore how overexpression of NTHL1 may impair cellular function. Results: Overexpression of Ntg1, the budding yeast orthologue of NTHL1, impairs cell growth. To dissect mechanisms underlying this growth defect, we overexpressed either wild-type Ntg1 or a catalytically inactive variant of Ntg1 (ntg1catdead). Consistent with results obtained for NTHL1, both variants of Ntg1 impair cell growth, but only the wild-type protein causes accumulation of double-strand breaks and chromosome loss. We screened a panel of DNA repair mutants for resistance/sensitivity to overexpression of wild-type Ntg1 or ntg1catdead. This analysis identified several cellular pathways that protect cells from Ntg1-induced damage, providing insight into the interplay between DNA repair pathways. Finally, we identified a link to SUMOylation and probed into how this post-translational modification could contribute to regulation of Ntg1 function. Conclusions: This study describes a budding yeast system to understand how cells regulate and respond to dysregulation of the BER pathway.</description>
	<pubDate>2026-07-30</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 36: A Saccharomyces cerevisiae Model for the Overexpression of the Base Excision DNA Repair Protein Ntg1 Reveals Novel Genetic Interactions</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/3/36">doi: 10.3390/dna6030036</a></p>
	<p>Authors:
		Annie J. McPherson
		Ziad M. Jowhar
		Paul W. Doetsch
		Anita H. Corbett
		</p>
	<p>Background/Objectives: The base excision repair (BER) pathway repairs oxidative DNA damage, a common and detrimental form of damage to the genome. Although biochemical steps in BER have been well defined, little is understood about how the pathway is regulated. Such regulation is critical, as cells must respond rapidly to DNA damage while avoiding aberrant activation of repair proteins that can produce DNA damage as intermediates in the repair pathway. Indeed, overexpression of the human BER protein NTHL1, a DNA N-glycosylase, can cause genomic instability and early cellular hallmarks of cancer. Methods: We developed a Saccharomyces cerevisiae model to explore how overexpression of NTHL1 may impair cellular function. Results: Overexpression of Ntg1, the budding yeast orthologue of NTHL1, impairs cell growth. To dissect mechanisms underlying this growth defect, we overexpressed either wild-type Ntg1 or a catalytically inactive variant of Ntg1 (ntg1catdead). Consistent with results obtained for NTHL1, both variants of Ntg1 impair cell growth, but only the wild-type protein causes accumulation of double-strand breaks and chromosome loss. We screened a panel of DNA repair mutants for resistance/sensitivity to overexpression of wild-type Ntg1 or ntg1catdead. This analysis identified several cellular pathways that protect cells from Ntg1-induced damage, providing insight into the interplay between DNA repair pathways. Finally, we identified a link to SUMOylation and probed into how this post-translational modification could contribute to regulation of Ntg1 function. Conclusions: This study describes a budding yeast system to understand how cells regulate and respond to dysregulation of the BER pathway.</p>
	]]></content:encoded>

	<dc:title>A Saccharomyces cerevisiae Model for the Overexpression of the Base Excision DNA Repair Protein Ntg1 Reveals Novel Genetic Interactions</dc:title>
			<dc:creator>Annie J. McPherson</dc:creator>
			<dc:creator>Ziad M. Jowhar</dc:creator>
			<dc:creator>Paul W. Doetsch</dc:creator>
			<dc:creator>Anita H. Corbett</dc:creator>
		<dc:identifier>doi: 10.3390/dna6030036</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2026-07-30</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2026-07-30</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>3</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>36</prism:startingPage>
		<prism:doi>10.3390/dna6030036</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/3/36</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/6/3/35">

	<title>DNA, Vol. 6, Pages 35: Genotyping of the River Shad (Tenualosa ilisha) Revealed Female Heterogametic Sex Determination System and a Single Genetic Stock in Bangladesh</title>
	<link>https://www.mdpi.com/2673-8856/6/3/35</link>
	<description>The migratory shad, Hilsa (Tenualosa ilisha) is an iconic species of profound economic and cultural value across the Indian sub-continent due to its delicious taste and significant contributions to gross domestic product (GDP). Lack of fundamental genomic data regarding sex determination, impedes development of optimized breeding techniques and target conservation goals. In this study, a next-generation sequencing (NGS)-based genotyping technique was applied to identify sex-linked markers, modes of sex determination, putative sex-determining genes and the population genomic structure of Hilsa. Genotyping of 94 Hilsa individuals (46 males and 48 females) collected from four distinct locations of Bangladesh (three different river systems and Bay of Bengal as a marine site) revealed 31,696 single-nucleotide polymorphisms (SNPs) and 12,754 presence/absence (PA) loci. Among these SNPs and PA, we identified 20 SNPs that were heterozygous in females but homozygous in males and 4 PA loci which were only present in females. Therefore, this study conclusively identifies a female heterogametic (ZZ/ZW) sex determination system in Hilsa. Comparative BLAST analysis using sex-linked loci against Hilsa genomes resulted in the identification of five candidate genes potentially involved in sex-determination pathways. Moreover, population genetic analysis revealed low spatial genetic differentiation among the four sampling sites but notable divergence between males and females (minimum 1.8&amp;amp;ndash;2.8% variation in principal coordinate analysis). For most of the sampling sites, higher observed heterozygosity (Ho) compared to expected heterozygosity (He) is the indicative of a robust population status with minimal evidence of inbreeding. Our study provides a baseline for further improving the management and conservation of the wild populations of the species.</description>
	<pubDate>2026-07-28</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 35: Genotyping of the River Shad (Tenualosa ilisha) Revealed Female Heterogametic Sex Determination System and a Single Genetic Stock in Bangladesh</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/3/35">doi: 10.3390/dna6030035</a></p>
	<p>Authors:
		Md. Nuruzzaman Khan
		Wasim Akram
		Foyez Shams
		M. Niamul Naser
		David A Hurwood
		Tariq Ezaz
		Md. Lifat Rahi
		</p>
	<p>The migratory shad, Hilsa (Tenualosa ilisha) is an iconic species of profound economic and cultural value across the Indian sub-continent due to its delicious taste and significant contributions to gross domestic product (GDP). Lack of fundamental genomic data regarding sex determination, impedes development of optimized breeding techniques and target conservation goals. In this study, a next-generation sequencing (NGS)-based genotyping technique was applied to identify sex-linked markers, modes of sex determination, putative sex-determining genes and the population genomic structure of Hilsa. Genotyping of 94 Hilsa individuals (46 males and 48 females) collected from four distinct locations of Bangladesh (three different river systems and Bay of Bengal as a marine site) revealed 31,696 single-nucleotide polymorphisms (SNPs) and 12,754 presence/absence (PA) loci. Among these SNPs and PA, we identified 20 SNPs that were heterozygous in females but homozygous in males and 4 PA loci which were only present in females. Therefore, this study conclusively identifies a female heterogametic (ZZ/ZW) sex determination system in Hilsa. Comparative BLAST analysis using sex-linked loci against Hilsa genomes resulted in the identification of five candidate genes potentially involved in sex-determination pathways. Moreover, population genetic analysis revealed low spatial genetic differentiation among the four sampling sites but notable divergence between males and females (minimum 1.8&amp;amp;ndash;2.8% variation in principal coordinate analysis). For most of the sampling sites, higher observed heterozygosity (Ho) compared to expected heterozygosity (He) is the indicative of a robust population status with minimal evidence of inbreeding. Our study provides a baseline for further improving the management and conservation of the wild populations of the species.</p>
	]]></content:encoded>

	<dc:title>Genotyping of the River Shad (Tenualosa ilisha) Revealed Female Heterogametic Sex Determination System and a Single Genetic Stock in Bangladesh</dc:title>
			<dc:creator>Md. Nuruzzaman Khan</dc:creator>
			<dc:creator>Wasim Akram</dc:creator>
			<dc:creator>Foyez Shams</dc:creator>
			<dc:creator>M. Niamul Naser</dc:creator>
			<dc:creator>David A Hurwood</dc:creator>
			<dc:creator>Tariq Ezaz</dc:creator>
			<dc:creator>Md. Lifat Rahi</dc:creator>
		<dc:identifier>doi: 10.3390/dna6030035</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2026-07-28</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2026-07-28</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>3</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>35</prism:startingPage>
		<prism:doi>10.3390/dna6030035</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/3/35</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/6/3/34">

	<title>DNA, Vol. 6, Pages 34: New WC-Type DNA/RNA Microhelices Determined by a DFT Study with the Comparison of Their Structural Geometric Parameters and Their Intra-/Intermolecular H-Bonds</title>
	<link>https://www.mdpi.com/2673-8856/6/3/34</link>
	<description>Background: The computation of DNA is a field of growing interest, primarily focused on studying its individual constituents, but a few authors have gone further by analyzing standard microhelices with DFT methods. Objective: Because these studies did not consider that, at the atomic level, other possible DNA and RNA helices with the WC-type arrangement are also stable, this is the main objective here. Methods: Therefore, forty microhelices were optimized in a simple model with three WC base pairs composed of nucleosides using the M06-2X DFT method. Results: Based on the spatial arrangement of the intramolecular H-bond with the 2&amp;amp;prime;-OH group, five types of RNA:RNA double microhelices were obtained; by this arrangement, they were related to the corresponding DNA:DNA ones. In addition to A-type and B-type microhelices, two new types were found, conveniently named B1-type and C-type. The structural geometric parameters of all these optimized microhelices in an isolated state were compared and analyzed in detail. The total counterpoise-corrected interaction energies were determined in these microhelices. RNA microhelices with different types of intramolecular H-bond arrangements involving the 2&amp;amp;prime;-OH group in each single strand were also optimized, as well as their corresponding DNA helices having the same spatial arrangement. Different DNA:RNA hybrid microhelices were also considered, and their structural geometric parameters were compared to those of other microhelices. Conclusions: the identification and detailed characterization, for the first time, of ten main stable spatial geometric shapes with different exocyclic and endocyclic torsional angles. Several relationships among the structural geometric parameters of these microhelices were also established. Although the new DNA/RNA helix types containing theoretically obtained WC pairs have not been found in biological helices, they could be synthesized and they may open the possibility of being used for other purposes.</description>
	<pubDate>2026-07-21</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 34: New WC-Type DNA/RNA Microhelices Determined by a DFT Study with the Comparison of Their Structural Geometric Parameters and Their Intra-/Intermolecular H-Bonds</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/3/34">doi: 10.3390/dna6030034</a></p>
	<p>Authors:
		Mauricio Alcolea Palafox
		Josefa Isasi
		</p>
	<p>Background: The computation of DNA is a field of growing interest, primarily focused on studying its individual constituents, but a few authors have gone further by analyzing standard microhelices with DFT methods. Objective: Because these studies did not consider that, at the atomic level, other possible DNA and RNA helices with the WC-type arrangement are also stable, this is the main objective here. Methods: Therefore, forty microhelices were optimized in a simple model with three WC base pairs composed of nucleosides using the M06-2X DFT method. Results: Based on the spatial arrangement of the intramolecular H-bond with the 2&amp;amp;prime;-OH group, five types of RNA:RNA double microhelices were obtained; by this arrangement, they were related to the corresponding DNA:DNA ones. In addition to A-type and B-type microhelices, two new types were found, conveniently named B1-type and C-type. The structural geometric parameters of all these optimized microhelices in an isolated state were compared and analyzed in detail. The total counterpoise-corrected interaction energies were determined in these microhelices. RNA microhelices with different types of intramolecular H-bond arrangements involving the 2&amp;amp;prime;-OH group in each single strand were also optimized, as well as their corresponding DNA helices having the same spatial arrangement. Different DNA:RNA hybrid microhelices were also considered, and their structural geometric parameters were compared to those of other microhelices. Conclusions: the identification and detailed characterization, for the first time, of ten main stable spatial geometric shapes with different exocyclic and endocyclic torsional angles. Several relationships among the structural geometric parameters of these microhelices were also established. Although the new DNA/RNA helix types containing theoretically obtained WC pairs have not been found in biological helices, they could be synthesized and they may open the possibility of being used for other purposes.</p>
	]]></content:encoded>

	<dc:title>New WC-Type DNA/RNA Microhelices Determined by a DFT Study with the Comparison of Their Structural Geometric Parameters and Their Intra-/Intermolecular H-Bonds</dc:title>
			<dc:creator>Mauricio Alcolea Palafox</dc:creator>
			<dc:creator>Josefa Isasi</dc:creator>
		<dc:identifier>doi: 10.3390/dna6030034</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2026-07-21</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2026-07-21</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>3</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>34</prism:startingPage>
		<prism:doi>10.3390/dna6030034</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/3/34</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/6/3/33">

	<title>DNA, Vol. 6, Pages 33: Beyond the Test Result: A Two-Year Real-World Characterization of Quantitative Aspergillus PCR in a Tertiary Pulmonology Center</title>
	<link>https://www.mdpi.com/2673-8856/6/3/33</link>
	<description>Background: Pulmonary aspergillosis remains underdiagnosed in patients with structural lung disease, as conventional methods might miss a part of cases. There are few real-world data on quantitative PCR performance outside immunocompromised populations. We evaluated the Aspergillus ELITe MGB Kit across two years of routine clinical practice at a tertiary pulmonology center. Methods: We retrospectively analyzed 492 consecutive ELITe MGB PCR tests (October 2023&amp;amp;ndash;September 2025) at the Marius Nasta Institute of Pneumology, Bucharest, Romania, performed on bronchoalveolar aspirate (n = 219), lavage (BAL; n = 202), and plasma (n = 65). Results were correlated with microscopy, fungal culture, imaging, and host risk factors where available. Results: Of 451 evaluable tests, 140 (31.0%) were significant, 7 (1.6%) low-level detected, and 304 (67.4%) non-significant or negative. Combined positivity was 32.6%. Aspirate outperformed BAL in positivity rate (42.8% vs. 30.8%; p &amp;amp;asymp; 0.013); aspirate and BAL had similar median DNA loads (120 copies/mL each) but aspirate showed a longer tail toward very high loads (p &amp;amp;lt; 0.001); raw median DNA loads (67 vs. 120 copies/mL) were not directly comparable between matrices due to differing matrix-specific lower limits of quantification (50 vs. 120 copies/mL, reflecting BAL dilution). Plasma positivity was 1.8%. Positivity peaked in May&amp;amp;ndash;June (42.5&amp;amp;ndash;45.5%), contrasting with the classical autumn pattern. Chronic obstructive pulmonary disease (COPD) was the dominant risk factor (OR = 3.45). PCR exclusively detected Aspergillus in the majority of cases where microscopy and culture were negative. Conclusions: The ELITe MGB kit demonstrates clinically meaningful diagnostic yield in a real-world pulmonology cohort. Aspirate consistently outperforms BAL, and the low-level detected category identifies a borderline population warranting prospective validation. The unexpected spring&amp;amp;ndash;summer positivity peak suggests a greater role for post-viral aspergillosis than previously recognized in this setting.</description>
	<pubDate>2026-07-14</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 33: Beyond the Test Result: A Two-Year Real-World Characterization of Quantitative Aspergillus PCR in a Tertiary Pulmonology Center</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/3/33">doi: 10.3390/dna6030033</a></p>
	<p>Authors:
		Madalina (Preda) Solomon
		Cristina Luciana Neacșu
		Oana Popescu
		Loredana Sabina Cornelia Manolescu
		</p>
	<p>Background: Pulmonary aspergillosis remains underdiagnosed in patients with structural lung disease, as conventional methods might miss a part of cases. There are few real-world data on quantitative PCR performance outside immunocompromised populations. We evaluated the Aspergillus ELITe MGB Kit across two years of routine clinical practice at a tertiary pulmonology center. Methods: We retrospectively analyzed 492 consecutive ELITe MGB PCR tests (October 2023&amp;amp;ndash;September 2025) at the Marius Nasta Institute of Pneumology, Bucharest, Romania, performed on bronchoalveolar aspirate (n = 219), lavage (BAL; n = 202), and plasma (n = 65). Results were correlated with microscopy, fungal culture, imaging, and host risk factors where available. Results: Of 451 evaluable tests, 140 (31.0%) were significant, 7 (1.6%) low-level detected, and 304 (67.4%) non-significant or negative. Combined positivity was 32.6%. Aspirate outperformed BAL in positivity rate (42.8% vs. 30.8%; p &amp;amp;asymp; 0.013); aspirate and BAL had similar median DNA loads (120 copies/mL each) but aspirate showed a longer tail toward very high loads (p &amp;amp;lt; 0.001); raw median DNA loads (67 vs. 120 copies/mL) were not directly comparable between matrices due to differing matrix-specific lower limits of quantification (50 vs. 120 copies/mL, reflecting BAL dilution). Plasma positivity was 1.8%. Positivity peaked in May&amp;amp;ndash;June (42.5&amp;amp;ndash;45.5%), contrasting with the classical autumn pattern. Chronic obstructive pulmonary disease (COPD) was the dominant risk factor (OR = 3.45). PCR exclusively detected Aspergillus in the majority of cases where microscopy and culture were negative. Conclusions: The ELITe MGB kit demonstrates clinically meaningful diagnostic yield in a real-world pulmonology cohort. Aspirate consistently outperforms BAL, and the low-level detected category identifies a borderline population warranting prospective validation. The unexpected spring&amp;amp;ndash;summer positivity peak suggests a greater role for post-viral aspergillosis than previously recognized in this setting.</p>
	]]></content:encoded>

	<dc:title>Beyond the Test Result: A Two-Year Real-World Characterization of Quantitative Aspergillus PCR in a Tertiary Pulmonology Center</dc:title>
			<dc:creator>Madalina (Preda) Solomon</dc:creator>
			<dc:creator>Cristina Luciana Neacșu</dc:creator>
			<dc:creator>Oana Popescu</dc:creator>
			<dc:creator>Loredana Sabina Cornelia Manolescu</dc:creator>
		<dc:identifier>doi: 10.3390/dna6030033</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2026-07-14</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2026-07-14</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>3</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>33</prism:startingPage>
		<prism:doi>10.3390/dna6030033</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/3/33</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/6/3/32">

	<title>DNA, Vol. 6, Pages 32: The Genomic Revolution in Pulmonary Medicine: A Comprehensive Narrative Review of Genomic and Multi-Omic Technologies in Respiratory Conditions</title>
	<link>https://www.mdpi.com/2673-8856/6/3/32</link>
	<description>Chronic respiratory diseases, including chronic obstructive pulmonary disease (COPD), asthma, and interstitial lung diseases (ILDs), represent a major global health burden. Their significant clinical and biological heterogeneity complicates diagnosis and limits the efficacy of traditional, one-size-fits-all management approaches. The advent of high-throughput genomic and multi-omic technologies has initiated a paradigm shift from syndromic classification to molecular-based endotyping. A narrative review of the literature was performed, synthesising foundational and recent research in the genomics, epigenomics, and multi-omics of chronic respiratory diseases. Key studies were selected based on their relevance to genetic architecture, biomarker development, and translational applications in precision medicine. We discuss the complex genetic architecture of pulmonary conditions, highlighting the contribution of both rare, high-penetrance variants, such as SERPINA1, CFTR, and BMPR2, and polygenic risk from many common variants, such as HHIP, FAM13A, and IL33. We provide detailed analyses of polygenic risk scores (PRSs) for COPD and asthma, including their construction, validation across ancestries, and predictive performance. We detail how integrative multi-omic approaches, including transcriptomics, proteomics, and metabolomics, are successfully defining molecular endotypes, such as Type 2-high asthma, which, in turn, inform the use of targeted biologic therapies. Finally, we review the development of molecular diagnostics, including metagenomic sequencing of infections and liquid biopsies for lung cancer and the development of prognostic biomarkers. The genomic revolution is transforming pulmonary medicine through the discovery of novel disease pathways, precise molecular classification, and the recognition of new therapeutic targets. Despite major challenges in functional interpretation, data integration, and clinical&amp;amp;ndash;translational equity, these technologies hold the key to a new era of personalised respiratory health and precision medicine.</description>
	<pubDate>2026-07-02</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 32: The Genomic Revolution in Pulmonary Medicine: A Comprehensive Narrative Review of Genomic and Multi-Omic Technologies in Respiratory Conditions</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/3/32">doi: 10.3390/dna6030032</a></p>
	<p>Authors:
		Arihant Surana
		Aditya Singh
		</p>
	<p>Chronic respiratory diseases, including chronic obstructive pulmonary disease (COPD), asthma, and interstitial lung diseases (ILDs), represent a major global health burden. Their significant clinical and biological heterogeneity complicates diagnosis and limits the efficacy of traditional, one-size-fits-all management approaches. The advent of high-throughput genomic and multi-omic technologies has initiated a paradigm shift from syndromic classification to molecular-based endotyping. A narrative review of the literature was performed, synthesising foundational and recent research in the genomics, epigenomics, and multi-omics of chronic respiratory diseases. Key studies were selected based on their relevance to genetic architecture, biomarker development, and translational applications in precision medicine. We discuss the complex genetic architecture of pulmonary conditions, highlighting the contribution of both rare, high-penetrance variants, such as SERPINA1, CFTR, and BMPR2, and polygenic risk from many common variants, such as HHIP, FAM13A, and IL33. We provide detailed analyses of polygenic risk scores (PRSs) for COPD and asthma, including their construction, validation across ancestries, and predictive performance. We detail how integrative multi-omic approaches, including transcriptomics, proteomics, and metabolomics, are successfully defining molecular endotypes, such as Type 2-high asthma, which, in turn, inform the use of targeted biologic therapies. Finally, we review the development of molecular diagnostics, including metagenomic sequencing of infections and liquid biopsies for lung cancer and the development of prognostic biomarkers. The genomic revolution is transforming pulmonary medicine through the discovery of novel disease pathways, precise molecular classification, and the recognition of new therapeutic targets. Despite major challenges in functional interpretation, data integration, and clinical&amp;amp;ndash;translational equity, these technologies hold the key to a new era of personalised respiratory health and precision medicine.</p>
	]]></content:encoded>

	<dc:title>The Genomic Revolution in Pulmonary Medicine: A Comprehensive Narrative Review of Genomic and Multi-Omic Technologies in Respiratory Conditions</dc:title>
			<dc:creator>Arihant Surana</dc:creator>
			<dc:creator>Aditya Singh</dc:creator>
		<dc:identifier>doi: 10.3390/dna6030032</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2026-07-02</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2026-07-02</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>3</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>32</prism:startingPage>
		<prism:doi>10.3390/dna6030032</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/3/32</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/6/3/31">

	<title>DNA, Vol. 6, Pages 31: Computational Analysis of Missense Single Nucleotide Variants (SNVs) in the GHSR Gene Linked to Obesity</title>
	<link>https://www.mdpi.com/2673-8856/6/3/31</link>
	<description>Background/Objectives: In recent years, efforts to understand obesity&amp;amp;rsquo;s pathophysiology have focused on satiety signals in the hypothalamus and hormonal signalling in orexigenic and anorexigenic neurons. These signals, linked to hunger, satiety, and energy expenditure, are influenced by peptides that activate or suppress specific pathways. However, different phenotypes related to body composition result from mutations (allelic variants) in genes that encode these proteins, particularly peptide receptors. Specifically, the hormone receptor ghrelin (GHSR), located on the surface of orexigenic neurons, has been linked to the regulation of hunger. Additionally, the production and secretion of ghrelin, a peptide hormone produced by the stomach, may exhibit varying sensitivity in its receptor based on an individual&amp;amp;rsquo;s nutritional status. Moreover, allelic variants of the GHSR gene may potentially lead to significant alterations in signalling provided by the GHSR receptor, resulting in modified hormone-binding phenotypes. In this context, the search for allelic variants that can account for diverse phenotypes, whether thinness or overweight/obesity, can aid in comprehending the pathway and defining new strategies for early laboratory diagnosis or target peptides for treatment. Methods: Initial mining produced 373 non-random SNPs located in missense regions. A total of 373 missense variants were initially identified in the GHSR gene. After applying a global minor allele frequency (MAF) filter of &amp;amp;lt;1%, 20 rare missense variants remained. Results: These variants were subsequently analyzed using nine in silico pathogenicity prediction tools, resulting in the prioritization of eight variants predicted as deleterious by at least four algorithms. These variants were further analysed using the HOPE project web server and the SwissModel database. Conclusions: Through these analyses and future investigations into these mutations, we may gain a more comprehensive understanding of the implications of these mutations and their potential correlation with the pathophysiology of obesity.</description>
	<pubDate>2026-06-29</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 31: Computational Analysis of Missense Single Nucleotide Variants (SNVs) in the GHSR Gene Linked to Obesity</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/3/31">doi: 10.3390/dna6030031</a></p>
	<p>Authors:
		Bruno Fonseca Nunes
		Lau Pontaldi Brandão
		Fabíola Branco Filippin-Monteiro
		</p>
	<p>Background/Objectives: In recent years, efforts to understand obesity&amp;amp;rsquo;s pathophysiology have focused on satiety signals in the hypothalamus and hormonal signalling in orexigenic and anorexigenic neurons. These signals, linked to hunger, satiety, and energy expenditure, are influenced by peptides that activate or suppress specific pathways. However, different phenotypes related to body composition result from mutations (allelic variants) in genes that encode these proteins, particularly peptide receptors. Specifically, the hormone receptor ghrelin (GHSR), located on the surface of orexigenic neurons, has been linked to the regulation of hunger. Additionally, the production and secretion of ghrelin, a peptide hormone produced by the stomach, may exhibit varying sensitivity in its receptor based on an individual&amp;amp;rsquo;s nutritional status. Moreover, allelic variants of the GHSR gene may potentially lead to significant alterations in signalling provided by the GHSR receptor, resulting in modified hormone-binding phenotypes. In this context, the search for allelic variants that can account for diverse phenotypes, whether thinness or overweight/obesity, can aid in comprehending the pathway and defining new strategies for early laboratory diagnosis or target peptides for treatment. Methods: Initial mining produced 373 non-random SNPs located in missense regions. A total of 373 missense variants were initially identified in the GHSR gene. After applying a global minor allele frequency (MAF) filter of &amp;amp;lt;1%, 20 rare missense variants remained. Results: These variants were subsequently analyzed using nine in silico pathogenicity prediction tools, resulting in the prioritization of eight variants predicted as deleterious by at least four algorithms. These variants were further analysed using the HOPE project web server and the SwissModel database. Conclusions: Through these analyses and future investigations into these mutations, we may gain a more comprehensive understanding of the implications of these mutations and their potential correlation with the pathophysiology of obesity.</p>
	]]></content:encoded>

	<dc:title>Computational Analysis of Missense Single Nucleotide Variants (SNVs) in the GHSR Gene Linked to Obesity</dc:title>
			<dc:creator>Bruno Fonseca Nunes</dc:creator>
			<dc:creator>Lau Pontaldi Brandão</dc:creator>
			<dc:creator>Fabíola Branco Filippin-Monteiro</dc:creator>
		<dc:identifier>doi: 10.3390/dna6030031</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2026-06-29</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2026-06-29</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>3</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>31</prism:startingPage>
		<prism:doi>10.3390/dna6030031</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/3/31</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/6/2/30">

	<title>DNA, Vol. 6, Pages 30: Eosinophilic Esophagitis and Inflammatory Bowel Disease: Genetic Susceptibility, Epigenetic Overlap, and Immune Dysregulation in Dual Diagnosis</title>
	<link>https://www.mdpi.com/2673-8856/6/2/30</link>
	<description>Eosinophilic esophagitis (EoE) and inflammatory bowel disease (IBD) are immune-mediated disorders of the gastrointestinal (GI) tract that, despite involving different tissues, are increasingly recognized to coexist. Epidemiologic studies demonstrate a bidirectional association, with patients affected by one condition showing a higher-than-expected prevalence of the other, suggesting shared susceptibility rather than incidental overlap. Genetic and epigenetic data support partial convergence in immune regulatory pathways, while epithelial barrier dysfunction and antigen-driven immune activation emerge as common upstream features. Overlapping cytokine networks, including IL-4, IL-13, and IL-23 signaling, contribute to chronic inflammation in both diseases, although differences in tissue environment and immune dominance give rise to distinct inflammatory phenotypes and clinical behavior. Clinical outcomes in patients with dual diagnoses appear heterogeneous, with available data suggesting neither uniformly worsened nor clearly protective disease courses, underscoring the complexity of shared immune mechanisms operating within different anatomic contexts. Beyond inflammatory activity, coexistence of EoE and IBD poses important nutritional and quality-of-life challenges, as overlapping dietary restrictions and chronic symptoms increase the risk of malnutrition, micronutrient deficiencies, and psychosocial burden. Current therapies remain disease-specific, with strong evidence supporting proton pump inhibitors, swallowed topical steroids, dietary therapy, and dupilumab in EoE, and biologics and small molecules targeting TNF-&amp;amp;alpha;, IL-12/23, IL-23, integrins, and JAK&amp;amp;ndash;STAT signaling in IBD, while evidence guiding treatment in patients with dual diagnosis remains limited. Together, current evidence supports a framework of shared immune machinery with tissue-specific expression that explains coexistence while preserving the distinct identities of EoE and IBD. By integrating emerging genetic, immunologic, and clinical evidence, this review aims to provide a framework for understanding and managing patients with coexisting EoE and IBD.</description>
	<pubDate>2026-06-17</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 30: Eosinophilic Esophagitis and Inflammatory Bowel Disease: Genetic Susceptibility, Epigenetic Overlap, and Immune Dysregulation in Dual Diagnosis</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/2/30">doi: 10.3390/dna6020030</a></p>
	<p>Authors:
		Fares Jamal
		Alejandro J. Gonzalez
		Sandra Elmasry
		Amani Elshaer
		Fangfang Wang
		Allon Kahn
		Talha A. Malik
		</p>
	<p>Eosinophilic esophagitis (EoE) and inflammatory bowel disease (IBD) are immune-mediated disorders of the gastrointestinal (GI) tract that, despite involving different tissues, are increasingly recognized to coexist. Epidemiologic studies demonstrate a bidirectional association, with patients affected by one condition showing a higher-than-expected prevalence of the other, suggesting shared susceptibility rather than incidental overlap. Genetic and epigenetic data support partial convergence in immune regulatory pathways, while epithelial barrier dysfunction and antigen-driven immune activation emerge as common upstream features. Overlapping cytokine networks, including IL-4, IL-13, and IL-23 signaling, contribute to chronic inflammation in both diseases, although differences in tissue environment and immune dominance give rise to distinct inflammatory phenotypes and clinical behavior. Clinical outcomes in patients with dual diagnoses appear heterogeneous, with available data suggesting neither uniformly worsened nor clearly protective disease courses, underscoring the complexity of shared immune mechanisms operating within different anatomic contexts. Beyond inflammatory activity, coexistence of EoE and IBD poses important nutritional and quality-of-life challenges, as overlapping dietary restrictions and chronic symptoms increase the risk of malnutrition, micronutrient deficiencies, and psychosocial burden. Current therapies remain disease-specific, with strong evidence supporting proton pump inhibitors, swallowed topical steroids, dietary therapy, and dupilumab in EoE, and biologics and small molecules targeting TNF-&amp;amp;alpha;, IL-12/23, IL-23, integrins, and JAK&amp;amp;ndash;STAT signaling in IBD, while evidence guiding treatment in patients with dual diagnosis remains limited. Together, current evidence supports a framework of shared immune machinery with tissue-specific expression that explains coexistence while preserving the distinct identities of EoE and IBD. By integrating emerging genetic, immunologic, and clinical evidence, this review aims to provide a framework for understanding and managing patients with coexisting EoE and IBD.</p>
	]]></content:encoded>

	<dc:title>Eosinophilic Esophagitis and Inflammatory Bowel Disease: Genetic Susceptibility, Epigenetic Overlap, and Immune Dysregulation in Dual Diagnosis</dc:title>
			<dc:creator>Fares Jamal</dc:creator>
			<dc:creator>Alejandro J. Gonzalez</dc:creator>
			<dc:creator>Sandra Elmasry</dc:creator>
			<dc:creator>Amani Elshaer</dc:creator>
			<dc:creator>Fangfang Wang</dc:creator>
			<dc:creator>Allon Kahn</dc:creator>
			<dc:creator>Talha A. Malik</dc:creator>
		<dc:identifier>doi: 10.3390/dna6020030</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2026-06-17</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2026-06-17</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>2</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>30</prism:startingPage>
		<prism:doi>10.3390/dna6020030</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/2/30</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/6/2/29">

	<title>DNA, Vol. 6, Pages 29: Interactions of Potential Anticancer Drug 4-chloro-6-(1H-imidazo[4,5-b]phenazine-2-yl)benzene-1,3-diol with Supercoiled and Linear Plasmid DNAs</title>
	<link>https://www.mdpi.com/2673-8856/6/2/29</link>
	<description>Introduction: Does DNA superhelicity effect nucleic acid interactions with drugs? To test such a possibility, the interactions of the linear and superhelical forms of the pGEX-4T-2 plasmid have been investigated with a newly synthesized compound, 4-chloro-6-(1H-imidazo [4,5-b]phenazine-2-yl)benzene-1,3-diol, positively tested for the antiproliferative (cell growth-limiting) properties, important for the development of anticancer drugs. Methods: The accumulation of the compound, and its possible reorientation (phase transition) within the plasmid layer adsorbed on a Glassy Carbon (GC) electrode has been monitored in 5 min. intervals using alternatively two voltammetric methods&amp;amp;mdash;Differential Pulse (DP), showing redox properties and&amp;amp;mdash;Alternating Current (AC), reflecting both redox and structural properties (capacity/resistance change related to DNA condensation) of the DNA-drug layers. Results and Discussion: The accumulation plots of the compound in plasmid layers are different for superhelical and linear pGEX-4T-2 and also depend on the DNA coverage by the compound. The reorientation (phase transition) occurs at a compound concentration 2 &amp;amp;micro;M for the superhelical plasmid and 1.5 &amp;amp;micro;M for the linear one, as compared to 8 &amp;amp;micro;M for the compound layer formed on bare GC, thus proving the existence of the DNA&amp;amp;ndash;compound interactions. Interestingly, the phase transition is redox-sensitive, e.g., AC redox signal II is visible for the linear, but not for the superhelical plasmid, thus reflecting different orientation of the compound in these two types of pGEX-4T-2 plasmid, related to the condensation in the DNA&amp;amp;ndash;compound layer and seen as a decrease in the C/R signal. Conclusions: The results suggest that the reorientation of the compound leading to plasmid condensation occurs differently in supercoiled and linear pGEX-4T-2 (redox specific accumulation and condensation).</description>
	<pubDate>2026-06-03</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 29: Interactions of Potential Anticancer Drug 4-chloro-6-(1H-imidazo[4,5-b]phenazine-2-yl)benzene-1,3-diol with Supercoiled and Linear Plasmid DNAs</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/2/29">doi: 10.3390/dna6020029</a></p>
	<p>Authors:
		Dominika Janiszek
		Anna Banasiak
		Monika M. Karpinska
		Andrzej Niewiadomy
		Agnieszka Girstun
		Hanna Elzanowska
		Magdalena Maj-Zurawska
		Pawel J. Kulesza
		</p>
	<p>Introduction: Does DNA superhelicity effect nucleic acid interactions with drugs? To test such a possibility, the interactions of the linear and superhelical forms of the pGEX-4T-2 plasmid have been investigated with a newly synthesized compound, 4-chloro-6-(1H-imidazo [4,5-b]phenazine-2-yl)benzene-1,3-diol, positively tested for the antiproliferative (cell growth-limiting) properties, important for the development of anticancer drugs. Methods: The accumulation of the compound, and its possible reorientation (phase transition) within the plasmid layer adsorbed on a Glassy Carbon (GC) electrode has been monitored in 5 min. intervals using alternatively two voltammetric methods&amp;amp;mdash;Differential Pulse (DP), showing redox properties and&amp;amp;mdash;Alternating Current (AC), reflecting both redox and structural properties (capacity/resistance change related to DNA condensation) of the DNA-drug layers. Results and Discussion: The accumulation plots of the compound in plasmid layers are different for superhelical and linear pGEX-4T-2 and also depend on the DNA coverage by the compound. The reorientation (phase transition) occurs at a compound concentration 2 &amp;amp;micro;M for the superhelical plasmid and 1.5 &amp;amp;micro;M for the linear one, as compared to 8 &amp;amp;micro;M for the compound layer formed on bare GC, thus proving the existence of the DNA&amp;amp;ndash;compound interactions. Interestingly, the phase transition is redox-sensitive, e.g., AC redox signal II is visible for the linear, but not for the superhelical plasmid, thus reflecting different orientation of the compound in these two types of pGEX-4T-2 plasmid, related to the condensation in the DNA&amp;amp;ndash;compound layer and seen as a decrease in the C/R signal. Conclusions: The results suggest that the reorientation of the compound leading to plasmid condensation occurs differently in supercoiled and linear pGEX-4T-2 (redox specific accumulation and condensation).</p>
	]]></content:encoded>

	<dc:title>Interactions of Potential Anticancer Drug 4-chloro-6-(1H-imidazo[4,5-b]phenazine-2-yl)benzene-1,3-diol with Supercoiled and Linear Plasmid DNAs</dc:title>
			<dc:creator>Dominika Janiszek</dc:creator>
			<dc:creator>Anna Banasiak</dc:creator>
			<dc:creator>Monika M. Karpinska</dc:creator>
			<dc:creator>Andrzej Niewiadomy</dc:creator>
			<dc:creator>Agnieszka Girstun</dc:creator>
			<dc:creator>Hanna Elzanowska</dc:creator>
			<dc:creator>Magdalena Maj-Zurawska</dc:creator>
			<dc:creator>Pawel J. Kulesza</dc:creator>
		<dc:identifier>doi: 10.3390/dna6020029</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2026-06-03</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2026-06-03</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>2</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>29</prism:startingPage>
		<prism:doi>10.3390/dna6020029</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/2/29</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/6/2/28">

	<title>DNA, Vol. 6, Pages 28: Beyond Mutation Detection: Cell-Free DNA for Functional Inference and Adaptive Oncology</title>
	<link>https://www.mdpi.com/2673-8856/6/2/28</link>
	<description>Liquid biopsy has evolved beyond its original role as a minimally invasive approach for mutation detection and is now being developed as a broader analytical framework for cancer detection, stratification, and longitudinal monitoring. Improvements in next-generation sequencing, assay chemistry, and computational analysis have increased analytical sensitivity, including in settings with low tumor fraction and very low variant allele abundance. These advances have expanded the utility of cfDNA analysis in measurable residual disease assessment and in the detection of low-abundance tumor-derived signals across multiple clinical contexts. At the same time, the field has shifted toward interpreting cfDNA as a carrier of higher-order biological information rather than solely a substrate for mutation calling. Fragmentation profiles, nucleosome positioning, and chromatin accessibility patterns derived from plasma DNA have been used to infer transcriptional and regulatory states, raising the possibility that cfDNA may capture functional tumor states not readily accessible through genotype-focused assays alone. These developments have prompted growing interest in chromatin-informed cfDNA analysis as a means of identifying pathway activity, enhancer usage, transcription factor occupancy, and potentially actionable biological dependencies. However, the translational relevance of many such inferences remains incompletely established, and preanalytical variability, limited cross-cohort generalizability, and the gap between analytical performance and clinical utility continue to constrain clinical translation. This review examines the role of cfDNA in adaptive oncology, highlighting recent analytical advances, assessing the current evidence supporting their biological and clinical utility, and considering the extent to which cfDNA-derived regulatory inference may contribute to adaptive oncology and therapeutic decision-making.</description>
	<pubDate>2026-06-02</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 28: Beyond Mutation Detection: Cell-Free DNA for Functional Inference and Adaptive Oncology</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/2/28">doi: 10.3390/dna6020028</a></p>
	<p>Authors:
		Tetiana Zaichuk
		</p>
	<p>Liquid biopsy has evolved beyond its original role as a minimally invasive approach for mutation detection and is now being developed as a broader analytical framework for cancer detection, stratification, and longitudinal monitoring. Improvements in next-generation sequencing, assay chemistry, and computational analysis have increased analytical sensitivity, including in settings with low tumor fraction and very low variant allele abundance. These advances have expanded the utility of cfDNA analysis in measurable residual disease assessment and in the detection of low-abundance tumor-derived signals across multiple clinical contexts. At the same time, the field has shifted toward interpreting cfDNA as a carrier of higher-order biological information rather than solely a substrate for mutation calling. Fragmentation profiles, nucleosome positioning, and chromatin accessibility patterns derived from plasma DNA have been used to infer transcriptional and regulatory states, raising the possibility that cfDNA may capture functional tumor states not readily accessible through genotype-focused assays alone. These developments have prompted growing interest in chromatin-informed cfDNA analysis as a means of identifying pathway activity, enhancer usage, transcription factor occupancy, and potentially actionable biological dependencies. However, the translational relevance of many such inferences remains incompletely established, and preanalytical variability, limited cross-cohort generalizability, and the gap between analytical performance and clinical utility continue to constrain clinical translation. This review examines the role of cfDNA in adaptive oncology, highlighting recent analytical advances, assessing the current evidence supporting their biological and clinical utility, and considering the extent to which cfDNA-derived regulatory inference may contribute to adaptive oncology and therapeutic decision-making.</p>
	]]></content:encoded>

	<dc:title>Beyond Mutation Detection: Cell-Free DNA for Functional Inference and Adaptive Oncology</dc:title>
			<dc:creator>Tetiana Zaichuk</dc:creator>
		<dc:identifier>doi: 10.3390/dna6020028</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2026-06-02</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2026-06-02</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>2</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>28</prism:startingPage>
		<prism:doi>10.3390/dna6020028</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/2/28</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/6/2/27">

	<title>DNA, Vol. 6, Pages 27: Effective Complementary Islands (ECIs) for Multiplex Room-Temperature DNA Probe Design&amp;mdash;A Practical Topology Heuristic and 39-Target HPV Specificity Benchmark</title>
	<link>https://www.mdpi.com/2673-8856/6/2/27</link>
	<description>Background/Objectives: Multiplex and point-of-care (POC) diagnostics require each probe to detect one intended target while rejecting many closely related sequences under shared room-temperature conditions. The conventional focus on mismatch count is incomplete: two alignments with the same number of matches and mismatches can have very different off-target risks depending on whether mismatches are clustered or distributed. We introduce a simple visual heuristic that scores mismatch placement rather than mismatch count alone. Methods: Effective complementary island (ECI) score retained matched continuity after subtracting one base for each mismatch- or gap-exposed edge. The score is S_ECI = &amp;amp;Sigma;_i ECI_i^2, and the design margin is &amp;amp;Delta;S_ECI = S_ECI (intended) &amp;amp;minus; S_ECI (highest-scoring non-intended alignment by ECI). ECI is not a thermodynamic model; thermodynamics (&amp;amp;Delta;G37) is used separately to verify an adequate sensitivity floor. We retrospectively applied ECI to a fixed 39-target HPV capture-probe benchmark and to a public Affymetrix dataset contrasting clustered versus distributed mismatches at identical or near-identical mismatch counts. Results: In the HPV benchmark, ECI separated intended from off-target in 32/39 panels; &amp;amp;Delta;G37 favored the intended duplex in 31/39 panels; both layers were concordant in 36/39 panels. In the Affymetrix dataset (n = 8 probes, 2&amp;amp;ndash;4 mismatches), S_ECI correlated with reported log2 hybridization intensity (Pearson r = 0.92, p = 0.0014). Within the strict three-mismatch subset (n = 5), S_ECI remained correlated with intensity (r = 0.96; p = 0.010), while &amp;amp;Delta;G37 was uncorrelated (r = &amp;amp;minus;0.04; p = 0.95), supporting the narrower claim that mismatch placement can affect signal even when mismatch count is fixed. Conclusions: ECI is not a replacement for thermodynamics, BLAST, target-accessibility analysis, empirical optimization, or machine-learning prediction. It adds one actionable readout: where to shift, shorten, or place a limited intentional mismatch so that intended retained continuity stays above the assay floor while the highest-scoring off-target island by ECI is fragmented. We provide a bench-ready workflow for multiplex, room-temperature, and POC probe design.</description>
	<pubDate>2026-06-02</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 27: Effective Complementary Islands (ECIs) for Multiplex Room-Temperature DNA Probe Design&amp;mdash;A Practical Topology Heuristic and 39-Target HPV Specificity Benchmark</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/2/27">doi: 10.3390/dna6020027</a></p>
	<p>Authors:
		Ivan Brukner
		Maja Krajinovic
		</p>
	<p>Background/Objectives: Multiplex and point-of-care (POC) diagnostics require each probe to detect one intended target while rejecting many closely related sequences under shared room-temperature conditions. The conventional focus on mismatch count is incomplete: two alignments with the same number of matches and mismatches can have very different off-target risks depending on whether mismatches are clustered or distributed. We introduce a simple visual heuristic that scores mismatch placement rather than mismatch count alone. Methods: Effective complementary island (ECI) score retained matched continuity after subtracting one base for each mismatch- or gap-exposed edge. The score is S_ECI = &amp;amp;Sigma;_i ECI_i^2, and the design margin is &amp;amp;Delta;S_ECI = S_ECI (intended) &amp;amp;minus; S_ECI (highest-scoring non-intended alignment by ECI). ECI is not a thermodynamic model; thermodynamics (&amp;amp;Delta;G37) is used separately to verify an adequate sensitivity floor. We retrospectively applied ECI to a fixed 39-target HPV capture-probe benchmark and to a public Affymetrix dataset contrasting clustered versus distributed mismatches at identical or near-identical mismatch counts. Results: In the HPV benchmark, ECI separated intended from off-target in 32/39 panels; &amp;amp;Delta;G37 favored the intended duplex in 31/39 panels; both layers were concordant in 36/39 panels. In the Affymetrix dataset (n = 8 probes, 2&amp;amp;ndash;4 mismatches), S_ECI correlated with reported log2 hybridization intensity (Pearson r = 0.92, p = 0.0014). Within the strict three-mismatch subset (n = 5), S_ECI remained correlated with intensity (r = 0.96; p = 0.010), while &amp;amp;Delta;G37 was uncorrelated (r = &amp;amp;minus;0.04; p = 0.95), supporting the narrower claim that mismatch placement can affect signal even when mismatch count is fixed. Conclusions: ECI is not a replacement for thermodynamics, BLAST, target-accessibility analysis, empirical optimization, or machine-learning prediction. It adds one actionable readout: where to shift, shorten, or place a limited intentional mismatch so that intended retained continuity stays above the assay floor while the highest-scoring off-target island by ECI is fragmented. We provide a bench-ready workflow for multiplex, room-temperature, and POC probe design.</p>
	]]></content:encoded>

	<dc:title>Effective Complementary Islands (ECIs) for Multiplex Room-Temperature DNA Probe Design&amp;amp;mdash;A Practical Topology Heuristic and 39-Target HPV Specificity Benchmark</dc:title>
			<dc:creator>Ivan Brukner</dc:creator>
			<dc:creator>Maja Krajinovic</dc:creator>
		<dc:identifier>doi: 10.3390/dna6020027</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2026-06-02</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2026-06-02</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>2</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>27</prism:startingPage>
		<prism:doi>10.3390/dna6020027</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/2/27</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/6/2/26">

	<title>DNA, Vol. 6, Pages 26: The Use of FLIM for Characterising Chromosomes and Their Structure in Response to Low-Dose X-Ray Irradiation</title>
	<link>https://www.mdpi.com/2673-8856/6/2/26</link>
	<description>Background/Objectives: Chromosome research is essential for advancing our understanding of cytogenetics, gene regulation and numerous aspects of organismal health. Staining chromosomes with 4&amp;amp;prime;,6-diamidino-2-phenylindole (DAPI) and applying Fluorescence Lifetime Imaging Microscopy (FLIM) enables the assessment of structural changes in pericentromeric and heterochromatin-rich region of chromosomes 1, with a shorter fluorescence lifetime (FLT) in the pericentromeric regions compared to the arms. Methods: We used FLIM to optimise sample preparation conditions for more robust imaging and furthermore to measure the impact of low-dose X-ray ionising radiation on chromosome structure when labelled with DAPI. Results: We applied this method to different DNA stains bound to chromosomes where only DAPI led to a clear FLT difference between the chromosome arms (p,q) with 2.98 &amp;amp;plusmn; 0.12 ns and 2.65 &amp;amp;plusmn; 0.07 ns at the pericentromeric region, while similar stains, such as Hoechst 33258 and NucBlueTM did not highlight these regions as clearly following FLIM analysis. Our data showed that chromosomes of cells irradiated with 0.1 Gy and 1 Gy did not show a significant change in FLTs (2.94 &amp;amp;plusmn; 0.09 ns on the arms and 2.60 &amp;amp;plusmn; 0.06 ns on the pericentromeric region) of chromosome 1. Whilst irradiation with 0.5 Gy led to a noticeable and significant reduction in FLT with 2.42 &amp;amp;plusmn; 0.13 ns on the arms and 2.12 &amp;amp;plusmn; 0.06 ns on the pericentromeric region of HeLa chromosomes. The same pattern could also be seen on X-ray-irradiated T-cell chromosomes. Conclusions: These findings indicate that DAPI FLT may be a useful tool to measure chromosomal structural changes and further suggests that chromosomes undergo distinct structural changes at the pericentromeric region following low-dose irradiation.</description>
	<pubDate>2026-05-25</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 26: The Use of FLIM for Characterising Chromosomes and Their Structure in Response to Low-Dose X-Ray Irradiation</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/2/26">doi: 10.3390/dna6020026</a></p>
	<p>Authors:
		Mohammed Yusuf
		Sarah L. Berger
		Rosie Sanders
		Archana Bhartiya
		Rinyaporn Phengchat
		Stephen Barnard
		Benji Bateman
		Ian K. Robinson
		Stanley W. Botchway
		</p>
	<p>Background/Objectives: Chromosome research is essential for advancing our understanding of cytogenetics, gene regulation and numerous aspects of organismal health. Staining chromosomes with 4&amp;amp;prime;,6-diamidino-2-phenylindole (DAPI) and applying Fluorescence Lifetime Imaging Microscopy (FLIM) enables the assessment of structural changes in pericentromeric and heterochromatin-rich region of chromosomes 1, with a shorter fluorescence lifetime (FLT) in the pericentromeric regions compared to the arms. Methods: We used FLIM to optimise sample preparation conditions for more robust imaging and furthermore to measure the impact of low-dose X-ray ionising radiation on chromosome structure when labelled with DAPI. Results: We applied this method to different DNA stains bound to chromosomes where only DAPI led to a clear FLT difference between the chromosome arms (p,q) with 2.98 &amp;amp;plusmn; 0.12 ns and 2.65 &amp;amp;plusmn; 0.07 ns at the pericentromeric region, while similar stains, such as Hoechst 33258 and NucBlueTM did not highlight these regions as clearly following FLIM analysis. Our data showed that chromosomes of cells irradiated with 0.1 Gy and 1 Gy did not show a significant change in FLTs (2.94 &amp;amp;plusmn; 0.09 ns on the arms and 2.60 &amp;amp;plusmn; 0.06 ns on the pericentromeric region) of chromosome 1. Whilst irradiation with 0.5 Gy led to a noticeable and significant reduction in FLT with 2.42 &amp;amp;plusmn; 0.13 ns on the arms and 2.12 &amp;amp;plusmn; 0.06 ns on the pericentromeric region of HeLa chromosomes. The same pattern could also be seen on X-ray-irradiated T-cell chromosomes. Conclusions: These findings indicate that DAPI FLT may be a useful tool to measure chromosomal structural changes and further suggests that chromosomes undergo distinct structural changes at the pericentromeric region following low-dose irradiation.</p>
	]]></content:encoded>

	<dc:title>The Use of FLIM for Characterising Chromosomes and Their Structure in Response to Low-Dose X-Ray Irradiation</dc:title>
			<dc:creator>Mohammed Yusuf</dc:creator>
			<dc:creator>Sarah L. Berger</dc:creator>
			<dc:creator>Rosie Sanders</dc:creator>
			<dc:creator>Archana Bhartiya</dc:creator>
			<dc:creator>Rinyaporn Phengchat</dc:creator>
			<dc:creator>Stephen Barnard</dc:creator>
			<dc:creator>Benji Bateman</dc:creator>
			<dc:creator>Ian K. Robinson</dc:creator>
			<dc:creator>Stanley W. Botchway</dc:creator>
		<dc:identifier>doi: 10.3390/dna6020026</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2026-05-25</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2026-05-25</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>2</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>26</prism:startingPage>
		<prism:doi>10.3390/dna6020026</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/2/26</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/6/2/25">

	<title>DNA, Vol. 6, Pages 25: Nucleotide Metabolism and DNA Repair: Implications in Cancer Treatments</title>
	<link>https://www.mdpi.com/2673-8856/6/2/25</link>
	<description>Cancer cells have many derailed processes due to which they have a higher proliferative capacity. The rewiring is continuously taking place to meet their metabolic demands. The demands depend on the stage of cancer, and these differences create challenges in curing them. Nucleotide metabolism plays a pivotal role in shaping cancer fate. DNA repair and other damage pathways also play a key role in cancer progression, genomic instability, errors in genetic material etc. These are discussed in this mini review so that researchers can take the lead to make an effort to combat cancer and design new therapeutics.</description>
	<pubDate>2026-05-15</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 25: Nucleotide Metabolism and DNA Repair: Implications in Cancer Treatments</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/2/25">doi: 10.3390/dna6020025</a></p>
	<p>Authors:
		Nitesh Priyadarshi
		Fatima Elhag Abbas
		Deepali Thakur
		Shagun Thakur
		Rahul Dilawari
		</p>
	<p>Cancer cells have many derailed processes due to which they have a higher proliferative capacity. The rewiring is continuously taking place to meet their metabolic demands. The demands depend on the stage of cancer, and these differences create challenges in curing them. Nucleotide metabolism plays a pivotal role in shaping cancer fate. DNA repair and other damage pathways also play a key role in cancer progression, genomic instability, errors in genetic material etc. These are discussed in this mini review so that researchers can take the lead to make an effort to combat cancer and design new therapeutics.</p>
	]]></content:encoded>

	<dc:title>Nucleotide Metabolism and DNA Repair: Implications in Cancer Treatments</dc:title>
			<dc:creator>Nitesh Priyadarshi</dc:creator>
			<dc:creator>Fatima Elhag Abbas</dc:creator>
			<dc:creator>Deepali Thakur</dc:creator>
			<dc:creator>Shagun Thakur</dc:creator>
			<dc:creator>Rahul Dilawari</dc:creator>
		<dc:identifier>doi: 10.3390/dna6020025</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2026-05-15</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2026-05-15</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>2</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>25</prism:startingPage>
		<prism:doi>10.3390/dna6020025</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/2/25</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/6/2/24">

	<title>DNA, Vol. 6, Pages 24: Computational Prediction of DNA-RNA Triplex Formation Sites Reveals Novel Regulatory Links Between lncRNAs and Key Fertility Genes in Retinta Cattle</title>
	<link>https://www.mdpi.com/2673-8856/6/2/24</link>
	<description>Background: Long non-coding RNAs (lncRNAs) are increasingly recognized as key regulators of gene expression, playing pivotal roles in diverse biological processes, including reproduction. This study identified and characterized lncRNAs located near fertility-associated genes in Retinta beef cattle, exploring their potential regulatory roles via DNA&amp;amp;ndash;RNA triplex formation using in silico approaches. Methods: We applied an integrative bioinformatics pipeline to identify potential triplex interactions, predicting structurally accessible regions within the lncRNAs and demonstrating the statistical enrichment of binding sites across known regulatory genomic elements. Results: Twelve protein-coding genes previously linked to female fertility or male scrotal circumference were analyzed, revealing 16 unique lncRNAs within &amp;amp;plusmn;50 kb windows, predominantly on BTA5. We predicted high-confidence triplex-forming oligonucleotides (TFOs) for most gene-lncRNA pairs. Our results suggest robustness and sequence specificity, as interactions were disrupted by sequence permutation or when a control background sequence was used. RNA secondary-structure analysis revealed that TFOs generally lie in exposed regions, supporting their accessibility for triplex formation. Furthermore, promoter and regulatory regions of fertility-associated genes were enriched in predicted triplex target sites (TTSs), with some overlapping CpG islands and enhancer regions, leading to the hypothesis that these lncRNAs might play a role in epigenetic regulation. Conclusions: Overall, these findings establish computationally derived hypotheses regarding the potential molecular mechanisms by which lncRNAs may modulate reproductive efficiency in cattle and highlight specific lncRNAs as promising targets for functional studies and marker-assisted breeding.</description>
	<pubDate>2026-05-12</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 24: Computational Prediction of DNA-RNA Triplex Formation Sites Reveals Novel Regulatory Links Between lncRNAs and Key Fertility Genes in Retinta Cattle</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/2/24">doi: 10.3390/dna6020024</a></p>
	<p>Authors:
		María Ángeles Vargas-Pérez
		Chiraz Ziadi
		Rosa María Morales
		Sebastián Demyda-Peyrás
		Gabriel Anaya Calvo-Rubio
		Antonio Molina
		</p>
	<p>Background: Long non-coding RNAs (lncRNAs) are increasingly recognized as key regulators of gene expression, playing pivotal roles in diverse biological processes, including reproduction. This study identified and characterized lncRNAs located near fertility-associated genes in Retinta beef cattle, exploring their potential regulatory roles via DNA&amp;amp;ndash;RNA triplex formation using in silico approaches. Methods: We applied an integrative bioinformatics pipeline to identify potential triplex interactions, predicting structurally accessible regions within the lncRNAs and demonstrating the statistical enrichment of binding sites across known regulatory genomic elements. Results: Twelve protein-coding genes previously linked to female fertility or male scrotal circumference were analyzed, revealing 16 unique lncRNAs within &amp;amp;plusmn;50 kb windows, predominantly on BTA5. We predicted high-confidence triplex-forming oligonucleotides (TFOs) for most gene-lncRNA pairs. Our results suggest robustness and sequence specificity, as interactions were disrupted by sequence permutation or when a control background sequence was used. RNA secondary-structure analysis revealed that TFOs generally lie in exposed regions, supporting their accessibility for triplex formation. Furthermore, promoter and regulatory regions of fertility-associated genes were enriched in predicted triplex target sites (TTSs), with some overlapping CpG islands and enhancer regions, leading to the hypothesis that these lncRNAs might play a role in epigenetic regulation. Conclusions: Overall, these findings establish computationally derived hypotheses regarding the potential molecular mechanisms by which lncRNAs may modulate reproductive efficiency in cattle and highlight specific lncRNAs as promising targets for functional studies and marker-assisted breeding.</p>
	]]></content:encoded>

	<dc:title>Computational Prediction of DNA-RNA Triplex Formation Sites Reveals Novel Regulatory Links Between lncRNAs and Key Fertility Genes in Retinta Cattle</dc:title>
			<dc:creator>María Ángeles Vargas-Pérez</dc:creator>
			<dc:creator>Chiraz Ziadi</dc:creator>
			<dc:creator>Rosa María Morales</dc:creator>
			<dc:creator>Sebastián Demyda-Peyrás</dc:creator>
			<dc:creator>Gabriel Anaya Calvo-Rubio</dc:creator>
			<dc:creator>Antonio Molina</dc:creator>
		<dc:identifier>doi: 10.3390/dna6020024</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2026-05-12</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2026-05-12</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>2</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>24</prism:startingPage>
		<prism:doi>10.3390/dna6020024</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/2/24</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/6/2/23">

	<title>DNA, Vol. 6, Pages 23: Expectations and Realities of Adaptive Sampling in Nanopore Sequencing</title>
	<link>https://www.mdpi.com/2673-8856/6/2/23</link>
	<description>Real-time selective sequencing on nanopore platforms offers a programmable way to enrich target molecules and deplete background DNA during a run. This approach, widely known as adaptive sampling (AS), has been applied across host depletion, metagenomics, targeted loci, plasmid/AMR workflows, and RNA/transcriptomic protocols, but reported performance varies substantially across studies. This review synthesizes current algorithmic and empirical evidence with emphasis on sequencing-relevant outcomes, including absolute informative yield, target-coverage behavior, throughput effects, and run-to-run stability. Across use cases, relative enrichment is frequently observed, but gains in usable genomic output are strongly conditioned by fragment-length distributions, reference quality, decision-loop latency, and rejection-associated penalties in total yield and pore longevity. Evidence from targeted-panel and complex-locus studies further indicates that improved depth concentration can coexist with coverage non-uniformity and context-specific trade-offs relative to wet-lab enrichment. Overall, the literature supports AS as a valuable but condition-dependent strategy whose benefit is greatest when assay design, reference selection, and computational constraints are jointly optimized.</description>
	<pubDate>2026-05-11</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 23: Expectations and Realities of Adaptive Sampling in Nanopore Sequencing</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/2/23">doi: 10.3390/dna6020023</a></p>
	<p>Authors:
		Amin Savari
		Sebastian Magierowski
		</p>
	<p>Real-time selective sequencing on nanopore platforms offers a programmable way to enrich target molecules and deplete background DNA during a run. This approach, widely known as adaptive sampling (AS), has been applied across host depletion, metagenomics, targeted loci, plasmid/AMR workflows, and RNA/transcriptomic protocols, but reported performance varies substantially across studies. This review synthesizes current algorithmic and empirical evidence with emphasis on sequencing-relevant outcomes, including absolute informative yield, target-coverage behavior, throughput effects, and run-to-run stability. Across use cases, relative enrichment is frequently observed, but gains in usable genomic output are strongly conditioned by fragment-length distributions, reference quality, decision-loop latency, and rejection-associated penalties in total yield and pore longevity. Evidence from targeted-panel and complex-locus studies further indicates that improved depth concentration can coexist with coverage non-uniformity and context-specific trade-offs relative to wet-lab enrichment. Overall, the literature supports AS as a valuable but condition-dependent strategy whose benefit is greatest when assay design, reference selection, and computational constraints are jointly optimized.</p>
	]]></content:encoded>

	<dc:title>Expectations and Realities of Adaptive Sampling in Nanopore Sequencing</dc:title>
			<dc:creator>Amin Savari</dc:creator>
			<dc:creator>Sebastian Magierowski</dc:creator>
		<dc:identifier>doi: 10.3390/dna6020023</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2026-05-11</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2026-05-11</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>2</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>23</prism:startingPage>
		<prism:doi>10.3390/dna6020023</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/2/23</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/6/2/22">

	<title>DNA, Vol. 6, Pages 22: Regulatory Landscapes of Bacterial DNA Methylation: Mechanism, Dynamics, and Detection</title>
	<link>https://www.mdpi.com/2673-8856/6/2/22</link>
	<description>Epigenetics is a widely present mechanism for the modulation of gene expression without alterations in the underlying genetic sequence. Epigenetic signatures are significantly present in bacteria, with DNA methylation playing a key role in the modulation of bacterial physiology and pathogenesis. DNA methyltransferases (MTases) are the enzymes catalyzing the transfer of methyl groups to adenine or cytosine residues in the DNA using the methyl donor S-adenosyl-L-methionine (SAM). This process generates modified bases, N6-methyladenine (m6A), 5-methylcytosine (5mC), or N4-methyl cytosine (4mC) in the DNA, which influence fundamental cellular processes such as DNA transactions, DNA replication, transcription, and DNA repair. These MTases, earlier thought to be a part of primitive bacterial immune system, are now considered to be active players in gene regulation. They regulate bacterial adaptability to stress by virtue of phase variation and bistability. In pathogenic species such as Mycobacterium tuberculosis (Mtb), DNA methylation driven epigenetic reprogramming influences the expression of virulence factors, antibiotic tolerance, and persistence genes. This review gives a detailed account of role of DNA methyltransferases in bacterial epigenomics influencing various cellular processes. With the development of long-read high-throughput sequencing technologies, single-base mapping of bacterial methylomes has become possible. In the latter part of the review, we talk about these advances and the integration of synthetic biology to expand the potential of methylation systems for developing biosensors and switchable gene expression platforms. These strategies can be translated into future vaccine design and precision drugs for disease control. Deciphering bacterial DNA methylation can help gain insights into microbial evolution and design innovative therapeutics for various diseases.</description>
	<pubDate>2026-05-04</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 22: Regulatory Landscapes of Bacterial DNA Methylation: Mechanism, Dynamics, and Detection</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/2/22">doi: 10.3390/dna6020022</a></p>
	<p>Authors:
		Jasleen Kaur Lamba
		Tejinder Kaur
		Roshani Jha
		Rama Kadamb
		Rajni Garg
		</p>
	<p>Epigenetics is a widely present mechanism for the modulation of gene expression without alterations in the underlying genetic sequence. Epigenetic signatures are significantly present in bacteria, with DNA methylation playing a key role in the modulation of bacterial physiology and pathogenesis. DNA methyltransferases (MTases) are the enzymes catalyzing the transfer of methyl groups to adenine or cytosine residues in the DNA using the methyl donor S-adenosyl-L-methionine (SAM). This process generates modified bases, N6-methyladenine (m6A), 5-methylcytosine (5mC), or N4-methyl cytosine (4mC) in the DNA, which influence fundamental cellular processes such as DNA transactions, DNA replication, transcription, and DNA repair. These MTases, earlier thought to be a part of primitive bacterial immune system, are now considered to be active players in gene regulation. They regulate bacterial adaptability to stress by virtue of phase variation and bistability. In pathogenic species such as Mycobacterium tuberculosis (Mtb), DNA methylation driven epigenetic reprogramming influences the expression of virulence factors, antibiotic tolerance, and persistence genes. This review gives a detailed account of role of DNA methyltransferases in bacterial epigenomics influencing various cellular processes. With the development of long-read high-throughput sequencing technologies, single-base mapping of bacterial methylomes has become possible. In the latter part of the review, we talk about these advances and the integration of synthetic biology to expand the potential of methylation systems for developing biosensors and switchable gene expression platforms. These strategies can be translated into future vaccine design and precision drugs for disease control. Deciphering bacterial DNA methylation can help gain insights into microbial evolution and design innovative therapeutics for various diseases.</p>
	]]></content:encoded>

	<dc:title>Regulatory Landscapes of Bacterial DNA Methylation: Mechanism, Dynamics, and Detection</dc:title>
			<dc:creator>Jasleen Kaur Lamba</dc:creator>
			<dc:creator>Tejinder Kaur</dc:creator>
			<dc:creator>Roshani Jha</dc:creator>
			<dc:creator>Rama Kadamb</dc:creator>
			<dc:creator>Rajni Garg</dc:creator>
		<dc:identifier>doi: 10.3390/dna6020022</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2026-05-04</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2026-05-04</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>2</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>22</prism:startingPage>
		<prism:doi>10.3390/dna6020022</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/2/22</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/6/2/21">

	<title>DNA, Vol. 6, Pages 21: Molecular Identification of Kava-Kava (Piper methysticum G. Forst.) Using the Internal Transcribed Spacer (ITS2) Region</title>
	<link>https://www.mdpi.com/2673-8856/6/2/21</link>
	<description>Background: Piper is one of the largest genera in the family Piperaceae, with approximately 2100 species. Most Piper species are used as spices or as medicinal plants. Piper methysticum G. Forst., popularly known as kava-kava (or kava), is widely used to treat anxiety disorders. Due to similar morphological features, P. auritum Kunth (known as &amp;amp;ldquo;false kava&amp;amp;rdquo;) is sometimes mistakenly or intentionally used as an alternative botanical source for &amp;amp;ldquo;kava&amp;amp;rdquo; extracts. The false kava extracts do not contain active kavalactones but contain safrole, which is hepatotoxic. It is important to verify the component botanical materials in order to evaluate the quality and safety attributes of a potential botanical drug. Some studies have evaluated genetic variation in Piper sp. using the chloroplast regions matK, rbcL, rpoC1 and trnH-psbA and the nuclear ITS2 markers. However, none has focused on the identification of P. methysticum using DNA barcodes. In the present investigation, the ITS2 DNA barcode region from the nuclear genome was tested to confirm the identification and authentication of kava-kava samples. Methods: Seven P. methysticum samples were collected from three different geographic lo-cations and two P. auritum samples were collected and the ITS2 region from the nuclear genome, was amplified, sequenced and aligned to determine their genetic distances. Results: The ITS2 locus showed high amplification and sequence output with a discriminating barcode gap. A distance-based phylogenetic tree and BLAST confirmation (using blastn) revealed the ITS2 locus as a diagnostic DNA barcode for the accurate identification of kava-kava species. Discussion: In conclusion, the ITS2 region proves to be an effective and reliable DNA barcode for distinguishing P. methysticum from closely related species such as P. auritum. Its application can significantly improve the safety, quality, and traceability of kava-containing products, addressing a critical need in the standardization of botanical drugs.</description>
	<pubDate>2026-04-28</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 21: Molecular Identification of Kava-Kava (Piper methysticum G. Forst.) Using the Internal Transcribed Spacer (ITS2) Region</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/2/21">doi: 10.3390/dna6020021</a></p>
	<p>Authors:
		Iffat Parveen
		Natascha Techen
		Sara M. Handy
		Jing Li
		Charles Wu
		Amar G. Chittiboyina
		Ikhlas A. Khan
		</p>
	<p>Background: Piper is one of the largest genera in the family Piperaceae, with approximately 2100 species. Most Piper species are used as spices or as medicinal plants. Piper methysticum G. Forst., popularly known as kava-kava (or kava), is widely used to treat anxiety disorders. Due to similar morphological features, P. auritum Kunth (known as &amp;amp;ldquo;false kava&amp;amp;rdquo;) is sometimes mistakenly or intentionally used as an alternative botanical source for &amp;amp;ldquo;kava&amp;amp;rdquo; extracts. The false kava extracts do not contain active kavalactones but contain safrole, which is hepatotoxic. It is important to verify the component botanical materials in order to evaluate the quality and safety attributes of a potential botanical drug. Some studies have evaluated genetic variation in Piper sp. using the chloroplast regions matK, rbcL, rpoC1 and trnH-psbA and the nuclear ITS2 markers. However, none has focused on the identification of P. methysticum using DNA barcodes. In the present investigation, the ITS2 DNA barcode region from the nuclear genome was tested to confirm the identification and authentication of kava-kava samples. Methods: Seven P. methysticum samples were collected from three different geographic lo-cations and two P. auritum samples were collected and the ITS2 region from the nuclear genome, was amplified, sequenced and aligned to determine their genetic distances. Results: The ITS2 locus showed high amplification and sequence output with a discriminating barcode gap. A distance-based phylogenetic tree and BLAST confirmation (using blastn) revealed the ITS2 locus as a diagnostic DNA barcode for the accurate identification of kava-kava species. Discussion: In conclusion, the ITS2 region proves to be an effective and reliable DNA barcode for distinguishing P. methysticum from closely related species such as P. auritum. Its application can significantly improve the safety, quality, and traceability of kava-containing products, addressing a critical need in the standardization of botanical drugs.</p>
	]]></content:encoded>

	<dc:title>Molecular Identification of Kava-Kava (Piper methysticum G. Forst.) Using the Internal Transcribed Spacer (ITS2) Region</dc:title>
			<dc:creator>Iffat Parveen</dc:creator>
			<dc:creator>Natascha Techen</dc:creator>
			<dc:creator>Sara M. Handy</dc:creator>
			<dc:creator>Jing Li</dc:creator>
			<dc:creator>Charles Wu</dc:creator>
			<dc:creator>Amar G. Chittiboyina</dc:creator>
			<dc:creator>Ikhlas A. Khan</dc:creator>
		<dc:identifier>doi: 10.3390/dna6020021</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2026-04-28</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2026-04-28</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>2</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>21</prism:startingPage>
		<prism:doi>10.3390/dna6020021</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/2/21</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/6/2/20">

	<title>DNA, Vol. 6, Pages 20: Phylogeographic Analysis of Lodgepole Pine (Pinus contorta) Reveals Limited Subspecies Differentiation and Evidence for Glacial Refugia</title>
	<link>https://www.mdpi.com/2673-8856/6/2/20</link>
	<description>Lodgepole pine (Pinus contorta Dougl.) exhibits pronounced morphological variation across its range, historically attributed to allopatric differentiation during the Wisconsin glaciation. However, whether genetic divergence aligns with morphological differentiation&amp;amp;mdash;a fundamental prediction of allopatric speciation theory&amp;amp;mdash;remains untested. We conducted a comprehensive phylogeographic analysis of chloroplast DNA (trnL intron and trnL/trnF spacer) and mitochondrial DNA (nad1 b/c intron) across 31 populations representing all four recognized subspecies to test hypotheses of refugial isolation and to evaluate the genetic basis of current taxonomic classification. Contrary to predictions of allopatric divergence, both organellar genomes showed striking genetic uniformity (&amp;amp;pi; = 0.000178&amp;amp;ndash;0.000186; intersubspecific genetic distances: 1.06 &amp;amp;times; 10&amp;amp;minus;4 to 3.96 &amp;amp;times; 10&amp;amp;minus;4) with no phylogenetic structure corresponding to morphological boundaries. Significant negative neutrality test values (Tajima&amp;amp;rsquo;s D = &amp;amp;minus;2.26, p &amp;amp;lt; 0.02; Fu and Li&amp;amp;rsquo;s D* = &amp;amp;minus;4.52, p &amp;amp;lt; 0.02) suggest recent demographic expansion rather than equilibrium divergence. A distinctive 5 bp indel in coastal populations provides molecular evidence for a northern Pacific refugium, and its occurrence in interior populations is consistent with post-glacial pollen-mediated gene flow, though this directionality remains inferential pending nuclear genomic confirmation. These findings suggest that morphological divergence reflects rapid adaptive evolution in heterogeneous environments rather than deep phylogenetic divisions. This pattern exemplifies gene flow-selection balance, in which divergent selection maintains local adaptation despite extensive gene flow&amp;amp;mdash;supporting an ecotypic rather than a phylogenetic interpretation of intraspecific diversity. The persistence of morphological variation despite genetic homogeneity indicates strong selection on ecologically important traits, likely driven by variation in fire regimes, differential seed predation, and climate gradients. These results have critical implications for understanding adaptive evolution rates in widespread conifers and for developing conservation strategies that emphasize adaptive processes over taxonomic categories.</description>
	<pubDate>2026-04-16</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 20: Phylogeographic Analysis of Lodgepole Pine (Pinus contorta) Reveals Limited Subspecies Differentiation and Evidence for Glacial Refugia</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/2/20">doi: 10.3390/dna6020020</a></p>
	<p>Authors:
		Aron J. Fazekas
		Francis C. Yeh
		</p>
	<p>Lodgepole pine (Pinus contorta Dougl.) exhibits pronounced morphological variation across its range, historically attributed to allopatric differentiation during the Wisconsin glaciation. However, whether genetic divergence aligns with morphological differentiation&amp;amp;mdash;a fundamental prediction of allopatric speciation theory&amp;amp;mdash;remains untested. We conducted a comprehensive phylogeographic analysis of chloroplast DNA (trnL intron and trnL/trnF spacer) and mitochondrial DNA (nad1 b/c intron) across 31 populations representing all four recognized subspecies to test hypotheses of refugial isolation and to evaluate the genetic basis of current taxonomic classification. Contrary to predictions of allopatric divergence, both organellar genomes showed striking genetic uniformity (&amp;amp;pi; = 0.000178&amp;amp;ndash;0.000186; intersubspecific genetic distances: 1.06 &amp;amp;times; 10&amp;amp;minus;4 to 3.96 &amp;amp;times; 10&amp;amp;minus;4) with no phylogenetic structure corresponding to morphological boundaries. Significant negative neutrality test values (Tajima&amp;amp;rsquo;s D = &amp;amp;minus;2.26, p &amp;amp;lt; 0.02; Fu and Li&amp;amp;rsquo;s D* = &amp;amp;minus;4.52, p &amp;amp;lt; 0.02) suggest recent demographic expansion rather than equilibrium divergence. A distinctive 5 bp indel in coastal populations provides molecular evidence for a northern Pacific refugium, and its occurrence in interior populations is consistent with post-glacial pollen-mediated gene flow, though this directionality remains inferential pending nuclear genomic confirmation. These findings suggest that morphological divergence reflects rapid adaptive evolution in heterogeneous environments rather than deep phylogenetic divisions. This pattern exemplifies gene flow-selection balance, in which divergent selection maintains local adaptation despite extensive gene flow&amp;amp;mdash;supporting an ecotypic rather than a phylogenetic interpretation of intraspecific diversity. The persistence of morphological variation despite genetic homogeneity indicates strong selection on ecologically important traits, likely driven by variation in fire regimes, differential seed predation, and climate gradients. These results have critical implications for understanding adaptive evolution rates in widespread conifers and for developing conservation strategies that emphasize adaptive processes over taxonomic categories.</p>
	]]></content:encoded>

	<dc:title>Phylogeographic Analysis of Lodgepole Pine (Pinus contorta) Reveals Limited Subspecies Differentiation and Evidence for Glacial Refugia</dc:title>
			<dc:creator>Aron J. Fazekas</dc:creator>
			<dc:creator>Francis C. Yeh</dc:creator>
		<dc:identifier>doi: 10.3390/dna6020020</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2026-04-16</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2026-04-16</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>2</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>20</prism:startingPage>
		<prism:doi>10.3390/dna6020020</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/2/20</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/6/2/19">

	<title>DNA, Vol. 6, Pages 19: The Two Faces of Saccharomyces cerevisiae RAD9 Function in Homologous Recombination: Suppressor and Promoter of Genome Instability</title>
	<link>https://www.mdpi.com/2673-8856/6/2/19</link>
	<description>Recombinogenic DNA damage can initiate chromosomal rearrangements that can alter gene expression or accelerate cancer progression in higher eukaryotes. Thus, there is a critical need to identify genes that suppress chromosomal rearrangements and environmental exposures that promote genetic instability. Cell cycle checkpoints modulate the cell cycle so that DNA repair occurs before the replication or segregation of damaged chromosomes. Saccharomyces cerevisiae (budding yeast) RAD9 was the first cell cycle checkpoint gene identified, which initiated intensive research studies into the mechanisms of checkpoint activation and the phenotypes of checkpoint mutants. The budding yeast Rad9 protein serves as both an adaptor and scaffold that facilitates downstream effector activation to orchestrate a DNA damage response at multiple stages of the cell cycle, which facilitates double-strand break (DSB) repair by sister chromatid recombination. However, the role of RAD9 in homologous recombination and in suppressing gross chromosomal rearrangements (GCRs) is not completely understood. In this review we discuss how RAD9 can promote genome instability resulting from aberrant DNA replication intermediates, while suppressing DSB-associated rearrangements. We also discuss possible mechanisms accounting for the synergistic increase in genomic instability in double mutants defective in both RAD9 and recombinational repair. We emphasize that while there is an overlap between checkpoint and recombinational repair pathways, RAD9 and checkpoint pathways can function independently to suppress chromosomal instability. These studies thus elucidate checkpoint mechanisms that control homologous recombination between repeated sequences.</description>
	<pubDate>2026-04-09</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 19: The Two Faces of Saccharomyces cerevisiae RAD9 Function in Homologous Recombination: Suppressor and Promoter of Genome Instability</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/2/19">doi: 10.3390/dna6020019</a></p>
	<p>Authors:
		Michael Fasullo
		</p>
	<p>Recombinogenic DNA damage can initiate chromosomal rearrangements that can alter gene expression or accelerate cancer progression in higher eukaryotes. Thus, there is a critical need to identify genes that suppress chromosomal rearrangements and environmental exposures that promote genetic instability. Cell cycle checkpoints modulate the cell cycle so that DNA repair occurs before the replication or segregation of damaged chromosomes. Saccharomyces cerevisiae (budding yeast) RAD9 was the first cell cycle checkpoint gene identified, which initiated intensive research studies into the mechanisms of checkpoint activation and the phenotypes of checkpoint mutants. The budding yeast Rad9 protein serves as both an adaptor and scaffold that facilitates downstream effector activation to orchestrate a DNA damage response at multiple stages of the cell cycle, which facilitates double-strand break (DSB) repair by sister chromatid recombination. However, the role of RAD9 in homologous recombination and in suppressing gross chromosomal rearrangements (GCRs) is not completely understood. In this review we discuss how RAD9 can promote genome instability resulting from aberrant DNA replication intermediates, while suppressing DSB-associated rearrangements. We also discuss possible mechanisms accounting for the synergistic increase in genomic instability in double mutants defective in both RAD9 and recombinational repair. We emphasize that while there is an overlap between checkpoint and recombinational repair pathways, RAD9 and checkpoint pathways can function independently to suppress chromosomal instability. These studies thus elucidate checkpoint mechanisms that control homologous recombination between repeated sequences.</p>
	]]></content:encoded>

	<dc:title>The Two Faces of Saccharomyces cerevisiae RAD9 Function in Homologous Recombination: Suppressor and Promoter of Genome Instability</dc:title>
			<dc:creator>Michael Fasullo</dc:creator>
		<dc:identifier>doi: 10.3390/dna6020019</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2026-04-09</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2026-04-09</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>2</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>19</prism:startingPage>
		<prism:doi>10.3390/dna6020019</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/2/19</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/6/2/18">

	<title>DNA, Vol. 6, Pages 18: DNA-Based Therapeutic Innovations Targeting Microbial Imbalance and Immune Dysfunction in the Gut Ecosystem</title>
	<link>https://www.mdpi.com/2673-8856/6/2/18</link>
	<description>Gut dysbiosis, defined as a disruption in the structure or function of the intestinal microbiota, is increasingly recognized as a key contributor to inflammatory, metabolic, and neuropsychiatric diseases. Conventional interventions such as broad-spectrum antibiotics, generic probiotics, and fecal microbiota transplantation (FMT) often show limited and inconsistent efficacy because they lack specificity, durability, and robust safety controls. In contrast, recent advances in DNA-based technologies are reshaping the therapeutic landscape by enabling targeted, programmable, and mechanistically informed modulation of the gut ecosystem. This review presents an integrated overview of three major domains driving this shift: CRISPR-based systems that selectively delete, silence, or reprogram microbial genes; synthetic biology-driven live therapeutics engineered to sense disease-associated cues and execute controlled responses; and metagenomics-informed strategies that tailor interventions to patient-specific microbial gene profiles and functional deficits. Additionally, we examine the continued evolution of FMT toward DNA-optimized workflows and defined microbial consortia that offer safer, more standardized alternatives to crude donor material. Across these domains, we discuss delivery platforms (including bacteriophages, conjugative plasmids, extracellular vesicles, and synthetic nanoparticles), and compare their efficiency, specificity, and scalability. We further highlight how DNA-guided interventions interface with host immunity&amp;amp;mdash;shaping Treg/Th17 balance, mucosal barrier function, and inflammatory signaling&amp;amp;mdash;while also analyzing ecological and evolutionary risks, biocontainment strategies, and regulatory classification gaps that will govern clinical translation. Together, these developments signal a transition from empirical microbiome manipulation to rational ecosystem engineering. DNA-guided therapies hold strong promise for precise and personalized management of gut-related diseases, but their success will depend on rigorous ecological risk assessment, long-term monitoring, and adaptive regulatory frameworks alongside continued technological innovation.</description>
	<pubDate>2026-04-02</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 18: DNA-Based Therapeutic Innovations Targeting Microbial Imbalance and Immune Dysfunction in the Gut Ecosystem</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/2/18">doi: 10.3390/dna6020018</a></p>
	<p>Authors:
		Hector M. Espiritu
		Arman M. Parayao
		</p>
	<p>Gut dysbiosis, defined as a disruption in the structure or function of the intestinal microbiota, is increasingly recognized as a key contributor to inflammatory, metabolic, and neuropsychiatric diseases. Conventional interventions such as broad-spectrum antibiotics, generic probiotics, and fecal microbiota transplantation (FMT) often show limited and inconsistent efficacy because they lack specificity, durability, and robust safety controls. In contrast, recent advances in DNA-based technologies are reshaping the therapeutic landscape by enabling targeted, programmable, and mechanistically informed modulation of the gut ecosystem. This review presents an integrated overview of three major domains driving this shift: CRISPR-based systems that selectively delete, silence, or reprogram microbial genes; synthetic biology-driven live therapeutics engineered to sense disease-associated cues and execute controlled responses; and metagenomics-informed strategies that tailor interventions to patient-specific microbial gene profiles and functional deficits. Additionally, we examine the continued evolution of FMT toward DNA-optimized workflows and defined microbial consortia that offer safer, more standardized alternatives to crude donor material. Across these domains, we discuss delivery platforms (including bacteriophages, conjugative plasmids, extracellular vesicles, and synthetic nanoparticles), and compare their efficiency, specificity, and scalability. We further highlight how DNA-guided interventions interface with host immunity&amp;amp;mdash;shaping Treg/Th17 balance, mucosal barrier function, and inflammatory signaling&amp;amp;mdash;while also analyzing ecological and evolutionary risks, biocontainment strategies, and regulatory classification gaps that will govern clinical translation. Together, these developments signal a transition from empirical microbiome manipulation to rational ecosystem engineering. DNA-guided therapies hold strong promise for precise and personalized management of gut-related diseases, but their success will depend on rigorous ecological risk assessment, long-term monitoring, and adaptive regulatory frameworks alongside continued technological innovation.</p>
	]]></content:encoded>

	<dc:title>DNA-Based Therapeutic Innovations Targeting Microbial Imbalance and Immune Dysfunction in the Gut Ecosystem</dc:title>
			<dc:creator>Hector M. Espiritu</dc:creator>
			<dc:creator>Arman M. Parayao</dc:creator>
		<dc:identifier>doi: 10.3390/dna6020018</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2026-04-02</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2026-04-02</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>2</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>18</prism:startingPage>
		<prism:doi>10.3390/dna6020018</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/2/18</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/6/2/17">

	<title>DNA, Vol. 6, Pages 17: Time-Resolved Repair of Clustered DNA Damage in &amp;gamma;-Irradiated Yeast Cells</title>
	<link>https://www.mdpi.com/2673-8856/6/2/17</link>
	<description>Background/Objectives: Exposure of cells to ionizing radiation induces isolated DNA lesions, including single-strand breaks, apurinic/apyrimidinic sites, and oxidized bases, as well as clustered damages of different complexity. The latter types of damage are difficult to repair, and the failure to process them accurately and efficiently is related to the induction of mutagenesis, genomic instability, cancer, and aging. Since various types of clustered lesions may occur simultaneously after radiation exposure, leading to a complex architecture of DNA damage, the study of the concomitant formation and the removal kinetics of clustered DNA damage is important to determine the mutagenic and, consequently, the carcinogenic potential of ionizing radiation. Methods: With the aim of capturing real-time coexisting lesion types and assessing the repair kinetics of clustered damages, the simultaneous determination of double-strand breaks, apurinic/apyrimidinic site clusters, and oxypurine clusters induced by &amp;amp;gamma;-irradiation of Saccharomyces cerevisiae yeast cells was performed immediately after exposure and at time intervals during incubation in Liquid Holding Recovery conditions. Results: Ionizing radiation induced lethal and mutagenic events, leading to a dose-dependent linear increase in double-strand breaks, apurinic/apyrimidinic site clusters, and oxypurine clusters. The kinetic study showed that double-strand break frequencies declined during Liquid Holding Recovery, although a transient increase was detected at early time points. At 160 Gy, apurinic/apyrimidinic site clusters repair was evident, whereas at 400 Gy the frequency of damage increased before returning to the initial value at 24 h. In contrast, oxypurine clusters showed no net increase in repaired lesions over 24 h. Conclusions: The complex nature and topological characteristics of ionizing radiation-induced clustered DNA damage may influence lesion processing. Also, ionizing radiation may disrupt redox cellular homeostasis, leading to DNA damage and delayed effects.</description>
	<pubDate>2026-04-01</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 17: Time-Resolved Repair of Clustered DNA Damage in &amp;gamma;-Irradiated Yeast Cells</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/2/17">doi: 10.3390/dna6020017</a></p>
	<p>Authors:
		Ana G. Sánchez
		Deborah J. Keszenman
		</p>
	<p>Background/Objectives: Exposure of cells to ionizing radiation induces isolated DNA lesions, including single-strand breaks, apurinic/apyrimidinic sites, and oxidized bases, as well as clustered damages of different complexity. The latter types of damage are difficult to repair, and the failure to process them accurately and efficiently is related to the induction of mutagenesis, genomic instability, cancer, and aging. Since various types of clustered lesions may occur simultaneously after radiation exposure, leading to a complex architecture of DNA damage, the study of the concomitant formation and the removal kinetics of clustered DNA damage is important to determine the mutagenic and, consequently, the carcinogenic potential of ionizing radiation. Methods: With the aim of capturing real-time coexisting lesion types and assessing the repair kinetics of clustered damages, the simultaneous determination of double-strand breaks, apurinic/apyrimidinic site clusters, and oxypurine clusters induced by &amp;amp;gamma;-irradiation of Saccharomyces cerevisiae yeast cells was performed immediately after exposure and at time intervals during incubation in Liquid Holding Recovery conditions. Results: Ionizing radiation induced lethal and mutagenic events, leading to a dose-dependent linear increase in double-strand breaks, apurinic/apyrimidinic site clusters, and oxypurine clusters. The kinetic study showed that double-strand break frequencies declined during Liquid Holding Recovery, although a transient increase was detected at early time points. At 160 Gy, apurinic/apyrimidinic site clusters repair was evident, whereas at 400 Gy the frequency of damage increased before returning to the initial value at 24 h. In contrast, oxypurine clusters showed no net increase in repaired lesions over 24 h. Conclusions: The complex nature and topological characteristics of ionizing radiation-induced clustered DNA damage may influence lesion processing. Also, ionizing radiation may disrupt redox cellular homeostasis, leading to DNA damage and delayed effects.</p>
	]]></content:encoded>

	<dc:title>Time-Resolved Repair of Clustered DNA Damage in &amp;amp;gamma;-Irradiated Yeast Cells</dc:title>
			<dc:creator>Ana G. Sánchez</dc:creator>
			<dc:creator>Deborah J. Keszenman</dc:creator>
		<dc:identifier>doi: 10.3390/dna6020017</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2026-04-01</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2026-04-01</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>2</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>17</prism:startingPage>
		<prism:doi>10.3390/dna6020017</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/2/17</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/6/1/16">

	<title>DNA, Vol. 6, Pages 16: The Improvements and Applications of Prime Editing</title>
	<link>https://www.mdpi.com/2673-8856/6/1/16</link>
	<description>Clustered Regularly Interspaced Short Palindromic Repeats (CRISPR)/Cas9, a genome-editing technology pioneered in 2012, enables the precise correction of deleterious mutations or disruption of disease-causing genes through targeted double-strand breaks (DSBs), offering potential for treating genetic diseases. However, CRISPR/Cas9 can cause off-target cleavage at non-specific DNA sites, leading to unintended insertions or deletions (indels), which limit its safety and applicability despite ongoing improvements in specificity. Recently, prime editing (PE), an advanced CRISPR-derived technology, has been employed with a Cas9 nickase (Cas9n) fused with a reverse transcriptase and a prime editing guide RNA (pegRNA) to enable precise insertions, deletions, and transversions without inducing DSBs, thus reducing risks of indels and chromosomal aberrations. Furthermore, ongoing optimizations, such as improved pegRNA design and enhanced editing efficiency, have expanded the applications of PE in medical therapeutics, agriculture, and fundamental research. This review summarizes recent advancements in the PE system, including optimized pegRNA designs and enzyme engineering for enhanced efficiency and specificity, alongside novel delivery methods. It also evaluates cutting-edge delivery strategies, such as adeno-associated virus (AAV) vectors, lipid nanoparticles (LNPs) and novel extracellular vesicle (EV)-based systems, and explores PE applications in vitro and in vivo, including disease modeling and therapeutic gene correction.</description>
	<pubDate>2026-03-20</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 16: The Improvements and Applications of Prime Editing</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/1/16">doi: 10.3390/dna6010016</a></p>
	<p>Authors:
		Yaoyao Lu
		Camille Bouchard
		Nicolas Soucy
		Ayesha Siddika
		Gabriel Lamothe
		Kelly Godbout
		Jacques P. Tremblay
		</p>
	<p>Clustered Regularly Interspaced Short Palindromic Repeats (CRISPR)/Cas9, a genome-editing technology pioneered in 2012, enables the precise correction of deleterious mutations or disruption of disease-causing genes through targeted double-strand breaks (DSBs), offering potential for treating genetic diseases. However, CRISPR/Cas9 can cause off-target cleavage at non-specific DNA sites, leading to unintended insertions or deletions (indels), which limit its safety and applicability despite ongoing improvements in specificity. Recently, prime editing (PE), an advanced CRISPR-derived technology, has been employed with a Cas9 nickase (Cas9n) fused with a reverse transcriptase and a prime editing guide RNA (pegRNA) to enable precise insertions, deletions, and transversions without inducing DSBs, thus reducing risks of indels and chromosomal aberrations. Furthermore, ongoing optimizations, such as improved pegRNA design and enhanced editing efficiency, have expanded the applications of PE in medical therapeutics, agriculture, and fundamental research. This review summarizes recent advancements in the PE system, including optimized pegRNA designs and enzyme engineering for enhanced efficiency and specificity, alongside novel delivery methods. It also evaluates cutting-edge delivery strategies, such as adeno-associated virus (AAV) vectors, lipid nanoparticles (LNPs) and novel extracellular vesicle (EV)-based systems, and explores PE applications in vitro and in vivo, including disease modeling and therapeutic gene correction.</p>
	]]></content:encoded>

	<dc:title>The Improvements and Applications of Prime Editing</dc:title>
			<dc:creator>Yaoyao Lu</dc:creator>
			<dc:creator>Camille Bouchard</dc:creator>
			<dc:creator>Nicolas Soucy</dc:creator>
			<dc:creator>Ayesha Siddika</dc:creator>
			<dc:creator>Gabriel Lamothe</dc:creator>
			<dc:creator>Kelly Godbout</dc:creator>
			<dc:creator>Jacques P. Tremblay</dc:creator>
		<dc:identifier>doi: 10.3390/dna6010016</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2026-03-20</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2026-03-20</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>1</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>16</prism:startingPage>
		<prism:doi>10.3390/dna6010016</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/1/16</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/6/1/15">

	<title>DNA, Vol. 6, Pages 15: An Integrative Evolutionary&amp;ndash;Genomic Analysis Reveals the Factors That Shape the Sexual Diversity and Molecular Specificity of Gametophytic Self-Incompatibility in Prunus Species</title>
	<link>https://www.mdpi.com/2673-8856/6/1/15</link>
	<description>Background: Gametophytic self-incompatibility (GSI) controlled by a multi-allelic S-locus, is inferred to have evolved before the spilt of the Rosidae and Asteridae. In Rosaceae, molecular characterisation of the genera Prunus and Malus reveals that different numbers of genes determine GSI specificity. In Prunus, one pistil-expressed (female) gene and one pollen (male) gene encode a series of stylar RNase (S-RNase) alleles and series of S-haplotype-specific F-box (SFB) alleles, respectively, thereby determining the female and male specificity. In contrast, in Malus, GSI specificity is controlled by one pistil gene and multiple pollen genes, known as SFB-brothers (SFBBs), which encode a series of S-RNase and SFBB alleles, respectively, within the S-locus, to determine female and male specificity. Despite these advances, the molecular mechanisms of these two genera remain largely unknown, and it is still uncertain how GSI originated or which factors shape the orientation, evolution, and function of the S-locus. Methods: Therefore, in this study, we applied a holistic integrative approach combining analyses of gene distribution, phylogenetic inference, biogeographic history, selective pressures, co-evolution, and protein interaction networks across three Prunus genomes (P. dulcis, P. persica, and P. avium) to elucidate the evolutionary forces driving sexual diversity and molecular specificity of GSI within the Rosaceae. Results: Our results indicated that rapid diversification of the Prunus S-locus was due to the repeated duplication events in the SFB, SLF, and S-RNase genes producing both functional and non-functional duplicates. Conclusions: In Rosaceae, diversity of S-locus mechanisms is shaped by lineage-specific selection, functional divergence, co-evolution of pistil- and pollen-expressed components, dynamic protein-interaction networks, geological history and climatic change.</description>
	<pubDate>2026-03-13</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 15: An Integrative Evolutionary&amp;ndash;Genomic Analysis Reveals the Factors That Shape the Sexual Diversity and Molecular Specificity of Gametophytic Self-Incompatibility in Prunus Species</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/1/15">doi: 10.3390/dna6010015</a></p>
	<p>Authors:
		Shashi N. Goonetilleke
		Michelle G. Wirthensohn
		</p>
	<p>Background: Gametophytic self-incompatibility (GSI) controlled by a multi-allelic S-locus, is inferred to have evolved before the spilt of the Rosidae and Asteridae. In Rosaceae, molecular characterisation of the genera Prunus and Malus reveals that different numbers of genes determine GSI specificity. In Prunus, one pistil-expressed (female) gene and one pollen (male) gene encode a series of stylar RNase (S-RNase) alleles and series of S-haplotype-specific F-box (SFB) alleles, respectively, thereby determining the female and male specificity. In contrast, in Malus, GSI specificity is controlled by one pistil gene and multiple pollen genes, known as SFB-brothers (SFBBs), which encode a series of S-RNase and SFBB alleles, respectively, within the S-locus, to determine female and male specificity. Despite these advances, the molecular mechanisms of these two genera remain largely unknown, and it is still uncertain how GSI originated or which factors shape the orientation, evolution, and function of the S-locus. Methods: Therefore, in this study, we applied a holistic integrative approach combining analyses of gene distribution, phylogenetic inference, biogeographic history, selective pressures, co-evolution, and protein interaction networks across three Prunus genomes (P. dulcis, P. persica, and P. avium) to elucidate the evolutionary forces driving sexual diversity and molecular specificity of GSI within the Rosaceae. Results: Our results indicated that rapid diversification of the Prunus S-locus was due to the repeated duplication events in the SFB, SLF, and S-RNase genes producing both functional and non-functional duplicates. Conclusions: In Rosaceae, diversity of S-locus mechanisms is shaped by lineage-specific selection, functional divergence, co-evolution of pistil- and pollen-expressed components, dynamic protein-interaction networks, geological history and climatic change.</p>
	]]></content:encoded>

	<dc:title>An Integrative Evolutionary&amp;amp;ndash;Genomic Analysis Reveals the Factors That Shape the Sexual Diversity and Molecular Specificity of Gametophytic Self-Incompatibility in Prunus Species</dc:title>
			<dc:creator>Shashi N. Goonetilleke</dc:creator>
			<dc:creator>Michelle G. Wirthensohn</dc:creator>
		<dc:identifier>doi: 10.3390/dna6010015</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2026-03-13</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2026-03-13</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>1</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>15</prism:startingPage>
		<prism:doi>10.3390/dna6010015</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/1/15</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/6/1/14">

	<title>DNA, Vol. 6, Pages 14: Genetic Susceptibility in Sudden Infant Death Syndrome (SIDS): A Narrative Review of Emerging Evidence</title>
	<link>https://www.mdpi.com/2673-8856/6/1/14</link>
	<description>Sudden Infant Death Syndrome (SIDS) continues to be one of the most challenging and tragic causes of infant mortality in developed countries. While public health interventions have reduced its prevalence, the underlying mechanisms contributing to SIDS remain largely unclear. The biological basis of SIDS is widely believed to be multifactorial in nature, involving inherited genetic vulnerabilities, including mutations in cardiac ion channels and genes associated with brainstem serotonin function, metabolic enzymes, and inflammatory mediators. This review presents a comprehensive analysis of genetic studies relating to SIDS, incorporating recent findings from molecular autopsies, genome-wide association studies and functional assays. It also explores how gene&amp;amp;ndash;environment interactions, polygenic risk scores, and multi-omic strategies are reshaping our understanding of this complex condition. The review aims to integrate recent insights from molecular autopsy, genomic profiling, and gene&amp;amp;ndash;environment interactions to offer a framework for better risk assessment and the stratification of vulnerable infants who could benefit from targeted clinical and public health interventions.</description>
	<pubDate>2026-03-05</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 14: Genetic Susceptibility in Sudden Infant Death Syndrome (SIDS): A Narrative Review of Emerging Evidence</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/1/14">doi: 10.3390/dna6010014</a></p>
	<p>Authors:
		Eteesha Rao
		Srinivas Annavarapu
		</p>
	<p>Sudden Infant Death Syndrome (SIDS) continues to be one of the most challenging and tragic causes of infant mortality in developed countries. While public health interventions have reduced its prevalence, the underlying mechanisms contributing to SIDS remain largely unclear. The biological basis of SIDS is widely believed to be multifactorial in nature, involving inherited genetic vulnerabilities, including mutations in cardiac ion channels and genes associated with brainstem serotonin function, metabolic enzymes, and inflammatory mediators. This review presents a comprehensive analysis of genetic studies relating to SIDS, incorporating recent findings from molecular autopsies, genome-wide association studies and functional assays. It also explores how gene&amp;amp;ndash;environment interactions, polygenic risk scores, and multi-omic strategies are reshaping our understanding of this complex condition. The review aims to integrate recent insights from molecular autopsy, genomic profiling, and gene&amp;amp;ndash;environment interactions to offer a framework for better risk assessment and the stratification of vulnerable infants who could benefit from targeted clinical and public health interventions.</p>
	]]></content:encoded>

	<dc:title>Genetic Susceptibility in Sudden Infant Death Syndrome (SIDS): A Narrative Review of Emerging Evidence</dc:title>
			<dc:creator>Eteesha Rao</dc:creator>
			<dc:creator>Srinivas Annavarapu</dc:creator>
		<dc:identifier>doi: 10.3390/dna6010014</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2026-03-05</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2026-03-05</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>1</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>14</prism:startingPage>
		<prism:doi>10.3390/dna6010014</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/1/14</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/6/1/13">

	<title>DNA, Vol. 6, Pages 13: Recognition Mechanism of Complementary Nucleobases and Sequences in DNA and RNA: Interplay of Watson&amp;ndash;Crick Hydrogen Bond Formation and Base Stacking Interactions</title>
	<link>https://www.mdpi.com/2673-8856/6/1/13</link>
	<description>A/T(U) and G/C nucleobase pair formation in DNA and RNA is crucial to numerous fundamental biological processes, including replication, transcription, and translation. The specificity of A/T(U) and G/C base pairing is used for the recognition of complementary sequences in medical and biotechnological applications, such as PCR, nucleic acid drugs, and CRISPR&amp;amp;ndash;Cas9-based gene editing. It is essential to understand and predict fidelity of biological reactions, avoiding off-target binding, in order to improve the accuracy and efficacy of applications. In particular, recognition mechanisms of complementary bases or whole sequences must be understood in detail. Despite the prevailing view that Watson&amp;amp;ndash;Crick hydrogen bonding is a primary mechanism for complementary base recognition, several experiments have shown that DNA polymerase does not require hydrogen bonding to select complementary bases. Other factors, such as the shape and geometric fitting of the bases and the base stacking, also appear to be crucially involved in the selection. E.g., artificial bases lacking the ability to form hydrogen bonds can still be recognized by DNA polymerase solely based on base-pair geometry. However, hydrogen bonding also contributes importantly to recognition. The accuracy of selecting a complementary nucleobase or sequence varies depending on reactions, suggesting the co-existence of multiple selection mechanisms. This review provides an overview of biological processes and applications involving base pairing and discusses the molecular mechanism underlying complementary base recognition.</description>
	<pubDate>2026-03-04</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 13: Recognition Mechanism of Complementary Nucleobases and Sequences in DNA and RNA: Interplay of Watson&amp;ndash;Crick Hydrogen Bond Formation and Base Stacking Interactions</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/1/13">doi: 10.3390/dna6010013</a></p>
	<p>Authors:
		Masayuki Takahashi
		Bengt Nordén
		</p>
	<p>A/T(U) and G/C nucleobase pair formation in DNA and RNA is crucial to numerous fundamental biological processes, including replication, transcription, and translation. The specificity of A/T(U) and G/C base pairing is used for the recognition of complementary sequences in medical and biotechnological applications, such as PCR, nucleic acid drugs, and CRISPR&amp;amp;ndash;Cas9-based gene editing. It is essential to understand and predict fidelity of biological reactions, avoiding off-target binding, in order to improve the accuracy and efficacy of applications. In particular, recognition mechanisms of complementary bases or whole sequences must be understood in detail. Despite the prevailing view that Watson&amp;amp;ndash;Crick hydrogen bonding is a primary mechanism for complementary base recognition, several experiments have shown that DNA polymerase does not require hydrogen bonding to select complementary bases. Other factors, such as the shape and geometric fitting of the bases and the base stacking, also appear to be crucially involved in the selection. E.g., artificial bases lacking the ability to form hydrogen bonds can still be recognized by DNA polymerase solely based on base-pair geometry. However, hydrogen bonding also contributes importantly to recognition. The accuracy of selecting a complementary nucleobase or sequence varies depending on reactions, suggesting the co-existence of multiple selection mechanisms. This review provides an overview of biological processes and applications involving base pairing and discusses the molecular mechanism underlying complementary base recognition.</p>
	]]></content:encoded>

	<dc:title>Recognition Mechanism of Complementary Nucleobases and Sequences in DNA and RNA: Interplay of Watson&amp;amp;ndash;Crick Hydrogen Bond Formation and Base Stacking Interactions</dc:title>
			<dc:creator>Masayuki Takahashi</dc:creator>
			<dc:creator>Bengt Nordén</dc:creator>
		<dc:identifier>doi: 10.3390/dna6010013</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2026-03-04</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2026-03-04</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>1</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>13</prism:startingPage>
		<prism:doi>10.3390/dna6010013</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/1/13</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/6/1/12">

	<title>DNA, Vol. 6, Pages 12: Genetic Architecture, Developmental Mechanisms and Genomic Applications in Left Ventricular Non-Compaction Cardiomyopathy (LVNC)</title>
	<link>https://www.mdpi.com/2673-8856/6/1/12</link>
	<description>Left ventricular noncompaction cardiomyopathy (LVNC) is characterised by a two-layered ventricular wall with prominent trabeculations and deep recesses adjacent to a thinned compact layer. The phenotype spans from incidental findings to severe heart failure and malignant arrhythmias. More than 190 genes belonging to sarcomeric, cytoskeletal, mitochondrial, transcriptional and signalling pathways have been implicated, although only a subset reaches high gene disease validity in contemporary frameworks. Objectives: (i) Delineate the validated genetic landscape of LVNC; (ii) integrate developmental biology with cardiac genomics; (iii) translate genotype knowledge into diagnostic, prognostic and therapeutic guidance; (iv) outline a research agenda for precision cardiology. Methods: A narrative, pathway-oriented review of human and experimental studies (2000&amp;amp;ndash;July 2024). Results: Thirty-two genes meet definitive/strong validity thresholds and cluster in five biological networks. Oligogenic constellations account for ~4% of probands in recent cohorts. Imaging correlates (especially quantitative trabecular complexity and diffuse fibrosis metrics) provide complementary risk information. Conclusions: LVNC represents a convergence phenotype triggered by perturbations across developmental and structural networks; clinical management benefits from integrated genomics&amp;amp;ndash;imaging workflows and mechanism-informed trial design.</description>
	<pubDate>2026-03-02</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 12: Genetic Architecture, Developmental Mechanisms and Genomic Applications in Left Ventricular Non-Compaction Cardiomyopathy (LVNC)</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/1/12">doi: 10.3390/dna6010012</a></p>
	<p>Authors:
		Luis Elias Martínez-Tittonel
		Florin Radu Ciorba
		Xavier Bayona-Huguet
		Edgardo Kaplinsky
		</p>
	<p>Left ventricular noncompaction cardiomyopathy (LVNC) is characterised by a two-layered ventricular wall with prominent trabeculations and deep recesses adjacent to a thinned compact layer. The phenotype spans from incidental findings to severe heart failure and malignant arrhythmias. More than 190 genes belonging to sarcomeric, cytoskeletal, mitochondrial, transcriptional and signalling pathways have been implicated, although only a subset reaches high gene disease validity in contemporary frameworks. Objectives: (i) Delineate the validated genetic landscape of LVNC; (ii) integrate developmental biology with cardiac genomics; (iii) translate genotype knowledge into diagnostic, prognostic and therapeutic guidance; (iv) outline a research agenda for precision cardiology. Methods: A narrative, pathway-oriented review of human and experimental studies (2000&amp;amp;ndash;July 2024). Results: Thirty-two genes meet definitive/strong validity thresholds and cluster in five biological networks. Oligogenic constellations account for ~4% of probands in recent cohorts. Imaging correlates (especially quantitative trabecular complexity and diffuse fibrosis metrics) provide complementary risk information. Conclusions: LVNC represents a convergence phenotype triggered by perturbations across developmental and structural networks; clinical management benefits from integrated genomics&amp;amp;ndash;imaging workflows and mechanism-informed trial design.</p>
	]]></content:encoded>

	<dc:title>Genetic Architecture, Developmental Mechanisms and Genomic Applications in Left Ventricular Non-Compaction Cardiomyopathy (LVNC)</dc:title>
			<dc:creator>Luis Elias Martínez-Tittonel</dc:creator>
			<dc:creator>Florin Radu Ciorba</dc:creator>
			<dc:creator>Xavier Bayona-Huguet</dc:creator>
			<dc:creator>Edgardo Kaplinsky</dc:creator>
		<dc:identifier>doi: 10.3390/dna6010012</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2026-03-02</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2026-03-02</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>1</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>12</prism:startingPage>
		<prism:doi>10.3390/dna6010012</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/1/12</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/6/1/11">

	<title>DNA, Vol. 6, Pages 11: Erimin: A Pipeline to Identify Bacterial Strain Specific Primers</title>
	<link>https://www.mdpi.com/2673-8856/6/1/11</link>
	<description>Background/Objectives: Strain-level detection of bacteria is essential for applications such as diagnostics, food safety, and microbial monitoring. While 16S rRNA gene sequencing provides genus- or species-level resolution, it cannot reliably discriminate closely related strains. Whole-genome sequencing (WGS) offers high-resolution strain differentiation but remains impractical for routine detection due to cost and analytical complexity. This study aims to enable the translation of WGS data into accurate and cost-effective strain-specific PCR assays. Methods: We developed Erimin, a modular, shell-based bioinformatics pipeline for the automated identification of strain-specific genomic regions from short-read WGS data. Erimin systematically analyzes all available reference genomes for a given bacterial species in combination with sequencing data from a target strain. The workflow integrates reference-based read alignment, extraction of unmapped reads, de novo assembly, contig filtering and validation, genome annotation, and in silico PCR primer design and specificity evaluation. Results: Erimin was applied to Lactiplantibacillus pentosus whole-genome sequencing data to identify genomic regions specific to strain L33 through comparative analysis against a comprehensive set of reference genome assemblies representing multiple Lactiplantibacillus species. These regions were used for in silico PCR primer design and computational specificity assessment against non-target bacterial genomes, supporting discrimination of closely related strains. Conclusions: Erimin provides a structured computational approach for identifying strain-specific genomic regions from WGS data and for supporting the in silico design of PCR primers. This framework facilitates strain-level discrimination using targeted molecular assays.</description>
	<pubDate>2026-02-25</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 11: Erimin: A Pipeline to Identify Bacterial Strain Specific Primers</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/1/11">doi: 10.3390/dna6010011</a></p>
	<p>Authors:
		Margaritis Tsifintaris
		Paraskevi Koutra
		Pavlos Tsiartas
		Panagiotis Repanas
		Sotirios Touliopoulos
		Grigorios Nelios
		Anastasia Anastasiadou
		Georgia Tamouridou
		Anastasios Nikolaou
		Ilias Tsochantaridis
		</p>
	<p>Background/Objectives: Strain-level detection of bacteria is essential for applications such as diagnostics, food safety, and microbial monitoring. While 16S rRNA gene sequencing provides genus- or species-level resolution, it cannot reliably discriminate closely related strains. Whole-genome sequencing (WGS) offers high-resolution strain differentiation but remains impractical for routine detection due to cost and analytical complexity. This study aims to enable the translation of WGS data into accurate and cost-effective strain-specific PCR assays. Methods: We developed Erimin, a modular, shell-based bioinformatics pipeline for the automated identification of strain-specific genomic regions from short-read WGS data. Erimin systematically analyzes all available reference genomes for a given bacterial species in combination with sequencing data from a target strain. The workflow integrates reference-based read alignment, extraction of unmapped reads, de novo assembly, contig filtering and validation, genome annotation, and in silico PCR primer design and specificity evaluation. Results: Erimin was applied to Lactiplantibacillus pentosus whole-genome sequencing data to identify genomic regions specific to strain L33 through comparative analysis against a comprehensive set of reference genome assemblies representing multiple Lactiplantibacillus species. These regions were used for in silico PCR primer design and computational specificity assessment against non-target bacterial genomes, supporting discrimination of closely related strains. Conclusions: Erimin provides a structured computational approach for identifying strain-specific genomic regions from WGS data and for supporting the in silico design of PCR primers. This framework facilitates strain-level discrimination using targeted molecular assays.</p>
	]]></content:encoded>

	<dc:title>Erimin: A Pipeline to Identify Bacterial Strain Specific Primers</dc:title>
			<dc:creator>Margaritis Tsifintaris</dc:creator>
			<dc:creator>Paraskevi Koutra</dc:creator>
			<dc:creator>Pavlos Tsiartas</dc:creator>
			<dc:creator>Panagiotis Repanas</dc:creator>
			<dc:creator>Sotirios Touliopoulos</dc:creator>
			<dc:creator>Grigorios Nelios</dc:creator>
			<dc:creator>Anastasia Anastasiadou</dc:creator>
			<dc:creator>Georgia Tamouridou</dc:creator>
			<dc:creator>Anastasios Nikolaou</dc:creator>
			<dc:creator>Ilias Tsochantaridis</dc:creator>
		<dc:identifier>doi: 10.3390/dna6010011</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2026-02-25</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2026-02-25</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>1</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>11</prism:startingPage>
		<prism:doi>10.3390/dna6010011</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/1/11</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/6/1/10">

	<title>DNA, Vol. 6, Pages 10: Assessment of Human DNA and Y-DNA Quantity in Blow Fly Larvae Cultured on Human Blood: Evaluation of Utility for Identification and Forensic Reporting in Sexual Offense Cases</title>
	<link>https://www.mdpi.com/2673-8856/6/1/10</link>
	<description>Background/Objectives: Forensic entomology remains an underutilized discipline within forensic medicine, particularly in Poland, where it is primarily applied to post-mortem interval (PMI) estimation. Recent studies indicate that insect-derived material may also hold value in the identification of human remains. Methods: In this pilot study, we assess whether blow fly larvae fed on human blood retain amplifiable human DNA, including Y-DNA. Larvae were reared on blood obtained from four volunteers and collected at the third instar stage seven days after oviposition. Human DNA quantification, degradation assessment, and STR/Y-STR profiling were performed. Results: Despite the deliberately small, exploratory sample size, all larval samples yielded complete and concordant STR and, where applicable, Y-STR profiles matching the respective reference donors. Conclusions: These preliminary findings indicate the potential utility of larvae as an alternative biological substrate in forensic contexts, particularly when conventional tissues are unavailable or degraded. However, the results should be interpreted cautiously and require validation in larger, systematically controlled studies before any routine forensic application can be recommended.</description>
	<pubDate>2026-02-13</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 10: Assessment of Human DNA and Y-DNA Quantity in Blow Fly Larvae Cultured on Human Blood: Evaluation of Utility for Identification and Forensic Reporting in Sexual Offense Cases</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/1/10">doi: 10.3390/dna6010010</a></p>
	<p>Authors:
		Dagmara Lisman
		Ilona Savochka
		Ewelina Tarnawska
		Andrzej Ossowski
		</p>
	<p>Background/Objectives: Forensic entomology remains an underutilized discipline within forensic medicine, particularly in Poland, where it is primarily applied to post-mortem interval (PMI) estimation. Recent studies indicate that insect-derived material may also hold value in the identification of human remains. Methods: In this pilot study, we assess whether blow fly larvae fed on human blood retain amplifiable human DNA, including Y-DNA. Larvae were reared on blood obtained from four volunteers and collected at the third instar stage seven days after oviposition. Human DNA quantification, degradation assessment, and STR/Y-STR profiling were performed. Results: Despite the deliberately small, exploratory sample size, all larval samples yielded complete and concordant STR and, where applicable, Y-STR profiles matching the respective reference donors. Conclusions: These preliminary findings indicate the potential utility of larvae as an alternative biological substrate in forensic contexts, particularly when conventional tissues are unavailable or degraded. However, the results should be interpreted cautiously and require validation in larger, systematically controlled studies before any routine forensic application can be recommended.</p>
	]]></content:encoded>

	<dc:title>Assessment of Human DNA and Y-DNA Quantity in Blow Fly Larvae Cultured on Human Blood: Evaluation of Utility for Identification and Forensic Reporting in Sexual Offense Cases</dc:title>
			<dc:creator>Dagmara Lisman</dc:creator>
			<dc:creator>Ilona Savochka</dc:creator>
			<dc:creator>Ewelina Tarnawska</dc:creator>
			<dc:creator>Andrzej Ossowski</dc:creator>
		<dc:identifier>doi: 10.3390/dna6010010</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2026-02-13</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2026-02-13</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>1</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>10</prism:startingPage>
		<prism:doi>10.3390/dna6010010</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/1/10</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/6/1/9">

	<title>DNA, Vol. 6, Pages 9: Mechanisms of Fork Destabilization Under Hydroxyurea: The Interplay of ROS, Checkpoints, and Replisome Integrity</title>
	<link>https://www.mdpi.com/2673-8856/6/1/9</link>
	<description>Faithful DNA replication is essential for genome stability but is constantly challenged by metabolic and oxidative stresses. Hydroxyurea (HU), a widely used antiproliferative drug, is traditionally known to inhibit ribonucleotide reductase and deplete dNTP pools. Recent studies, especially in Saccharomyces cerevisiae, reveal that HU-induced replication stress also arises from reactive oxygen species (ROS), which oxidize DNA, impair iron&amp;amp;ndash;sulfur-dependent replication enzymes, and disrupt replisome function. These combined effects promote helicase&amp;amp;ndash;polymerase uncoupling, accumulation of RPA-coated ssDNA, and activation of the Mec1&amp;amp;ndash;Rad53 (ATR&amp;amp;ndash;CHK1) checkpoint, leading to strand-specific changes such as PCNA unloading and reduced lagging-strand synthesis. When protective pathways are overwhelmed, HU-treated forks collapse, generating chromosome breaks and genome instability. This review summarizes current understanding of how HU remodels replication forks through both ROS-dependent and ROS-independent pathways and highlights emerging insights into how these mechanisms influence genome stability and may be exploited for therapeutic benefit.</description>
	<pubDate>2026-02-09</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 9: Mechanisms of Fork Destabilization Under Hydroxyurea: The Interplay of ROS, Checkpoints, and Replisome Integrity</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/1/9">doi: 10.3390/dna6010009</a></p>
	<p>Authors:
		Srinivasu Karri
		Chuanhe Yu
		</p>
	<p>Faithful DNA replication is essential for genome stability but is constantly challenged by metabolic and oxidative stresses. Hydroxyurea (HU), a widely used antiproliferative drug, is traditionally known to inhibit ribonucleotide reductase and deplete dNTP pools. Recent studies, especially in Saccharomyces cerevisiae, reveal that HU-induced replication stress also arises from reactive oxygen species (ROS), which oxidize DNA, impair iron&amp;amp;ndash;sulfur-dependent replication enzymes, and disrupt replisome function. These combined effects promote helicase&amp;amp;ndash;polymerase uncoupling, accumulation of RPA-coated ssDNA, and activation of the Mec1&amp;amp;ndash;Rad53 (ATR&amp;amp;ndash;CHK1) checkpoint, leading to strand-specific changes such as PCNA unloading and reduced lagging-strand synthesis. When protective pathways are overwhelmed, HU-treated forks collapse, generating chromosome breaks and genome instability. This review summarizes current understanding of how HU remodels replication forks through both ROS-dependent and ROS-independent pathways and highlights emerging insights into how these mechanisms influence genome stability and may be exploited for therapeutic benefit.</p>
	]]></content:encoded>

	<dc:title>Mechanisms of Fork Destabilization Under Hydroxyurea: The Interplay of ROS, Checkpoints, and Replisome Integrity</dc:title>
			<dc:creator>Srinivasu Karri</dc:creator>
			<dc:creator>Chuanhe Yu</dc:creator>
		<dc:identifier>doi: 10.3390/dna6010009</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2026-02-09</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2026-02-09</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>1</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>9</prism:startingPage>
		<prism:doi>10.3390/dna6010009</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/1/9</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/6/1/8">

	<title>DNA, Vol. 6, Pages 8: Using the SIRAH Force-Field to Model Interactions Between Short DNA Duplexes</title>
	<link>https://www.mdpi.com/2673-8856/6/1/8</link>
	<description>Background/Objectives: In recent years, short DNA duplexes have been studied as promising self-assembling systems and versatile building blocks for DNA-based nanotechnologies. Numerical simulations of colloidal systems incorporating such components require, as an input ingredient, reliable yet simplified force-fields capable of capturing the essential features of duplex-duplex interactions. Methods: We employed the coarse-grained SIRAH force field under an implicit solvent approximation to investigate the interactions between a pair of short, rigid double-stranded DNA (dsDNA) duplexes. We investigated the effect of duplex size by employing duplexes of 8 and 20 base pairs. Results: Using this realistic coarse-grained model, we obtained detailed insights into how the interaction force depends on the relative positions and orientations of the duplexes, as well as on salt concentration. Conclusions: Our findings provide a foundational step toward the systematic development of simplified, yet qualitatively accurate model potentials for DNA-based colloidal systems. Beyond nanotechnology, the short-range interaction features captured here are also relevant to biological contexts, including chromatin compaction, homologous recombination, and DNA repair.</description>
	<pubDate>2026-02-02</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 8: Using the SIRAH Force-Field to Model Interactions Between Short DNA Duplexes</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/1/8">doi: 10.3390/dna6010008</a></p>
	<p>Authors:
		Romina Ruberto
		Enrico Smargiassi
		Giorgio Pastore
		</p>
	<p>Background/Objectives: In recent years, short DNA duplexes have been studied as promising self-assembling systems and versatile building blocks for DNA-based nanotechnologies. Numerical simulations of colloidal systems incorporating such components require, as an input ingredient, reliable yet simplified force-fields capable of capturing the essential features of duplex-duplex interactions. Methods: We employed the coarse-grained SIRAH force field under an implicit solvent approximation to investigate the interactions between a pair of short, rigid double-stranded DNA (dsDNA) duplexes. We investigated the effect of duplex size by employing duplexes of 8 and 20 base pairs. Results: Using this realistic coarse-grained model, we obtained detailed insights into how the interaction force depends on the relative positions and orientations of the duplexes, as well as on salt concentration. Conclusions: Our findings provide a foundational step toward the systematic development of simplified, yet qualitatively accurate model potentials for DNA-based colloidal systems. Beyond nanotechnology, the short-range interaction features captured here are also relevant to biological contexts, including chromatin compaction, homologous recombination, and DNA repair.</p>
	]]></content:encoded>

	<dc:title>Using the SIRAH Force-Field to Model Interactions Between Short DNA Duplexes</dc:title>
			<dc:creator>Romina Ruberto</dc:creator>
			<dc:creator>Enrico Smargiassi</dc:creator>
			<dc:creator>Giorgio Pastore</dc:creator>
		<dc:identifier>doi: 10.3390/dna6010008</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2026-02-02</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2026-02-02</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>1</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>8</prism:startingPage>
		<prism:doi>10.3390/dna6010008</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/1/8</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/6/1/7">

	<title>DNA, Vol. 6, Pages 7: Mitochondrial DNA Alterations in HPV-Related Cancers: Emerging Insights and Future Directions</title>
	<link>https://www.mdpi.com/2673-8856/6/1/7</link>
	<description>Human papillomavirus (HPV) infection is a leading cause of cervical cancer and a significant contributor to anogenital and oropharyngeal malignancies worldwide. While the oncogenic functions of HPV oncoproteins E6 and E7 in disrupting nuclear tumor suppressor pathways are well established, their influence on mitochondrial biology has only recently emerged as a critical facet of HPV-driven carcinogenesis. This review synthesizes current evidence on the qualitative and quantitative alterations of mitochondrial DNA (mtDNA) and their functional consequences in HPV-associated cancers. We discuss how E6 and E7 modulate mitochondrial dynamics, bioenergetics, and redox balance, contributing to metabolic reprogramming, resistance to apoptosis, and adaptation to tumor microenvironmental stress. We also examine the clinical significance of mtDNA mutations, deletions, and copy number variations as potential biomarkers for diagnosis, prognosis, and therapy response. Advances in multi-omics approaches, high-throughput sequencing, and patient-derived organoid models have accelerated the exploration of mitochondria as therapeutic targets. Integrating mitochondrial profiling into HPV-related cancer research holds promise for identifying novel metabolic vulnerabilities and guiding the development of mitochondria-directed treatment strategies.</description>
	<pubDate>2026-02-02</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 7: Mitochondrial DNA Alterations in HPV-Related Cancers: Emerging Insights and Future Directions</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/1/7">doi: 10.3390/dna6010007</a></p>
	<p>Authors:
		Muharrem Okan Cakir
		Melis Selek
		Guldide Kayhan
		Betul Yilmaz
		Mustafa Ozdogan
		Gholam Hossein Ashrafi
		</p>
	<p>Human papillomavirus (HPV) infection is a leading cause of cervical cancer and a significant contributor to anogenital and oropharyngeal malignancies worldwide. While the oncogenic functions of HPV oncoproteins E6 and E7 in disrupting nuclear tumor suppressor pathways are well established, their influence on mitochondrial biology has only recently emerged as a critical facet of HPV-driven carcinogenesis. This review synthesizes current evidence on the qualitative and quantitative alterations of mitochondrial DNA (mtDNA) and their functional consequences in HPV-associated cancers. We discuss how E6 and E7 modulate mitochondrial dynamics, bioenergetics, and redox balance, contributing to metabolic reprogramming, resistance to apoptosis, and adaptation to tumor microenvironmental stress. We also examine the clinical significance of mtDNA mutations, deletions, and copy number variations as potential biomarkers for diagnosis, prognosis, and therapy response. Advances in multi-omics approaches, high-throughput sequencing, and patient-derived organoid models have accelerated the exploration of mitochondria as therapeutic targets. Integrating mitochondrial profiling into HPV-related cancer research holds promise for identifying novel metabolic vulnerabilities and guiding the development of mitochondria-directed treatment strategies.</p>
	]]></content:encoded>

	<dc:title>Mitochondrial DNA Alterations in HPV-Related Cancers: Emerging Insights and Future Directions</dc:title>
			<dc:creator>Muharrem Okan Cakir</dc:creator>
			<dc:creator>Melis Selek</dc:creator>
			<dc:creator>Guldide Kayhan</dc:creator>
			<dc:creator>Betul Yilmaz</dc:creator>
			<dc:creator>Mustafa Ozdogan</dc:creator>
			<dc:creator>Gholam Hossein Ashrafi</dc:creator>
		<dc:identifier>doi: 10.3390/dna6010007</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2026-02-02</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2026-02-02</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>1</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>7</prism:startingPage>
		<prism:doi>10.3390/dna6010007</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/1/7</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/6/1/6">

	<title>DNA, Vol. 6, Pages 6: Advancing Liver Cancer Treatment Through Dynamic Genomics and Systems Biology: A Path Toward Personalized Oncology</title>
	<link>https://www.mdpi.com/2673-8856/6/1/6</link>
	<description>This review aims to provide a broad, multidisciplinary perspective on how dynamic genomics and systems biology are transforming modern healthcare, with a focus on cancer especially liver cancer (HCC). It explains how integrating multi-omics technologies such as genomics, transcriptomics, proteomics, interactomics, metabolomics, and spatial transcriptomics deepens our understanding of the complex tumor environment. These innovations enable precise patient stratification based on molecular, spatial, and functional tumor characteristics, allowing for personalized treatment plans. Emphasizing the role of regulatory networks and cell-specific pathways, the review shows how mapping these networks using multi-omics data can predict resistance, identify therapeutic targets, and aid in the development of targeted therapies. The approach shifts from standard, uniform treatments to flexible, real-time strategies guided by technologies such as liquid biopsies and wearable biosensors. A case study showcases the benefits of personalized therapy, which integrates epigenetic modifications, checkpoint inhibitors, and ongoing multi-omics monitoring in a patient with HCC. Future innovations, such as cloud-based genomic ecosystems, federated learning for privacy, and AI-driven data analysis, are also discussed to enhance decision-making and outcomes. The review underscores a move toward predictive and preventive healthcare by integrating layered data into clinical workflows. It reviews ongoing clinical trials using advanced molecular and immunological techniques for HCC. Overall, it promotes a systemic, technological, and spatial approach to cancer treatment, emphasizing the importance of experimental, biochemical&amp;amp;ndash;functional, and biophysical data-driven insights in personalizing medicine.</description>
	<pubDate>2026-01-21</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 6: Advancing Liver Cancer Treatment Through Dynamic Genomics and Systems Biology: A Path Toward Personalized Oncology</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/1/6">doi: 10.3390/dna6010006</a></p>
	<p>Authors:
		Giovanni Colonna
		</p>
	<p>This review aims to provide a broad, multidisciplinary perspective on how dynamic genomics and systems biology are transforming modern healthcare, with a focus on cancer especially liver cancer (HCC). It explains how integrating multi-omics technologies such as genomics, transcriptomics, proteomics, interactomics, metabolomics, and spatial transcriptomics deepens our understanding of the complex tumor environment. These innovations enable precise patient stratification based on molecular, spatial, and functional tumor characteristics, allowing for personalized treatment plans. Emphasizing the role of regulatory networks and cell-specific pathways, the review shows how mapping these networks using multi-omics data can predict resistance, identify therapeutic targets, and aid in the development of targeted therapies. The approach shifts from standard, uniform treatments to flexible, real-time strategies guided by technologies such as liquid biopsies and wearable biosensors. A case study showcases the benefits of personalized therapy, which integrates epigenetic modifications, checkpoint inhibitors, and ongoing multi-omics monitoring in a patient with HCC. Future innovations, such as cloud-based genomic ecosystems, federated learning for privacy, and AI-driven data analysis, are also discussed to enhance decision-making and outcomes. The review underscores a move toward predictive and preventive healthcare by integrating layered data into clinical workflows. It reviews ongoing clinical trials using advanced molecular and immunological techniques for HCC. Overall, it promotes a systemic, technological, and spatial approach to cancer treatment, emphasizing the importance of experimental, biochemical&amp;amp;ndash;functional, and biophysical data-driven insights in personalizing medicine.</p>
	]]></content:encoded>

	<dc:title>Advancing Liver Cancer Treatment Through Dynamic Genomics and Systems Biology: A Path Toward Personalized Oncology</dc:title>
			<dc:creator>Giovanni Colonna</dc:creator>
		<dc:identifier>doi: 10.3390/dna6010006</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2026-01-21</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2026-01-21</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>1</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>6</prism:startingPage>
		<prism:doi>10.3390/dna6010006</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/1/6</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/6/1/5">

	<title>DNA, Vol. 6, Pages 5: Genetic Basis of Familial Cancer Risk: A Narrative Review</title>
	<link>https://www.mdpi.com/2673-8856/6/1/5</link>
	<description>Familial cancers are caused by inherited mutations in specific genes that regulate cell growth, division, and repair. Approximately 5&amp;amp;ndash;10% of all cancer cases have a hereditary component, where germline mutations in certain genes increase an individual&amp;amp;rsquo;s susceptibility to developing cancer. Two major categories of genes are involved in cancer development: tumour suppressor genes and oncogenes. Both play critical roles in regulating normal cell behaviour, and when mutated, they can contribute to uncontrolled cell proliferation and tumour formation. In addition to genetic mutations, epigenetic alterations also play a significant role in familial cancer. Epigenetics refers to changes in gene expression due to DNA methylation, histone modifications, and the dysregulation of non-coding RNAs without alter the underlying DNA sequence. Familial cancer syndromes follow various inheritance patterns, including autosomal dominant, autosomal recessive, X-linked, and mitochondrial inheritance, each with distinct characteristics. Identifying genetic mutations associated with familial cancers is a cornerstone of genetic counselling, which helps individuals and families navigate the complex intersection of genetics, cancer risk, and prevention. Early identification of mutations enables personalized strategies for risk reduction, early detection, and, when applicable, targeted treatment options, ultimately improving patient outcomes.</description>
	<pubDate>2026-01-13</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 5: Genetic Basis of Familial Cancer Risk: A Narrative Review</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/1/5">doi: 10.3390/dna6010005</a></p>
	<p>Authors:
		Eman Fares Sabik
		</p>
	<p>Familial cancers are caused by inherited mutations in specific genes that regulate cell growth, division, and repair. Approximately 5&amp;amp;ndash;10% of all cancer cases have a hereditary component, where germline mutations in certain genes increase an individual&amp;amp;rsquo;s susceptibility to developing cancer. Two major categories of genes are involved in cancer development: tumour suppressor genes and oncogenes. Both play critical roles in regulating normal cell behaviour, and when mutated, they can contribute to uncontrolled cell proliferation and tumour formation. In addition to genetic mutations, epigenetic alterations also play a significant role in familial cancer. Epigenetics refers to changes in gene expression due to DNA methylation, histone modifications, and the dysregulation of non-coding RNAs without alter the underlying DNA sequence. Familial cancer syndromes follow various inheritance patterns, including autosomal dominant, autosomal recessive, X-linked, and mitochondrial inheritance, each with distinct characteristics. Identifying genetic mutations associated with familial cancers is a cornerstone of genetic counselling, which helps individuals and families navigate the complex intersection of genetics, cancer risk, and prevention. Early identification of mutations enables personalized strategies for risk reduction, early detection, and, when applicable, targeted treatment options, ultimately improving patient outcomes.</p>
	]]></content:encoded>

	<dc:title>Genetic Basis of Familial Cancer Risk: A Narrative Review</dc:title>
			<dc:creator>Eman Fares Sabik</dc:creator>
		<dc:identifier>doi: 10.3390/dna6010005</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2026-01-13</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2026-01-13</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>1</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>5</prism:startingPage>
		<prism:doi>10.3390/dna6010005</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/1/5</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/6/1/4">

	<title>DNA, Vol. 6, Pages 4: The Effect of Fatty Acid-Binding Protein 3 Exposure on Endothelial Transcriptomics</title>
	<link>https://www.mdpi.com/2673-8856/6/1/4</link>
	<description>Background: Fatty acid-binding protein 3 (FABP3) is released in circulation following myocardial infarction, and an increased level of circulatory FABP3 has also been reported in peripheral artery disease patients, exposing endothelial cells to higher levels of FABP3. Recently, loss of endothelial FABP3 was shown to protect endothelial cells against inflammation-induced endothelial dysfunction; however, the effect of FABP3 exposure on endothelial cells is unknown. Accordingly, to study the effect of FABP3 exposure on endothelial cells, we performed transcriptomic profiling following recombinant human FABP3 (rhFABP3) treatment of endothelial cells. Methods: Cultured human endothelial cells were treated with either a vehicle or rhFABP3 (50 ng/mL, 6 h); then, RNA sequencing was performed. Gene expression analysis followed by gene ontology (GO) and Kyoto Encyclopedia of Genes and Genomes (KEGG) pathway analyses was performed to identify differentially expressed genes and affected cellular functions and pathways. Results: Differential gene expression analysis revealed kinesin family member 26b (KIF26B) to be the most upregulated and survival of motor neuron 2 (SMN2) to be the most downregulated genes in rhFABP3-treated compared to vehicle-treated endothelial cells. Most of the differentially expressed genes were associated with endothelial cell motility, immune response, and angiogenesis. GO and KEGG analyses indicated that rhFABP3 exposure impacts several crucial pathways, predominantly &amp;amp;ldquo;Regulation of leukocyte mediated cytotoxicity&amp;amp;rdquo; and &amp;amp;ldquo;Natural killer cell mediated cytotoxicity&amp;amp;rdquo;, suggesting its involvement in endothelial cell physiology and response mechanisms to cardiovascular stress. Conclusions: This is the first study to evaluate rhFABP3-induced transcriptomics in human endothelial cells. Our data reveal novel genes and pathways affected by the exposure of endothelial cells to FABP3. Further research is necessary to validate these findings and fully understand FABP3&amp;amp;rsquo;s role in endothelial biology and in cardiovascular diseases like myocardial infarction and peripheral artery disease.</description>
	<pubDate>2026-01-08</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 4: The Effect of Fatty Acid-Binding Protein 3 Exposure on Endothelial Transcriptomics</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/1/4">doi: 10.3390/dna6010004</a></p>
	<p>Authors:
		Hien C. Nguyen
		Aman Singh
		Christina A. Castellani
		Mohammad Qadura
		Krishna K. Singh
		</p>
	<p>Background: Fatty acid-binding protein 3 (FABP3) is released in circulation following myocardial infarction, and an increased level of circulatory FABP3 has also been reported in peripheral artery disease patients, exposing endothelial cells to higher levels of FABP3. Recently, loss of endothelial FABP3 was shown to protect endothelial cells against inflammation-induced endothelial dysfunction; however, the effect of FABP3 exposure on endothelial cells is unknown. Accordingly, to study the effect of FABP3 exposure on endothelial cells, we performed transcriptomic profiling following recombinant human FABP3 (rhFABP3) treatment of endothelial cells. Methods: Cultured human endothelial cells were treated with either a vehicle or rhFABP3 (50 ng/mL, 6 h); then, RNA sequencing was performed. Gene expression analysis followed by gene ontology (GO) and Kyoto Encyclopedia of Genes and Genomes (KEGG) pathway analyses was performed to identify differentially expressed genes and affected cellular functions and pathways. Results: Differential gene expression analysis revealed kinesin family member 26b (KIF26B) to be the most upregulated and survival of motor neuron 2 (SMN2) to be the most downregulated genes in rhFABP3-treated compared to vehicle-treated endothelial cells. Most of the differentially expressed genes were associated with endothelial cell motility, immune response, and angiogenesis. GO and KEGG analyses indicated that rhFABP3 exposure impacts several crucial pathways, predominantly &amp;amp;ldquo;Regulation of leukocyte mediated cytotoxicity&amp;amp;rdquo; and &amp;amp;ldquo;Natural killer cell mediated cytotoxicity&amp;amp;rdquo;, suggesting its involvement in endothelial cell physiology and response mechanisms to cardiovascular stress. Conclusions: This is the first study to evaluate rhFABP3-induced transcriptomics in human endothelial cells. Our data reveal novel genes and pathways affected by the exposure of endothelial cells to FABP3. Further research is necessary to validate these findings and fully understand FABP3&amp;amp;rsquo;s role in endothelial biology and in cardiovascular diseases like myocardial infarction and peripheral artery disease.</p>
	]]></content:encoded>

	<dc:title>The Effect of Fatty Acid-Binding Protein 3 Exposure on Endothelial Transcriptomics</dc:title>
			<dc:creator>Hien C. Nguyen</dc:creator>
			<dc:creator>Aman Singh</dc:creator>
			<dc:creator>Christina A. Castellani</dc:creator>
			<dc:creator>Mohammad Qadura</dc:creator>
			<dc:creator>Krishna K. Singh</dc:creator>
		<dc:identifier>doi: 10.3390/dna6010004</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2026-01-08</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2026-01-08</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>1</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>4</prism:startingPage>
		<prism:doi>10.3390/dna6010004</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/1/4</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/6/1/3">

	<title>DNA, Vol. 6, Pages 3: A Preliminary Machine Learning Assessment of Oxidation-Reduction Potential and Classical Sperm Parameters as Predictors of Sperm DNA Fragmentation Index</title>
	<link>https://www.mdpi.com/2673-8856/6/1/3</link>
	<description>Background/Objectives: Traditional semen analysis techniques frequently result in incorrect male infertility diagnoses, despite advancements in assisted reproductive technology (ART). Reduced fertilization potential, decreased embryo development, and lower pregnancy success rates are associated with elevated DNA Fragmentation Index (DFI), which has been proposed as a diagnostic indicator of sperm DNA integrity. Improving reproductive outcomes requires incorporating DFI into predictive models due to its diagnostic importance. Methods: In this study, semen samples were stratified into low and high DFI groups across two datasets: the &amp;amp;ldquo;Reference&amp;amp;rdquo; dataset (162 samples) containing sperm motility (A, B, and C), total sperm count, and morphology percentage, and the &amp;amp;ldquo;ORP&amp;amp;rdquo; dataset (37 samples) with the same features plus oxidation-reduction potential (ORP). We trained and evaluated four machine learning (ML) models&amp;amp;mdash;Logistic Regression, Support Vector Machines (SVM), Bernoulli Naive Bayes (BNB), and Random Forest (RF)- using three feature subsets and three preprocessing techniques (Robust Scaling, Min-Max Scaling, and Standard Scaling). Results: Feature subset selection had a significant impact on model performance, with the full feature set (X_all) yielding the best results, and the combination of Robust and MinMax scaling forming the most effective preprocessing pipeline. Conclusions: ORP proved to be a critical feature, enhancing model generalization and prediction performance. These findings suggest that data enrichment, particularly with ORP, could enable the development of ML frameworks that improve prognostic precision and patient outcomes in ART.</description>
	<pubDate>2026-01-08</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 3: A Preliminary Machine Learning Assessment of Oxidation-Reduction Potential and Classical Sperm Parameters as Predictors of Sperm DNA Fragmentation Index</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/1/3">doi: 10.3390/dna6010003</a></p>
	<p>Authors:
		Emmanouil D. Oikonomou
		Efthalia Moustakli
		Athanasios Zikopoulos
		Stefanos Dafopoulos
		Ermioni Prapa
		Antonis-Marios Gkountis
		Athanasios Zachariou
		Agni Pantou
		Nikolaos Giannakeas
		Konstantinos Pantos
		Alexandros T. Tzallas
		Konstantinos Dafopoulos
		</p>
	<p>Background/Objectives: Traditional semen analysis techniques frequently result in incorrect male infertility diagnoses, despite advancements in assisted reproductive technology (ART). Reduced fertilization potential, decreased embryo development, and lower pregnancy success rates are associated with elevated DNA Fragmentation Index (DFI), which has been proposed as a diagnostic indicator of sperm DNA integrity. Improving reproductive outcomes requires incorporating DFI into predictive models due to its diagnostic importance. Methods: In this study, semen samples were stratified into low and high DFI groups across two datasets: the &amp;amp;ldquo;Reference&amp;amp;rdquo; dataset (162 samples) containing sperm motility (A, B, and C), total sperm count, and morphology percentage, and the &amp;amp;ldquo;ORP&amp;amp;rdquo; dataset (37 samples) with the same features plus oxidation-reduction potential (ORP). We trained and evaluated four machine learning (ML) models&amp;amp;mdash;Logistic Regression, Support Vector Machines (SVM), Bernoulli Naive Bayes (BNB), and Random Forest (RF)- using three feature subsets and three preprocessing techniques (Robust Scaling, Min-Max Scaling, and Standard Scaling). Results: Feature subset selection had a significant impact on model performance, with the full feature set (X_all) yielding the best results, and the combination of Robust and MinMax scaling forming the most effective preprocessing pipeline. Conclusions: ORP proved to be a critical feature, enhancing model generalization and prediction performance. These findings suggest that data enrichment, particularly with ORP, could enable the development of ML frameworks that improve prognostic precision and patient outcomes in ART.</p>
	]]></content:encoded>

	<dc:title>A Preliminary Machine Learning Assessment of Oxidation-Reduction Potential and Classical Sperm Parameters as Predictors of Sperm DNA Fragmentation Index</dc:title>
			<dc:creator>Emmanouil D. Oikonomou</dc:creator>
			<dc:creator>Efthalia Moustakli</dc:creator>
			<dc:creator>Athanasios Zikopoulos</dc:creator>
			<dc:creator>Stefanos Dafopoulos</dc:creator>
			<dc:creator>Ermioni Prapa</dc:creator>
			<dc:creator>Antonis-Marios Gkountis</dc:creator>
			<dc:creator>Athanasios Zachariou</dc:creator>
			<dc:creator>Agni Pantou</dc:creator>
			<dc:creator>Nikolaos Giannakeas</dc:creator>
			<dc:creator>Konstantinos Pantos</dc:creator>
			<dc:creator>Alexandros T. Tzallas</dc:creator>
			<dc:creator>Konstantinos Dafopoulos</dc:creator>
		<dc:identifier>doi: 10.3390/dna6010003</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2026-01-08</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2026-01-08</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>1</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>3</prism:startingPage>
		<prism:doi>10.3390/dna6010003</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/1/3</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/6/1/2">

	<title>DNA, Vol. 6, Pages 2: Dermatogenomic Insights into Systemic Diseases: Implications for Primary and Preventive Medicine</title>
	<link>https://www.mdpi.com/2673-8856/6/1/2</link>
	<description>The emerging field of dermatogenomics, which examines visible dermatologic phenotypes alongside their polygenic factors, offers insights for early disease recognition and initiation of preventative measures. This review explores key dermatologic manifestations serving as clinical markers of systemic diseases, emphasizing cardiovascular, autoimmune, neuropsychiatric, metabolic/endocrine, and cancer-related conditions. Importantly, the pathogenesis of certain skin conditions including psoriasis, atopic dermatitis, vitiligo, and hidradenitis suppurativa is linked to systemic disease through shared genetic and epigenetic mechanisms. The diagnostic markers for these integumentary diseases are discussed alongside their shared mechanisms to systemic diseases, highlighting the clinical manifestation typically seen in primary care settings. This narrative review integrates dermatology with genomics, primary care, preventative care, public health, and internal medicine perspectives, underscoring the importance of an interdisciplinary and collaborative approach to patient care. Lastly, this review advocates for standardized dermatogenomic screening thresholds, inclusivity and expansion of genomic datasets, and the leverage of artificial intelligence and multi-omic technologies in preventative healthcare.</description>
	<pubDate>2026-01-06</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 2: Dermatogenomic Insights into Systemic Diseases: Implications for Primary and Preventive Medicine</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/1/2">doi: 10.3390/dna6010002</a></p>
	<p>Authors:
		Yu Xuan Jin
		David Alexandru Anton
		Ming Yuan Zhou
		Amir Pourghadiri
		Chaocheng Liu
		</p>
	<p>The emerging field of dermatogenomics, which examines visible dermatologic phenotypes alongside their polygenic factors, offers insights for early disease recognition and initiation of preventative measures. This review explores key dermatologic manifestations serving as clinical markers of systemic diseases, emphasizing cardiovascular, autoimmune, neuropsychiatric, metabolic/endocrine, and cancer-related conditions. Importantly, the pathogenesis of certain skin conditions including psoriasis, atopic dermatitis, vitiligo, and hidradenitis suppurativa is linked to systemic disease through shared genetic and epigenetic mechanisms. The diagnostic markers for these integumentary diseases are discussed alongside their shared mechanisms to systemic diseases, highlighting the clinical manifestation typically seen in primary care settings. This narrative review integrates dermatology with genomics, primary care, preventative care, public health, and internal medicine perspectives, underscoring the importance of an interdisciplinary and collaborative approach to patient care. Lastly, this review advocates for standardized dermatogenomic screening thresholds, inclusivity and expansion of genomic datasets, and the leverage of artificial intelligence and multi-omic technologies in preventative healthcare.</p>
	]]></content:encoded>

	<dc:title>Dermatogenomic Insights into Systemic Diseases: Implications for Primary and Preventive Medicine</dc:title>
			<dc:creator>Yu Xuan Jin</dc:creator>
			<dc:creator>David Alexandru Anton</dc:creator>
			<dc:creator>Ming Yuan Zhou</dc:creator>
			<dc:creator>Amir Pourghadiri</dc:creator>
			<dc:creator>Chaocheng Liu</dc:creator>
		<dc:identifier>doi: 10.3390/dna6010002</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2026-01-06</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2026-01-06</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>1</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>2</prism:startingPage>
		<prism:doi>10.3390/dna6010002</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/1/2</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/6/1/1">

	<title>DNA, Vol. 6, Pages 1: Integrating Genome Mining and Untargeted Metabolomics to Uncover the Chemical Diversity of Streptomyces galbus I339, a Strain from the Unique Brazilian Caatinga Biome</title>
	<link>https://www.mdpi.com/2673-8856/6/1/1</link>
	<description>Background/Objectives: The escalating antimicrobial resistance crisis underscores the urgent need to explore underexplored ecological niches as reservoirs of novel bioactive compounds. The Brazilian Caatinga, a unique semi-arid biome, represents a promising reservoir for microbial discovery. Methods: In this study, we report the polyphasic characterization of Streptomyces galbus I339, a strain isolated from Caatinga soil. Whole-genome sequencing and phylogenomic analysis confirmed its taxonomic identity. In silico mining of the genome was conducted to assess biosynthetic potential. This genetic promise was experimentally validated through an integrated metabolomic approach, including liquid chromatography-tandem mass spectrometry (LC-MS/MS), nuclear magnetic resonance (NMR) spectroscopy, and gas chromatography-mass spectrometry (GC-MS) profiling. The anti-mycobacterial activity of the crude extract was evaluated against Mycobacterium tuberculosis. Results: The strain S. galbus I339 possesses a 7.55 Mbp genome with a high GC content (73.17%). Genome mining uncovered a remarkable biosynthetic potential, with 45 biosynthetic gene clusters (BGCs) predicted, including those for known antibiotics like actinomycins, as well as numerous orphan clusters. Genome mining uncovered a remarkable biosynthetic potential, with 45 biosynthetic gene clusters (BGCs) predicted, including those for known antibiotics like actinomycins, as well as numerous orphan clusters. Metabolomic analyses confirmed the production of actinomycins and identified abundant diketopiperazines. Furthermore, the crude extract exhibited antimycobacterial activity, with a potent MIC of 0.625 &amp;amp;micro;g/mL. Conclusions: The convergence of genomic and metabolomic data not only validates the expression of a fraction of this strain&amp;amp;rsquo;s biosynthetic arsenal but also highlights a significant untapped potential, with the majority of BGCs remaining silent under the tested conditions. Our work establishes S. galbus I339 as a compelling candidate for biodiscovery and underscores the value of integrating genomics and metabolomics to unlock the chemical diversity of microbes from extreme environments.</description>
	<pubDate>2025-12-24</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 6, Pages 1: Integrating Genome Mining and Untargeted Metabolomics to Uncover the Chemical Diversity of Streptomyces galbus I339, a Strain from the Unique Brazilian Caatinga Biome</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/6/1/1">doi: 10.3390/dna6010001</a></p>
	<p>Authors:
		Edson Alexandre Nascimento-Silva
		André Luiz Leocádio de Souza Matos
		Thalisson Amorim de Souza
		Anauara Lima e Silva
		Lucas Silva Abreu
		Monalisa Mota Merces
		Renata Priscila Almeida Silva
		Ubiratan Ribeiro da Silva Filho
		Adrielly Silva Albuquerque de Andrade
		Josean Fechine Tavares
		Celso José Bruno de Oliveira
		Patrícia Emilia Naves Givisiez
		Demetrius Antonio Machado de Araújo
		Valnês da Silva Rodrigues-Junior
		Samuel Paulo Cibulski
		</p>
	<p>Background/Objectives: The escalating antimicrobial resistance crisis underscores the urgent need to explore underexplored ecological niches as reservoirs of novel bioactive compounds. The Brazilian Caatinga, a unique semi-arid biome, represents a promising reservoir for microbial discovery. Methods: In this study, we report the polyphasic characterization of Streptomyces galbus I339, a strain isolated from Caatinga soil. Whole-genome sequencing and phylogenomic analysis confirmed its taxonomic identity. In silico mining of the genome was conducted to assess biosynthetic potential. This genetic promise was experimentally validated through an integrated metabolomic approach, including liquid chromatography-tandem mass spectrometry (LC-MS/MS), nuclear magnetic resonance (NMR) spectroscopy, and gas chromatography-mass spectrometry (GC-MS) profiling. The anti-mycobacterial activity of the crude extract was evaluated against Mycobacterium tuberculosis. Results: The strain S. galbus I339 possesses a 7.55 Mbp genome with a high GC content (73.17%). Genome mining uncovered a remarkable biosynthetic potential, with 45 biosynthetic gene clusters (BGCs) predicted, including those for known antibiotics like actinomycins, as well as numerous orphan clusters. Genome mining uncovered a remarkable biosynthetic potential, with 45 biosynthetic gene clusters (BGCs) predicted, including those for known antibiotics like actinomycins, as well as numerous orphan clusters. Metabolomic analyses confirmed the production of actinomycins and identified abundant diketopiperazines. Furthermore, the crude extract exhibited antimycobacterial activity, with a potent MIC of 0.625 &amp;amp;micro;g/mL. Conclusions: The convergence of genomic and metabolomic data not only validates the expression of a fraction of this strain&amp;amp;rsquo;s biosynthetic arsenal but also highlights a significant untapped potential, with the majority of BGCs remaining silent under the tested conditions. Our work establishes S. galbus I339 as a compelling candidate for biodiscovery and underscores the value of integrating genomics and metabolomics to unlock the chemical diversity of microbes from extreme environments.</p>
	]]></content:encoded>

	<dc:title>Integrating Genome Mining and Untargeted Metabolomics to Uncover the Chemical Diversity of Streptomyces galbus I339, a Strain from the Unique Brazilian Caatinga Biome</dc:title>
			<dc:creator>Edson Alexandre Nascimento-Silva</dc:creator>
			<dc:creator>André Luiz Leocádio de Souza Matos</dc:creator>
			<dc:creator>Thalisson Amorim de Souza</dc:creator>
			<dc:creator>Anauara Lima e Silva</dc:creator>
			<dc:creator>Lucas Silva Abreu</dc:creator>
			<dc:creator>Monalisa Mota Merces</dc:creator>
			<dc:creator>Renata Priscila Almeida Silva</dc:creator>
			<dc:creator>Ubiratan Ribeiro da Silva Filho</dc:creator>
			<dc:creator>Adrielly Silva Albuquerque de Andrade</dc:creator>
			<dc:creator>Josean Fechine Tavares</dc:creator>
			<dc:creator>Celso José Bruno de Oliveira</dc:creator>
			<dc:creator>Patrícia Emilia Naves Givisiez</dc:creator>
			<dc:creator>Demetrius Antonio Machado de Araújo</dc:creator>
			<dc:creator>Valnês da Silva Rodrigues-Junior</dc:creator>
			<dc:creator>Samuel Paulo Cibulski</dc:creator>
		<dc:identifier>doi: 10.3390/dna6010001</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-12-24</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-12-24</prism:publicationDate>
	<prism:volume>6</prism:volume>
	<prism:number>1</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>1</prism:startingPage>
		<prism:doi>10.3390/dna6010001</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/6/1/1</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/4/60">

	<title>DNA, Vol. 5, Pages 60: Nutrigenomics and Epigenetic Regulation in Poultry: DNA-Based Mechanisms Linking Diet to Performance and Health</title>
	<link>https://www.mdpi.com/2673-8856/5/4/60</link>
	<description>In animals and humans, nutrients influence signaling cascades, transcriptional programs, chromatin dynamics, and mitochondrial function, collectively shaping traits related to growth, immunity, reproduction, and stress resilience. This review synthesizes evidence supporting nutrient-mediated regulation of DNA methylation, histone modifications, non-coding RNAs, and mitochondrial biogenesis, and emphasizes their integration within metabolic and developmental pathways. Recent advances in epigenome-wide association studies (EWAS), single-cell multi-omics, and systems biology approaches have revealed how diet composition and timing can reprogram gene networks, sometimes across generations. Particular attention is given to central metabolic regulators (e.g., PPARs, mTOR) and to interactions among methyl donors, fatty acids, vitamins, and trace elements that maintain genomic stability and metabolic homeostasis. Nutrigenetic evidence further shows how genetic polymorphisms (SNPs) in loci such as IGF-1, MSTN, PPARs, and FASN alter nutrient responsiveness and influence traits like feed efficiency, body composition, and egg quality, information that can be exploited via marker-assisted or genomic selection. Mitochondrial DNA integrity and oxidative capacity are key determinants of feed conversion and energy efficiency, while dietary antioxidants and mitochondria-targeted nutrients help preserve bioenergetic function. The gut microbiome acts as a co-regulator of host gene expression through metabolite-mediated epigenetic effects, linking diet, microbial metabolites (e.g., SCFAs), and host genomic responses via the gut&amp;amp;ndash;liver axis. Emerging tools such as whole-genome and transcriptome sequencing, EWAS, integrated multi-omics, and CRISPR-based functional studies are transforming the field and enabling DNA-informed precision nutrition. Integrating genetic, epigenetic, and molecular data will enable genotype-specific feeding strategies, maternal and early-life programming, and predictive models that enhance productivity, health, and sustainability in poultry production. Translating these molecular insights into practice offers pathways to enhance animal welfare, reduce environmental impact, and shift nutrition from empirical feeding toward mechanistically informed precision approaches.</description>
	<pubDate>2025-12-18</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 60: Nutrigenomics and Epigenetic Regulation in Poultry: DNA-Based Mechanisms Linking Diet to Performance and Health</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/4/60">doi: 10.3390/dna5040060</a></p>
	<p>Authors:
		Muhammad Naeem
		Arjmand Fatima
		</p>
	<p>In animals and humans, nutrients influence signaling cascades, transcriptional programs, chromatin dynamics, and mitochondrial function, collectively shaping traits related to growth, immunity, reproduction, and stress resilience. This review synthesizes evidence supporting nutrient-mediated regulation of DNA methylation, histone modifications, non-coding RNAs, and mitochondrial biogenesis, and emphasizes their integration within metabolic and developmental pathways. Recent advances in epigenome-wide association studies (EWAS), single-cell multi-omics, and systems biology approaches have revealed how diet composition and timing can reprogram gene networks, sometimes across generations. Particular attention is given to central metabolic regulators (e.g., PPARs, mTOR) and to interactions among methyl donors, fatty acids, vitamins, and trace elements that maintain genomic stability and metabolic homeostasis. Nutrigenetic evidence further shows how genetic polymorphisms (SNPs) in loci such as IGF-1, MSTN, PPARs, and FASN alter nutrient responsiveness and influence traits like feed efficiency, body composition, and egg quality, information that can be exploited via marker-assisted or genomic selection. Mitochondrial DNA integrity and oxidative capacity are key determinants of feed conversion and energy efficiency, while dietary antioxidants and mitochondria-targeted nutrients help preserve bioenergetic function. The gut microbiome acts as a co-regulator of host gene expression through metabolite-mediated epigenetic effects, linking diet, microbial metabolites (e.g., SCFAs), and host genomic responses via the gut&amp;amp;ndash;liver axis. Emerging tools such as whole-genome and transcriptome sequencing, EWAS, integrated multi-omics, and CRISPR-based functional studies are transforming the field and enabling DNA-informed precision nutrition. Integrating genetic, epigenetic, and molecular data will enable genotype-specific feeding strategies, maternal and early-life programming, and predictive models that enhance productivity, health, and sustainability in poultry production. Translating these molecular insights into practice offers pathways to enhance animal welfare, reduce environmental impact, and shift nutrition from empirical feeding toward mechanistically informed precision approaches.</p>
	]]></content:encoded>

	<dc:title>Nutrigenomics and Epigenetic Regulation in Poultry: DNA-Based Mechanisms Linking Diet to Performance and Health</dc:title>
			<dc:creator>Muhammad Naeem</dc:creator>
			<dc:creator>Arjmand Fatima</dc:creator>
		<dc:identifier>doi: 10.3390/dna5040060</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-12-18</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-12-18</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>4</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>60</prism:startingPage>
		<prism:doi>10.3390/dna5040060</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/4/60</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/4/59">

	<title>DNA, Vol. 5, Pages 59: The CB2 Receptor in Immune Regulation and Disease: Genetic Architecture, Epigenetic Control, and Emerging Therapeutic Strategies</title>
	<link>https://www.mdpi.com/2673-8856/5/4/59</link>
	<description>The cannabinoid receptor type 2 (CB2) is increasingly recognized as a crucial regulator of neuroimmune balance in the brain. In addition to its well-established role in immunity, the CB2 receptor has been identified in specific populations of neurons and glial cells throughout various brain regions, and its expression is dynamically increased during inflammatory and neuropathological conditions, positioning it as a potential non-psychoactive target for modifying neurological diseases. The expression of the CB2 gene (CNR2) is finely tuned by epigenetic processes, including promoter CpG methylation, histone modifications, and non-coding RNAs, which regulate receptor availability and signaling preferences in response to stress, inflammation, and environmental factors. CB2 signaling interacts with TRP channels (such as TRPV1), nuclear receptors (PPAR&amp;amp;gamma;), and orphan G Protein-Coupled Receptors (GPCRs, including GPR55 and GPR18) within the endocannabinoidome (eCBome), influencing microglial characteristics, cytokine production, and synaptic activity. We review how these interconnected mechanisms affect neurodegenerative and neuropsychiatric disorders, underscore the species- and cell-type-specificities that pose challenges for translation, and explore emerging strategies, including selective agonists, positive allosteric modulators, and biased ligands, that leverage the signaling adaptability of the CB2 receptor while reducing central effects mediated by the CB1 receptor. This focus on the neuro-centric perspective repositions the CB2 receptor as an epigenetically informed, context-dependent hub within the eCBome, making it a promising candidate for precision therapies in conditions featuring neuroinflammation.</description>
	<pubDate>2025-12-11</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 59: The CB2 Receptor in Immune Regulation and Disease: Genetic Architecture, Epigenetic Control, and Emerging Therapeutic Strategies</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/4/59">doi: 10.3390/dna5040059</a></p>
	<p>Authors:
		Hilal Kalkan
		Nicolas Flamand
		</p>
	<p>The cannabinoid receptor type 2 (CB2) is increasingly recognized as a crucial regulator of neuroimmune balance in the brain. In addition to its well-established role in immunity, the CB2 receptor has been identified in specific populations of neurons and glial cells throughout various brain regions, and its expression is dynamically increased during inflammatory and neuropathological conditions, positioning it as a potential non-psychoactive target for modifying neurological diseases. The expression of the CB2 gene (CNR2) is finely tuned by epigenetic processes, including promoter CpG methylation, histone modifications, and non-coding RNAs, which regulate receptor availability and signaling preferences in response to stress, inflammation, and environmental factors. CB2 signaling interacts with TRP channels (such as TRPV1), nuclear receptors (PPAR&amp;amp;gamma;), and orphan G Protein-Coupled Receptors (GPCRs, including GPR55 and GPR18) within the endocannabinoidome (eCBome), influencing microglial characteristics, cytokine production, and synaptic activity. We review how these interconnected mechanisms affect neurodegenerative and neuropsychiatric disorders, underscore the species- and cell-type-specificities that pose challenges for translation, and explore emerging strategies, including selective agonists, positive allosteric modulators, and biased ligands, that leverage the signaling adaptability of the CB2 receptor while reducing central effects mediated by the CB1 receptor. This focus on the neuro-centric perspective repositions the CB2 receptor as an epigenetically informed, context-dependent hub within the eCBome, making it a promising candidate for precision therapies in conditions featuring neuroinflammation.</p>
	]]></content:encoded>

	<dc:title>The CB2 Receptor in Immune Regulation and Disease: Genetic Architecture, Epigenetic Control, and Emerging Therapeutic Strategies</dc:title>
			<dc:creator>Hilal Kalkan</dc:creator>
			<dc:creator>Nicolas Flamand</dc:creator>
		<dc:identifier>doi: 10.3390/dna5040059</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-12-11</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-12-11</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>4</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>59</prism:startingPage>
		<prism:doi>10.3390/dna5040059</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/4/59</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/4/58">

	<title>DNA, Vol. 5, Pages 58: First Metagenomic Shotgun Sequencing Report on the Microbiome of Local Goat and Sheep Raw Milk in Benin for Dairy Valorization</title>
	<link>https://www.mdpi.com/2673-8856/5/4/58</link>
	<description>Background/Objectives: Goat and sheep farming is an important agro-economic resource in Benin. However, their milk is both underutilized and insufficiently characterized, which limits the development of innovative dairy products and raises concerns about its safety. Against this backdrop, our pioneering study set out to investigate, for the first time in Benin and using an advanced metagenomic approach, the microbial diversity present in goat and sheep raw milk. The aim was to lay the groundwork for safer and more efficient dairy valorization. Methods: To achieve this, metagenomic DNA was extracted from 20 pooled milk samples representing both animal species, followed by shotgun sequencing. Results: Analyses revealed seven dominant phyla: Bacillota (17.44&amp;amp;ndash;27.23%), Pseudomonadota (12.39&amp;amp;ndash;15.55%), Campylobacterota (3.65&amp;amp;ndash;5.29%), Actinomycetota (1.47&amp;amp;ndash;6.03%), Spirochaetota (1.14&amp;amp;ndash;2.02%), Apicomplexa (0.28&amp;amp;ndash;0.50%), and Bacteroidota (0.17&amp;amp;ndash;0.22%) in the raw milk of both species. However, their proportions differ. Bacillota, which was the most dominant in both types of milk, was significantly more abundant in goat (27.23 &amp;amp;plusmn; 5.33) than in sheep milk (17.44 &amp;amp;plusmn; 8.44). In sheep milk, Enterobacteriaceae (11.36 &amp;amp;plusmn; 5.79) were the most predominant family, followed by Streptococcaceae (5.57 &amp;amp;plusmn; 2.29) and Staphylococcaceae (4.51 &amp;amp;plusmn; 3.63). Goat milk, on the other hand, presents a different hierarchy. Streptococcaceae (6.65 &amp;amp;plusmn; 2.19) and Staphylococcaceae (6.43 &amp;amp;plusmn; 2.33) were the most abundant families, surpassing Enterobacteriaceae (5.33 &amp;amp;plusmn; 1.66). The genus Escherichia was the most abundant in sheep milk (6.18 &amp;amp;plusmn; 5.33). The genera Staphylococcus (4.50 &amp;amp;plusmn; 3.63) and Streptococcus (5.05 &amp;amp;plusmn; 1.98) were also present. In contrast, in goat milk, the genera Streptococcus (6.54 &amp;amp;plusmn; 2.35) and Staphylococcus (6.42 &amp;amp;plusmn; 2.32) were the most dominant, while the average abundance of Escherichia was much lower (1.98 &amp;amp;plusmn; 1.28). In terms of species, Sheep milk was dominated by Escherichia coli (6.14 &amp;amp;plusmn; 5.28) and Staphylococcus aureus (5.17 &amp;amp;plusmn; 2.28) while Klebsiella pneumoniae (2.82 &amp;amp;plusmn; 1.72), Streptococcus pneumoniae (1.92 &amp;amp;plusmn; 1.36), and Campylobacter coli (1.52 &amp;amp;plusmn; 1.27) were also found. In addition to a relatively high abundance of Staphylococcus aureus (6.40 &amp;amp;plusmn; 2.45), goat milk was characterized by the presence of Corynebacterium praerotentium (5.32 &amp;amp;plusmn; 2.28) and Clostridium perfringens (3.39 &amp;amp;plusmn; 2.09). Additional pathogens identified included Clostridioides difficile (1.17&amp;amp;ndash;2.00%), Clostridium botulinum (0.27&amp;amp;ndash;0.43%), Listeria monocytogenes, Mycobacterium tuberculosis, Helicobacter pylori (0.36&amp;amp;ndash;0.62%), Salmonella enterica (0.22&amp;amp;ndash;0.26%). As for fungi, Ascomycota were predominant, with the presence of Aspergillus fumigatus, Saccharomyces cerevisiae, Trichophyton mentagrophytes, and Candida auris. Moreover, lactic acid bacteria with technological interest such as Oenococcus oeni (0.60&amp;amp;ndash;0.97%), Levilactobacillus namurensis (0.25&amp;amp;ndash;0.44%), Lactobacillus agrestimuris, and Lacticaseibacillus rhamnosus were also detected. Conclusions: These findings provide essential insights into the technological potential and health risks associated with these milks, which are key to developing safer and more efficient local dairy value chains.</description>
	<pubDate>2025-12-04</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 58: First Metagenomic Shotgun Sequencing Report on the Microbiome of Local Goat and Sheep Raw Milk in Benin for Dairy Valorization</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/4/58">doi: 10.3390/dna5040058</a></p>
	<p>Authors:
		Yvette Adje
		Philippe Sessou
		Konstantinos Tegopoulos
		Yaovi Mahuton Gildas Hounmanou
		Nikistratos Siskos
		Ioanna Farmakioti
		Paulin Azokpota
		Souaïbou Farougou
		Lamine Baba-Moussa
		George Skavdis
		Maria E. Grigoriou
		</p>
	<p>Background/Objectives: Goat and sheep farming is an important agro-economic resource in Benin. However, their milk is both underutilized and insufficiently characterized, which limits the development of innovative dairy products and raises concerns about its safety. Against this backdrop, our pioneering study set out to investigate, for the first time in Benin and using an advanced metagenomic approach, the microbial diversity present in goat and sheep raw milk. The aim was to lay the groundwork for safer and more efficient dairy valorization. Methods: To achieve this, metagenomic DNA was extracted from 20 pooled milk samples representing both animal species, followed by shotgun sequencing. Results: Analyses revealed seven dominant phyla: Bacillota (17.44&amp;amp;ndash;27.23%), Pseudomonadota (12.39&amp;amp;ndash;15.55%), Campylobacterota (3.65&amp;amp;ndash;5.29%), Actinomycetota (1.47&amp;amp;ndash;6.03%), Spirochaetota (1.14&amp;amp;ndash;2.02%), Apicomplexa (0.28&amp;amp;ndash;0.50%), and Bacteroidota (0.17&amp;amp;ndash;0.22%) in the raw milk of both species. However, their proportions differ. Bacillota, which was the most dominant in both types of milk, was significantly more abundant in goat (27.23 &amp;amp;plusmn; 5.33) than in sheep milk (17.44 &amp;amp;plusmn; 8.44). In sheep milk, Enterobacteriaceae (11.36 &amp;amp;plusmn; 5.79) were the most predominant family, followed by Streptococcaceae (5.57 &amp;amp;plusmn; 2.29) and Staphylococcaceae (4.51 &amp;amp;plusmn; 3.63). Goat milk, on the other hand, presents a different hierarchy. Streptococcaceae (6.65 &amp;amp;plusmn; 2.19) and Staphylococcaceae (6.43 &amp;amp;plusmn; 2.33) were the most abundant families, surpassing Enterobacteriaceae (5.33 &amp;amp;plusmn; 1.66). The genus Escherichia was the most abundant in sheep milk (6.18 &amp;amp;plusmn; 5.33). The genera Staphylococcus (4.50 &amp;amp;plusmn; 3.63) and Streptococcus (5.05 &amp;amp;plusmn; 1.98) were also present. In contrast, in goat milk, the genera Streptococcus (6.54 &amp;amp;plusmn; 2.35) and Staphylococcus (6.42 &amp;amp;plusmn; 2.32) were the most dominant, while the average abundance of Escherichia was much lower (1.98 &amp;amp;plusmn; 1.28). In terms of species, Sheep milk was dominated by Escherichia coli (6.14 &amp;amp;plusmn; 5.28) and Staphylococcus aureus (5.17 &amp;amp;plusmn; 2.28) while Klebsiella pneumoniae (2.82 &amp;amp;plusmn; 1.72), Streptococcus pneumoniae (1.92 &amp;amp;plusmn; 1.36), and Campylobacter coli (1.52 &amp;amp;plusmn; 1.27) were also found. In addition to a relatively high abundance of Staphylococcus aureus (6.40 &amp;amp;plusmn; 2.45), goat milk was characterized by the presence of Corynebacterium praerotentium (5.32 &amp;amp;plusmn; 2.28) and Clostridium perfringens (3.39 &amp;amp;plusmn; 2.09). Additional pathogens identified included Clostridioides difficile (1.17&amp;amp;ndash;2.00%), Clostridium botulinum (0.27&amp;amp;ndash;0.43%), Listeria monocytogenes, Mycobacterium tuberculosis, Helicobacter pylori (0.36&amp;amp;ndash;0.62%), Salmonella enterica (0.22&amp;amp;ndash;0.26%). As for fungi, Ascomycota were predominant, with the presence of Aspergillus fumigatus, Saccharomyces cerevisiae, Trichophyton mentagrophytes, and Candida auris. Moreover, lactic acid bacteria with technological interest such as Oenococcus oeni (0.60&amp;amp;ndash;0.97%), Levilactobacillus namurensis (0.25&amp;amp;ndash;0.44%), Lactobacillus agrestimuris, and Lacticaseibacillus rhamnosus were also detected. Conclusions: These findings provide essential insights into the technological potential and health risks associated with these milks, which are key to developing safer and more efficient local dairy value chains.</p>
	]]></content:encoded>

	<dc:title>First Metagenomic Shotgun Sequencing Report on the Microbiome of Local Goat and Sheep Raw Milk in Benin for Dairy Valorization</dc:title>
			<dc:creator>Yvette Adje</dc:creator>
			<dc:creator>Philippe Sessou</dc:creator>
			<dc:creator>Konstantinos Tegopoulos</dc:creator>
			<dc:creator>Yaovi Mahuton Gildas Hounmanou</dc:creator>
			<dc:creator>Nikistratos Siskos</dc:creator>
			<dc:creator>Ioanna Farmakioti</dc:creator>
			<dc:creator>Paulin Azokpota</dc:creator>
			<dc:creator>Souaïbou Farougou</dc:creator>
			<dc:creator>Lamine Baba-Moussa</dc:creator>
			<dc:creator>George Skavdis</dc:creator>
			<dc:creator>Maria E. Grigoriou</dc:creator>
		<dc:identifier>doi: 10.3390/dna5040058</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-12-04</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-12-04</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>4</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>58</prism:startingPage>
		<prism:doi>10.3390/dna5040058</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/4/58</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/4/57">

	<title>DNA, Vol. 5, Pages 57: CRISPR-Based Transcriptional Regulation: Technologies, Applications, and Future Directions</title>
	<link>https://www.mdpi.com/2673-8856/5/4/57</link>
	<description>CRISPR-based transcriptional regulation technologies, including CRISPR activation (CRISPRa) and CRISPR interference (CRISPRi), offer precise and programmable control over gene expression, representing a major advance in gene and epigenetic therapy. CRISPRa uses nuclease-inactive Cas proteins fused to transcriptional activators to upregulate target genes, while CRISPRi employs repressor domains for gene silencing. Preclinical studies have demonstrated the efficacy of CRISPRa/i in models of metabolic, neurological, muscular, and oncological diseases. Notably, CRISPRi-based therapies have entered clinical trials for conditions like hepatitis B and muscular dystrophy, showing encouraging safety and efficacy profiles. Despite ongoing challenges related to delivery efficiency, immunogenicity, and off-target activity, innovations in protein engineering and guide RNA design are rapidly enhancing the precision and safety of these technologies. Overall, CRISPRa and CRISPRi are poised to transform the treatment of genetic and epigenetic disorders, with continued optimization expected to accelerate their clinical adoption and broaden their therapeutic impact.</description>
	<pubDate>2025-12-01</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 57: CRISPR-Based Transcriptional Regulation: Technologies, Applications, and Future Directions</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/4/57">doi: 10.3390/dna5040057</a></p>
	<p>Authors:
		Mira A. Srinivasa
		Mario Escobar
		</p>
	<p>CRISPR-based transcriptional regulation technologies, including CRISPR activation (CRISPRa) and CRISPR interference (CRISPRi), offer precise and programmable control over gene expression, representing a major advance in gene and epigenetic therapy. CRISPRa uses nuclease-inactive Cas proteins fused to transcriptional activators to upregulate target genes, while CRISPRi employs repressor domains for gene silencing. Preclinical studies have demonstrated the efficacy of CRISPRa/i in models of metabolic, neurological, muscular, and oncological diseases. Notably, CRISPRi-based therapies have entered clinical trials for conditions like hepatitis B and muscular dystrophy, showing encouraging safety and efficacy profiles. Despite ongoing challenges related to delivery efficiency, immunogenicity, and off-target activity, innovations in protein engineering and guide RNA design are rapidly enhancing the precision and safety of these technologies. Overall, CRISPRa and CRISPRi are poised to transform the treatment of genetic and epigenetic disorders, with continued optimization expected to accelerate their clinical adoption and broaden their therapeutic impact.</p>
	]]></content:encoded>

	<dc:title>CRISPR-Based Transcriptional Regulation: Technologies, Applications, and Future Directions</dc:title>
			<dc:creator>Mira A. Srinivasa</dc:creator>
			<dc:creator>Mario Escobar</dc:creator>
		<dc:identifier>doi: 10.3390/dna5040057</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-12-01</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-12-01</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>4</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>57</prism:startingPage>
		<prism:doi>10.3390/dna5040057</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/4/57</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/4/56">

	<title>DNA, Vol. 5, Pages 56: Skeletal Muscle Androgen-Regulated Gene Expression Following High- and Low-Load Resistance Exercise</title>
	<link>https://www.mdpi.com/2673-8856/5/4/56</link>
	<description>Resistance exercise (RE) is a well-known modality to increase skeletal muscle strength and hypertrophy. While both high-load (HL) and low-load (LL) RE stimulate skeletal muscle growth, the effects of RE load on androgen-regulated genes remain unclear. Further, the relationship between circulating and intramuscular androgen-associated targets and muscular strength and mass has not been well defined. Purpose: This investigation therein aimed to examine acute gene and hormone responses to volume- and intensity-equated RE at different loads, examining their relationships with lean body mass (LBM), strength, and circulating and intramuscular androgen-related biomarkers. Methods: Ten resistance-trained males completed one-repetition maximum (1RM) testing, as well as body composition testing, before two volume- and intensity-equated RE sessions, separated by a 7&amp;amp;ndash;10 day crossover period. Serum and skeletal muscle samples were collected at baseline, 3 h, and 24 h post-exercise to assess testosterone (TST), dihydrotestosterone (DHT), AR protein, AR mRNA, and AR&amp;amp;ndash;DNA binding. Pearson correlations evaluated any potential associations between LBM, strength, and androgen/AR biomarkers. Results: Training load did not significantly impact gene expression, but time effects were observed, whereby MyoD peaked 3 h post-exercise (2.03 &amp;amp;plusmn; 1.64 fold; p = 0.005), while AR mRNA decreased at 24 h (0.54 &amp;amp;plusmn; 0.42 fold; p = 0.021) versus baseline. LBM also correlated with bench press (r = 0.607, p = 0.048) and leg press (r = 0.705, p = 0.015) 1RM. Serum total TST correlated with leg press 1RM (r = 0.909, p = 0.012), while serum-free TST correlated with AR mRNA fold-change (r = 0.392, p = 0.001) and AR&amp;amp;ndash;DNA binding (r = 0.287, p = 0.021). Intramuscular DHT correlated with intramuscular TST (r = 0.415, p &amp;amp;lt; 0.001) and AR protein (r = 0.421, p &amp;amp;lt; 0.001). Lastly, fold changes in AR mRNA were correlated with MyoD mRNA fold changes (r = 0.785, p = 0.007) along with IGF1-Ea mRNA fold changes being significantly correlated with both myogenin mRNA fold changes (r = 0.865, p = 0.001) and AR-DNA binding (r = &amp;amp;minus;0.727, p = 0.017). Conclusions: Despite no observable load-specific effects, RE elicited time-dependent increases in MyoD and AR mRNA expression. This reinforces prior LBM and maximal muscular strength relationship evidence whilst also lending new insights into circulating and intramuscular androgen interactions with AR.</description>
	<pubDate>2025-11-26</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 56: Skeletal Muscle Androgen-Regulated Gene Expression Following High- and Low-Load Resistance Exercise</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/4/56">doi: 10.3390/dna5040056</a></p>
	<p>Authors:
		Bailee G. Costa
		Thomas D. Cardaci
		Dillon R. Harris
		Steven B. Machek
		Darryn S. Willoughby
		</p>
	<p>Resistance exercise (RE) is a well-known modality to increase skeletal muscle strength and hypertrophy. While both high-load (HL) and low-load (LL) RE stimulate skeletal muscle growth, the effects of RE load on androgen-regulated genes remain unclear. Further, the relationship between circulating and intramuscular androgen-associated targets and muscular strength and mass has not been well defined. Purpose: This investigation therein aimed to examine acute gene and hormone responses to volume- and intensity-equated RE at different loads, examining their relationships with lean body mass (LBM), strength, and circulating and intramuscular androgen-related biomarkers. Methods: Ten resistance-trained males completed one-repetition maximum (1RM) testing, as well as body composition testing, before two volume- and intensity-equated RE sessions, separated by a 7&amp;amp;ndash;10 day crossover period. Serum and skeletal muscle samples were collected at baseline, 3 h, and 24 h post-exercise to assess testosterone (TST), dihydrotestosterone (DHT), AR protein, AR mRNA, and AR&amp;amp;ndash;DNA binding. Pearson correlations evaluated any potential associations between LBM, strength, and androgen/AR biomarkers. Results: Training load did not significantly impact gene expression, but time effects were observed, whereby MyoD peaked 3 h post-exercise (2.03 &amp;amp;plusmn; 1.64 fold; p = 0.005), while AR mRNA decreased at 24 h (0.54 &amp;amp;plusmn; 0.42 fold; p = 0.021) versus baseline. LBM also correlated with bench press (r = 0.607, p = 0.048) and leg press (r = 0.705, p = 0.015) 1RM. Serum total TST correlated with leg press 1RM (r = 0.909, p = 0.012), while serum-free TST correlated with AR mRNA fold-change (r = 0.392, p = 0.001) and AR&amp;amp;ndash;DNA binding (r = 0.287, p = 0.021). Intramuscular DHT correlated with intramuscular TST (r = 0.415, p &amp;amp;lt; 0.001) and AR protein (r = 0.421, p &amp;amp;lt; 0.001). Lastly, fold changes in AR mRNA were correlated with MyoD mRNA fold changes (r = 0.785, p = 0.007) along with IGF1-Ea mRNA fold changes being significantly correlated with both myogenin mRNA fold changes (r = 0.865, p = 0.001) and AR-DNA binding (r = &amp;amp;minus;0.727, p = 0.017). Conclusions: Despite no observable load-specific effects, RE elicited time-dependent increases in MyoD and AR mRNA expression. This reinforces prior LBM and maximal muscular strength relationship evidence whilst also lending new insights into circulating and intramuscular androgen interactions with AR.</p>
	]]></content:encoded>

	<dc:title>Skeletal Muscle Androgen-Regulated Gene Expression Following High- and Low-Load Resistance Exercise</dc:title>
			<dc:creator>Bailee G. Costa</dc:creator>
			<dc:creator>Thomas D. Cardaci</dc:creator>
			<dc:creator>Dillon R. Harris</dc:creator>
			<dc:creator>Steven B. Machek</dc:creator>
			<dc:creator>Darryn S. Willoughby</dc:creator>
		<dc:identifier>doi: 10.3390/dna5040056</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-11-26</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-11-26</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>4</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>56</prism:startingPage>
		<prism:doi>10.3390/dna5040056</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/4/56</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/4/55">

	<title>DNA, Vol. 5, Pages 55: The Multiple DNA-Associated Roles of ASPM and Liquid&amp;ndash;Liquid Phase Separation as a Unifying Mechanism of Function</title>
	<link>https://www.mdpi.com/2673-8856/5/4/55</link>
	<description>Best known as an organizer of the mitotic spindle, the protein product of the human assembly factor for spindle microtubules (ASPM) gene has recently been shown to function in the interphase nucleus during multiple DNA-associated processes, including BRCA1-mediated DNA DSB repair, ATR-CHK1 activation during replication stress, and transcription regulation alongside the transcription factor FOXM1. In this review, we provide an overview of these DNA-related roles of ASPM. Additionally, we suggest the facilitation of liquid&amp;amp;ndash;liquid phase separation (LLPS) as a potential unifying mechanism underlying ASPM function. We also consider the implications of LLPS and ASPM dysfunction in disease, and highlight the impact of cellular context including cell cycle phase-dependent post-translational protein modifications and ion concentrations. An increased understanding of LLPS in ASPM function relevant to genome stability may enable future drug discovery for diseases such as cancer.</description>
	<pubDate>2025-11-19</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 55: The Multiple DNA-Associated Roles of ASPM and Liquid&amp;ndash;Liquid Phase Separation as a Unifying Mechanism of Function</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/4/55">doi: 10.3390/dna5040055</a></p>
	<p>Authors:
		Gabrielle Fenwick
		Lori Borgal
		</p>
	<p>Best known as an organizer of the mitotic spindle, the protein product of the human assembly factor for spindle microtubules (ASPM) gene has recently been shown to function in the interphase nucleus during multiple DNA-associated processes, including BRCA1-mediated DNA DSB repair, ATR-CHK1 activation during replication stress, and transcription regulation alongside the transcription factor FOXM1. In this review, we provide an overview of these DNA-related roles of ASPM. Additionally, we suggest the facilitation of liquid&amp;amp;ndash;liquid phase separation (LLPS) as a potential unifying mechanism underlying ASPM function. We also consider the implications of LLPS and ASPM dysfunction in disease, and highlight the impact of cellular context including cell cycle phase-dependent post-translational protein modifications and ion concentrations. An increased understanding of LLPS in ASPM function relevant to genome stability may enable future drug discovery for diseases such as cancer.</p>
	]]></content:encoded>

	<dc:title>The Multiple DNA-Associated Roles of ASPM and Liquid&amp;amp;ndash;Liquid Phase Separation as a Unifying Mechanism of Function</dc:title>
			<dc:creator>Gabrielle Fenwick</dc:creator>
			<dc:creator>Lori Borgal</dc:creator>
		<dc:identifier>doi: 10.3390/dna5040055</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-11-19</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-11-19</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>4</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>55</prism:startingPage>
		<prism:doi>10.3390/dna5040055</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/4/55</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/4/54">

	<title>DNA, Vol. 5, Pages 54: Zygosity Genotyping by Pyrosequencing of SNPs rs601338 and rs1047781 of the FUT2 Gene in Children Living in the Amazon Region</title>
	<link>https://www.mdpi.com/2673-8856/5/4/54</link>
	<description>Human populations are classified as secretors or non-secretors by, respectively, the ability to produce or not produce FUT2 enzyme (alpha-1,2-fucosyltransferase; FUT2 gene). Non-secretors have some protection against diseases and viral infections. Two single-nucleotide polymorphisms (SNPs), rs601338 (non-secretor; sese), and rs1047781 (weak secretor; Sew), are known population markers. In this study, 68 saliva samples collected from children living in the Brazilian Amazon region were evaluated for zygosity&amp;amp;mdash;genotyping (homozygous or heterozygous) of the rs601338 and rs1047781 SNPs by pyrosequencing. Nine children were heterozygous (Sese) for the rs601338 SNP (13.2%; 9/68) and one homozygous (sese) (1.5%; 1/68). One child that was heterozygous for the rs601338 SNP was also heterozygous for the rs1047781 SNP (Sew) (1.5%; 1/68). By using Sanger nucleotide sequencing of the FUT2 coding region, strongly linked SNPs (171A&amp;amp;gt;G, 216C&amp;amp;gt;T, 357T&amp;amp;gt;C, 428G&amp;amp;gt;A, 739G&amp;amp;gt;A, 960A&amp;amp;gt;G), including the FUT2*01N.02 allele (428G&amp;amp;gt;A; 739A&amp;amp;gt;G), were detected and have been associated with non-secretor children. A novel SNP (315C&amp;amp;gt;T) and others (40A&amp;amp;gt;G; 480C&amp;amp;gt;T; 863C&amp;amp;gt;T) detected in worldwide populations were also detected. The sensitivity of the pyrosequencing method provided an unprecedented discovery of the zygosity of the SNP rs1047781 only previously detected in East and Southeast Asians. The identification of novel SNPs in this population expands our knowledge of genetic susceptibility to viral infections.</description>
	<pubDate>2025-11-17</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 54: Zygosity Genotyping by Pyrosequencing of SNPs rs601338 and rs1047781 of the FUT2 Gene in Children Living in the Amazon Region</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/4/54">doi: 10.3390/dna5040054</a></p>
	<p>Authors:
		Mauro França Silva
		Diego Archanjo Oliveira Rodrigues
		Letícia Bomfim Campos
		Yan Cardoso Pimenta
		Silas de Souza Oliveira
		Bruno Loreto de Aragão Pedroso
		Emanuelle Ramalho
		Alberto Ignacio Olivares Olivares
		José Paulo Gagliardi Leite
		José Júnior França de Barros
		Marcia Terezinha Baroni de Moraes
		</p>
	<p>Human populations are classified as secretors or non-secretors by, respectively, the ability to produce or not produce FUT2 enzyme (alpha-1,2-fucosyltransferase; FUT2 gene). Non-secretors have some protection against diseases and viral infections. Two single-nucleotide polymorphisms (SNPs), rs601338 (non-secretor; sese), and rs1047781 (weak secretor; Sew), are known population markers. In this study, 68 saliva samples collected from children living in the Brazilian Amazon region were evaluated for zygosity&amp;amp;mdash;genotyping (homozygous or heterozygous) of the rs601338 and rs1047781 SNPs by pyrosequencing. Nine children were heterozygous (Sese) for the rs601338 SNP (13.2%; 9/68) and one homozygous (sese) (1.5%; 1/68). One child that was heterozygous for the rs601338 SNP was also heterozygous for the rs1047781 SNP (Sew) (1.5%; 1/68). By using Sanger nucleotide sequencing of the FUT2 coding region, strongly linked SNPs (171A&amp;amp;gt;G, 216C&amp;amp;gt;T, 357T&amp;amp;gt;C, 428G&amp;amp;gt;A, 739G&amp;amp;gt;A, 960A&amp;amp;gt;G), including the FUT2*01N.02 allele (428G&amp;amp;gt;A; 739A&amp;amp;gt;G), were detected and have been associated with non-secretor children. A novel SNP (315C&amp;amp;gt;T) and others (40A&amp;amp;gt;G; 480C&amp;amp;gt;T; 863C&amp;amp;gt;T) detected in worldwide populations were also detected. The sensitivity of the pyrosequencing method provided an unprecedented discovery of the zygosity of the SNP rs1047781 only previously detected in East and Southeast Asians. The identification of novel SNPs in this population expands our knowledge of genetic susceptibility to viral infections.</p>
	]]></content:encoded>

	<dc:title>Zygosity Genotyping by Pyrosequencing of SNPs rs601338 and rs1047781 of the FUT2 Gene in Children Living in the Amazon Region</dc:title>
			<dc:creator>Mauro França Silva</dc:creator>
			<dc:creator>Diego Archanjo Oliveira Rodrigues</dc:creator>
			<dc:creator>Letícia Bomfim Campos</dc:creator>
			<dc:creator>Yan Cardoso Pimenta</dc:creator>
			<dc:creator>Silas de Souza Oliveira</dc:creator>
			<dc:creator>Bruno Loreto de Aragão Pedroso</dc:creator>
			<dc:creator>Emanuelle Ramalho</dc:creator>
			<dc:creator>Alberto Ignacio Olivares Olivares</dc:creator>
			<dc:creator>José Paulo Gagliardi Leite</dc:creator>
			<dc:creator>José Júnior França de Barros</dc:creator>
			<dc:creator>Marcia Terezinha Baroni de Moraes</dc:creator>
		<dc:identifier>doi: 10.3390/dna5040054</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-11-17</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-11-17</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>4</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>54</prism:startingPage>
		<prism:doi>10.3390/dna5040054</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/4/54</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/4/53">

	<title>DNA, Vol. 5, Pages 53: The Role of Nuclear and Mitochondrial DNA in Myalgic Encephalomyelitis: Molecular Insights into Susceptibility and Dysfunction</title>
	<link>https://www.mdpi.com/2673-8856/5/4/53</link>
	<description>Myalgic Encephalomyelitis (ME), also known as chronic fatigue syndrome (CFS), is a debilitating and heterogeneous disorder marked by persistent fatigue, post-exertional malaise, cognitive impairment, and multisystem dysfunction. Despite its prevalence and impact, the molecular mechanisms underlying ME remain poorly understood. This review synthesizes current evidence on the role of DNA, both nuclear and mitochondrial, in the susceptibility and pathophysiology of ME. We examined genetic predispositions, including familial clustering and candidate gene associations, and highlighted emerging insights from genome-wide and multi-omics studies. Mitochondrial DNA variants and oxidative stress-related damage are discussed in relation to impaired bioenergetics and symptom severity. Epigenetic modifications, particularly DNA methylation dynamics and transposable element activation, are explored as mediators of gene&amp;amp;ndash;environment interactions and immune dysregulation. Finally, we explored the translational potential of DNA-based biomarkers and therapeutic targets, emphasizing the need for integrative molecular approaches to advance diagnosis and treatment. Understanding the DNA-associated mechanisms in ME offers a promising path toward precision medicine in post-viral chronic diseases.</description>
	<pubDate>2025-11-07</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 53: The Role of Nuclear and Mitochondrial DNA in Myalgic Encephalomyelitis: Molecular Insights into Susceptibility and Dysfunction</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/4/53">doi: 10.3390/dna5040053</a></p>
	<p>Authors:
		Wesam Elremaly
		Mohamed Elbakry
		Yasaman Vahdani
		Anita Franco
		Alain Moreau
		</p>
	<p>Myalgic Encephalomyelitis (ME), also known as chronic fatigue syndrome (CFS), is a debilitating and heterogeneous disorder marked by persistent fatigue, post-exertional malaise, cognitive impairment, and multisystem dysfunction. Despite its prevalence and impact, the molecular mechanisms underlying ME remain poorly understood. This review synthesizes current evidence on the role of DNA, both nuclear and mitochondrial, in the susceptibility and pathophysiology of ME. We examined genetic predispositions, including familial clustering and candidate gene associations, and highlighted emerging insights from genome-wide and multi-omics studies. Mitochondrial DNA variants and oxidative stress-related damage are discussed in relation to impaired bioenergetics and symptom severity. Epigenetic modifications, particularly DNA methylation dynamics and transposable element activation, are explored as mediators of gene&amp;amp;ndash;environment interactions and immune dysregulation. Finally, we explored the translational potential of DNA-based biomarkers and therapeutic targets, emphasizing the need for integrative molecular approaches to advance diagnosis and treatment. Understanding the DNA-associated mechanisms in ME offers a promising path toward precision medicine in post-viral chronic diseases.</p>
	]]></content:encoded>

	<dc:title>The Role of Nuclear and Mitochondrial DNA in Myalgic Encephalomyelitis: Molecular Insights into Susceptibility and Dysfunction</dc:title>
			<dc:creator>Wesam Elremaly</dc:creator>
			<dc:creator>Mohamed Elbakry</dc:creator>
			<dc:creator>Yasaman Vahdani</dc:creator>
			<dc:creator>Anita Franco</dc:creator>
			<dc:creator>Alain Moreau</dc:creator>
		<dc:identifier>doi: 10.3390/dna5040053</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-11-07</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-11-07</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>4</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>53</prism:startingPage>
		<prism:doi>10.3390/dna5040053</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/4/53</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/4/52">

	<title>DNA, Vol. 5, Pages 52: Light-Induced Formation of DNA Interstrand Cross-Links from Oxidative DNA Lesion</title>
	<link>https://www.mdpi.com/2673-8856/5/4/52</link>
	<description>Background/Objectives: DNA interstrand cross-links (ICLs) mark one of the most deleterious lesions that can preclude strand separation required for essential cellular processes. Efforts to discover ICL-inducing agents and endogenous substrates for ICL repair pathways have led to the identification of structurally diverse ICLs produced by reactive aldehydes and abasic sites, among others. While several studies point to UV rays as ICL-inducing agents, UV ray-induced ICL formation from biologically relevant DNA lesions has been rarely reported. We conjectured that solar radiation-induced reactive oxygen species may give rise to ICLs via further oxidation of DNA lesions with lower redox potential (e.g., 8-oxoadenine (oxoA)). Here, we present the discovery of ICL production via light-induced modification of the major oxidative adenine lesion oxoA. Methods/Results: In the absence of a photosensitizer, both UVC and UVB rays, but not UVA and visible rays, trigger the formation of oxoA-G ICLs, albeit in low yields. By contrast, the inclusion of the naturally occurring photosensitizer riboflavin in the cross-linking reaction makes UVA and visible rays readily generate oxoA-G ICLs, suggesting solar radiation facilitates the formation of oxoA ICLs in vivo. Conclusions: The plausible oxoA-G ICL formation mechanism concerns the further oxidation of oxoA into an iminoquinone, followed by the nucleophilic attack of the opposite guanine on the iminoquinone. OxoA-G ICLs represent rare examples of ICLs produced by photosensitization. These results will contribute to the discovery of a novel form of ICLs induced by solar radiation.</description>
	<pubDate>2025-11-04</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 52: Light-Induced Formation of DNA Interstrand Cross-Links from Oxidative DNA Lesion</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/4/52">doi: 10.3390/dna5040052</a></p>
	<p>Authors:
		Nestor Rodriguez
		Aaron L. Rozelle
		Seongmin Lee
		</p>
	<p>Background/Objectives: DNA interstrand cross-links (ICLs) mark one of the most deleterious lesions that can preclude strand separation required for essential cellular processes. Efforts to discover ICL-inducing agents and endogenous substrates for ICL repair pathways have led to the identification of structurally diverse ICLs produced by reactive aldehydes and abasic sites, among others. While several studies point to UV rays as ICL-inducing agents, UV ray-induced ICL formation from biologically relevant DNA lesions has been rarely reported. We conjectured that solar radiation-induced reactive oxygen species may give rise to ICLs via further oxidation of DNA lesions with lower redox potential (e.g., 8-oxoadenine (oxoA)). Here, we present the discovery of ICL production via light-induced modification of the major oxidative adenine lesion oxoA. Methods/Results: In the absence of a photosensitizer, both UVC and UVB rays, but not UVA and visible rays, trigger the formation of oxoA-G ICLs, albeit in low yields. By contrast, the inclusion of the naturally occurring photosensitizer riboflavin in the cross-linking reaction makes UVA and visible rays readily generate oxoA-G ICLs, suggesting solar radiation facilitates the formation of oxoA ICLs in vivo. Conclusions: The plausible oxoA-G ICL formation mechanism concerns the further oxidation of oxoA into an iminoquinone, followed by the nucleophilic attack of the opposite guanine on the iminoquinone. OxoA-G ICLs represent rare examples of ICLs produced by photosensitization. These results will contribute to the discovery of a novel form of ICLs induced by solar radiation.</p>
	]]></content:encoded>

	<dc:title>Light-Induced Formation of DNA Interstrand Cross-Links from Oxidative DNA Lesion</dc:title>
			<dc:creator>Nestor Rodriguez</dc:creator>
			<dc:creator>Aaron L. Rozelle</dc:creator>
			<dc:creator>Seongmin Lee</dc:creator>
		<dc:identifier>doi: 10.3390/dna5040052</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-11-04</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-11-04</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>4</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>52</prism:startingPage>
		<prism:doi>10.3390/dna5040052</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/4/52</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/4/51">

	<title>DNA, Vol. 5, Pages 51: Epigenetic Regulation of Glucosinolate Biosynthesis: Mechanistic Insights and Breeding Prospects in Brassicaceae</title>
	<link>https://www.mdpi.com/2673-8856/5/4/51</link>
	<description>Glucosinolates (GSLs) are nitrogen- and sulfur-containing secondary metabolites central to the defense, development, and environmental responsiveness of Brassicaceae species. While the enzymatic steps and transcriptional networks underlying GSL biosynthesis have been extensively characterized, mounting evidence reveals that chromatin-based processes add a critical, yet underexplored, layer of regulatory complexity. Recent studies highlight the roles of DNA methylation, histone modifications, and non-coding RNAs in modulating the spatial and temporal expression of GSL biosynthetic genes and their transcriptional regulators in response to developmental cues and environmental signals. This review provides a comprehensive overview of GSL classification, biosynthetic pathway architecture, transcriptional regulation, and metabolite transport, with a focus on emerging epigenetic mechanisms that shape pathway plasticity. We also discuss how these insights may be leveraged in precision breeding and epigenome engineering, including the use of CRISPR/dCas9-based chromatin editing and epigenomic selection, to optimize GSL content, composition, and stress resilience in cruciferous crops. Integrating transcriptional and epigenetic regulation thus offers a novel framework for the dynamic control of specialized metabolism in plants.</description>
	<pubDate>2025-10-23</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 51: Epigenetic Regulation of Glucosinolate Biosynthesis: Mechanistic Insights and Breeding Prospects in Brassicaceae</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/4/51">doi: 10.3390/dna5040051</a></p>
	<p>Authors:
		Hajer Ben Ammar
		</p>
	<p>Glucosinolates (GSLs) are nitrogen- and sulfur-containing secondary metabolites central to the defense, development, and environmental responsiveness of Brassicaceae species. While the enzymatic steps and transcriptional networks underlying GSL biosynthesis have been extensively characterized, mounting evidence reveals that chromatin-based processes add a critical, yet underexplored, layer of regulatory complexity. Recent studies highlight the roles of DNA methylation, histone modifications, and non-coding RNAs in modulating the spatial and temporal expression of GSL biosynthetic genes and their transcriptional regulators in response to developmental cues and environmental signals. This review provides a comprehensive overview of GSL classification, biosynthetic pathway architecture, transcriptional regulation, and metabolite transport, with a focus on emerging epigenetic mechanisms that shape pathway plasticity. We also discuss how these insights may be leveraged in precision breeding and epigenome engineering, including the use of CRISPR/dCas9-based chromatin editing and epigenomic selection, to optimize GSL content, composition, and stress resilience in cruciferous crops. Integrating transcriptional and epigenetic regulation thus offers a novel framework for the dynamic control of specialized metabolism in plants.</p>
	]]></content:encoded>

	<dc:title>Epigenetic Regulation of Glucosinolate Biosynthesis: Mechanistic Insights and Breeding Prospects in Brassicaceae</dc:title>
			<dc:creator>Hajer Ben Ammar</dc:creator>
		<dc:identifier>doi: 10.3390/dna5040051</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-10-23</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-10-23</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>4</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>51</prism:startingPage>
		<prism:doi>10.3390/dna5040051</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/4/51</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/4/50">

	<title>DNA, Vol. 5, Pages 50: Environmental DNA (eDNA) for the Detection of Marine Vertebrate Diversity in Maltese Waters</title>
	<link>https://www.mdpi.com/2673-8856/5/4/50</link>
	<description>Background/Objectives: Environmental DNA (eDNA) is increasingly recognised as a powerful molecular tool for biodiversity monitoring, enabling the detection of species through trace genetic material found in environmental samples. This study investigates the utility of eDNA analysis for identifying vertebrate marine species in the central Mediterranean, with a focus on taxa that serve as ecological indicators to local ecosystems. Methods: Seawater samples were collected from nine sites around the Maltese Islands between May and August 2021, at depths ranging from 2 to 5 m. Samples were filtered and DNA was extracted, amplified and sequenced. The resulting sequences were processed through a bioinformatics pipeline, clustered into molecular operational taxonomic units (MOTUs) and assigned taxonomic identities using reference databases. Results: This study led to the detection of 70 MOTUs, including ecologically important species such as the loggerhead turtle (Caretta caretta), the striped dolphin (Stenella coeruleoalba) and the bottlenose dolphin (Tursiops truncatus), underscoring the method&amp;amp;rsquo;s effectiveness in the detection of taxa of conservation value. Additionally, we detected a number of overlooked Blenniidae and Gobiidae taxa and deep-water or rarely encountered species such as the ocean sunfish (Mola mola), Cornish blackfish (Schedophilus medusophagus), Haifa grouper (Hyporthodus haifensis) and Madeira lantern fish (Ceratoscopelus maderensis). eDNA of the invasive dusky spinefoot (Siganus luridus) and that of the lumpfish (Cyclopterus lumpus), a species not previously recorded in Maltese waters, was also detected during this study. The latter&amp;amp;rsquo;s detection highlights the potential of this methodology as an early detection tool for biological invasions. Conclusions: These findings support the integration of eDNA surveillance into marine biodiversity monitoring frameworks, particularly within marine protected areas to monitor native indicator taxa and assess the effectiveness of conservation measures, but also in ports and bunkering zones, where the risk of alien species introduction is elevated, with potential subsequent invasive species expansion that impacts native species and habitats.</description>
	<pubDate>2025-10-21</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 50: Environmental DNA (eDNA) for the Detection of Marine Vertebrate Diversity in Maltese Waters</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/4/50">doi: 10.3390/dna5040050</a></p>
	<p>Authors:
		Adriana Vella
		Clare Marie Mifsud
		Noel Vella
		</p>
	<p>Background/Objectives: Environmental DNA (eDNA) is increasingly recognised as a powerful molecular tool for biodiversity monitoring, enabling the detection of species through trace genetic material found in environmental samples. This study investigates the utility of eDNA analysis for identifying vertebrate marine species in the central Mediterranean, with a focus on taxa that serve as ecological indicators to local ecosystems. Methods: Seawater samples were collected from nine sites around the Maltese Islands between May and August 2021, at depths ranging from 2 to 5 m. Samples were filtered and DNA was extracted, amplified and sequenced. The resulting sequences were processed through a bioinformatics pipeline, clustered into molecular operational taxonomic units (MOTUs) and assigned taxonomic identities using reference databases. Results: This study led to the detection of 70 MOTUs, including ecologically important species such as the loggerhead turtle (Caretta caretta), the striped dolphin (Stenella coeruleoalba) and the bottlenose dolphin (Tursiops truncatus), underscoring the method&amp;amp;rsquo;s effectiveness in the detection of taxa of conservation value. Additionally, we detected a number of overlooked Blenniidae and Gobiidae taxa and deep-water or rarely encountered species such as the ocean sunfish (Mola mola), Cornish blackfish (Schedophilus medusophagus), Haifa grouper (Hyporthodus haifensis) and Madeira lantern fish (Ceratoscopelus maderensis). eDNA of the invasive dusky spinefoot (Siganus luridus) and that of the lumpfish (Cyclopterus lumpus), a species not previously recorded in Maltese waters, was also detected during this study. The latter&amp;amp;rsquo;s detection highlights the potential of this methodology as an early detection tool for biological invasions. Conclusions: These findings support the integration of eDNA surveillance into marine biodiversity monitoring frameworks, particularly within marine protected areas to monitor native indicator taxa and assess the effectiveness of conservation measures, but also in ports and bunkering zones, where the risk of alien species introduction is elevated, with potential subsequent invasive species expansion that impacts native species and habitats.</p>
	]]></content:encoded>

	<dc:title>Environmental DNA (eDNA) for the Detection of Marine Vertebrate Diversity in Maltese Waters</dc:title>
			<dc:creator>Adriana Vella</dc:creator>
			<dc:creator>Clare Marie Mifsud</dc:creator>
			<dc:creator>Noel Vella</dc:creator>
		<dc:identifier>doi: 10.3390/dna5040050</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-10-21</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-10-21</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>4</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>50</prism:startingPage>
		<prism:doi>10.3390/dna5040050</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/4/50</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/4/49">

	<title>DNA, Vol. 5, Pages 49: Regulation of DNA Methylation Through EBP1 Interaction with NLRP2 and NLRP7</title>
	<link>https://www.mdpi.com/2673-8856/5/4/49</link>
	<description>Background/Objectives: Mutations in NACHT, LRR and PYD domain-containing protein 2 (NLRP2) and NLRP7 genes, members of the NOD-like receptor (NLR) family of innate immune sensors, result in recurrent miscarriages and reproductive wastage in women. These genes have been identified to be maternal effect genes in humans and mice regulating early embryo development. Previous research in vitro suggests that NLRP2 and NLRP7 regulate DNA methylation and/or immune signaling through inflammasome formation. However, the exact mechanisms underlying NLRP2 and NLRP7 function are not well defined. Methods: To determine the interacting proteins required for NLRP2/NLRP7-mediated regulation of DNA methylation, yeast 2-hybrid screens, coimmunoprecipitation, and FRET studies were performed and verified the ability of novel protein interactions to affect global DNA methylation by 5-methylcytosine-specific ELISA. Results: Various methodologies employed in this research demonstrate a novel protein interaction between human ErbB3-binding protein 1 (EBP1, also known as proliferation-associated protein 2G4 (PA2G4) and NLRP2 or NLRP7. In addition, NLRP2 and NLRP7 regulate EBP1 gene expression. Functionally, global DNA methylation levels appeared to decrease further when NLRP2 and NLRP7 were co-expressed with EBP1, although additional studies may need to confirm the significance of this effect. Conclusions: Since EBP1 is implicated in apoptosis, cell proliferation, DNA methylation, and differentiation, our discovery significantly advances our understanding of how mutations in NLRP2 or NLRP7 may contribute to reproductive wastage in women through EBP1.</description>
	<pubDate>2025-10-17</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 49: Regulation of DNA Methylation Through EBP1 Interaction with NLRP2 and NLRP7</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/4/49">doi: 10.3390/dna5040049</a></p>
	<p>Authors:
		Nayeon Hannah Son
		Matthew So
		Christopher R. Lupfer
		</p>
	<p>Background/Objectives: Mutations in NACHT, LRR and PYD domain-containing protein 2 (NLRP2) and NLRP7 genes, members of the NOD-like receptor (NLR) family of innate immune sensors, result in recurrent miscarriages and reproductive wastage in women. These genes have been identified to be maternal effect genes in humans and mice regulating early embryo development. Previous research in vitro suggests that NLRP2 and NLRP7 regulate DNA methylation and/or immune signaling through inflammasome formation. However, the exact mechanisms underlying NLRP2 and NLRP7 function are not well defined. Methods: To determine the interacting proteins required for NLRP2/NLRP7-mediated regulation of DNA methylation, yeast 2-hybrid screens, coimmunoprecipitation, and FRET studies were performed and verified the ability of novel protein interactions to affect global DNA methylation by 5-methylcytosine-specific ELISA. Results: Various methodologies employed in this research demonstrate a novel protein interaction between human ErbB3-binding protein 1 (EBP1, also known as proliferation-associated protein 2G4 (PA2G4) and NLRP2 or NLRP7. In addition, NLRP2 and NLRP7 regulate EBP1 gene expression. Functionally, global DNA methylation levels appeared to decrease further when NLRP2 and NLRP7 were co-expressed with EBP1, although additional studies may need to confirm the significance of this effect. Conclusions: Since EBP1 is implicated in apoptosis, cell proliferation, DNA methylation, and differentiation, our discovery significantly advances our understanding of how mutations in NLRP2 or NLRP7 may contribute to reproductive wastage in women through EBP1.</p>
	]]></content:encoded>

	<dc:title>Regulation of DNA Methylation Through EBP1 Interaction with NLRP2 and NLRP7</dc:title>
			<dc:creator>Nayeon Hannah Son</dc:creator>
			<dc:creator>Matthew So</dc:creator>
			<dc:creator>Christopher R. Lupfer</dc:creator>
		<dc:identifier>doi: 10.3390/dna5040049</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-10-17</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-10-17</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>4</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>49</prism:startingPage>
		<prism:doi>10.3390/dna5040049</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/4/49</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/4/48">

	<title>DNA, Vol. 5, Pages 48: Genomic, Epigenomic, and Immuno-Genomic Regulations of Vitamin D Supplementation in Multiple Sclerosis: A Literature Review and In Silico Meta-Analysis</title>
	<link>https://www.mdpi.com/2673-8856/5/4/48</link>
	<description>Multiple sclerosis (MS) is a chronic autoimmune neurodegenerative disorder characterized by progressive demyelination and axonal degeneration within the central nervous system, driven by complex genomic and epigenomic dysregulation. Its pathogenesis involves aberrant DNA methylation patterns at CpG islands of numbers of genes like OLIG1 and OLIG2 disrupting protein expression at myelin with compromised oligodendrocyte differentiation. Furthermore, histone modifications, particularly H3K4me3 and H3K27ac, alter the promoter regions of genes responsible for myelination, affecting myelin synthesis. MS exhibits chromosomal instability and copy number variations in immune-regulatory gene loci, contributing to the elevated expression of genes for pro-inflammatory cytokines (TNF-&amp;amp;alpha;, IL-6) and reductions in anti-inflammatory molecules (IL-10, TGF-&amp;amp;beta;1). Vitamin D deficiency correlates with compromised immune regulation through hypermethylation and reduced chromatin accessibility of vitamin D receptor (VDR) dysfunction and is reported to be associated with dopaminergic neuronal loss. Vitamin D supplementation demonstrates therapeutic potential through binding with VDR, which facilitates nuclear translocation and subsequent transcriptional activation of target genes via vitamin D response elements (VDREs), resulting in suppression of NF-&amp;amp;kappa;B signalling, enhancement of regulatory T-cell (Treg) responses due to upregulation of specific genes like FOXP3, downregulation of pro-inflammatory pathways, and potential restoration of the chromatin accessibility of oligodendrocyte-specific gene promoters, which normalizes oligodendrocyte activity. Identification of differentially methylated regions (DMRs) and differentially expressed genes (DEGs) that are in proximity to VDR-mediated gene regulation supports vitamin D supplementation as a promising, economically viable, and sustainable therapeutic strategy for MS. This systematic review integrates clinical evidence and eventual bioinformatical meta-analyses that reference transcriptome and methylome profiling and identify prospective molecular targets that represent potential genetic and epigenetic biomarkers for personalized therapeutic intervention.</description>
	<pubDate>2025-10-10</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 48: Genomic, Epigenomic, and Immuno-Genomic Regulations of Vitamin D Supplementation in Multiple Sclerosis: A Literature Review and In Silico Meta-Analysis</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/4/48">doi: 10.3390/dna5040048</a></p>
	<p>Authors:
		Preetam Modak
		Pritha Bhattacharjee
		Krishnendu Ghosh
		</p>
	<p>Multiple sclerosis (MS) is a chronic autoimmune neurodegenerative disorder characterized by progressive demyelination and axonal degeneration within the central nervous system, driven by complex genomic and epigenomic dysregulation. Its pathogenesis involves aberrant DNA methylation patterns at CpG islands of numbers of genes like OLIG1 and OLIG2 disrupting protein expression at myelin with compromised oligodendrocyte differentiation. Furthermore, histone modifications, particularly H3K4me3 and H3K27ac, alter the promoter regions of genes responsible for myelination, affecting myelin synthesis. MS exhibits chromosomal instability and copy number variations in immune-regulatory gene loci, contributing to the elevated expression of genes for pro-inflammatory cytokines (TNF-&amp;amp;alpha;, IL-6) and reductions in anti-inflammatory molecules (IL-10, TGF-&amp;amp;beta;1). Vitamin D deficiency correlates with compromised immune regulation through hypermethylation and reduced chromatin accessibility of vitamin D receptor (VDR) dysfunction and is reported to be associated with dopaminergic neuronal loss. Vitamin D supplementation demonstrates therapeutic potential through binding with VDR, which facilitates nuclear translocation and subsequent transcriptional activation of target genes via vitamin D response elements (VDREs), resulting in suppression of NF-&amp;amp;kappa;B signalling, enhancement of regulatory T-cell (Treg) responses due to upregulation of specific genes like FOXP3, downregulation of pro-inflammatory pathways, and potential restoration of the chromatin accessibility of oligodendrocyte-specific gene promoters, which normalizes oligodendrocyte activity. Identification of differentially methylated regions (DMRs) and differentially expressed genes (DEGs) that are in proximity to VDR-mediated gene regulation supports vitamin D supplementation as a promising, economically viable, and sustainable therapeutic strategy for MS. This systematic review integrates clinical evidence and eventual bioinformatical meta-analyses that reference transcriptome and methylome profiling and identify prospective molecular targets that represent potential genetic and epigenetic biomarkers for personalized therapeutic intervention.</p>
	]]></content:encoded>

	<dc:title>Genomic, Epigenomic, and Immuno-Genomic Regulations of Vitamin D Supplementation in Multiple Sclerosis: A Literature Review and In Silico Meta-Analysis</dc:title>
			<dc:creator>Preetam Modak</dc:creator>
			<dc:creator>Pritha Bhattacharjee</dc:creator>
			<dc:creator>Krishnendu Ghosh</dc:creator>
		<dc:identifier>doi: 10.3390/dna5040048</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-10-10</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-10-10</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>4</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>48</prism:startingPage>
		<prism:doi>10.3390/dna5040048</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/4/48</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/4/47">

	<title>DNA, Vol. 5, Pages 47: Small RNA and Epigenetic Control of Plant Immunity</title>
	<link>https://www.mdpi.com/2673-8856/5/4/47</link>
	<description>Plants have evolved a complex, multilayered immune system that integrates molecular recognition, signaling pathways, epigenetic regulation, and small RNA-mediated control. Recent studies have shown that DNA-level regulatory mechanisms, such as RNA-directed DNA methylation (RdDM), histone modifications, and chromatin remodeling, are critical for modulating immune gene expression, allowing for rapid and accurate pathogen-defense responses. The epigenetic landscape not only maintains immunological homeostasis but also promotes stress-responsive transcription via stable chromatin modifications. These changes contribute to immunological priming, a process in which earlier exposure to pathogens or abiotic stress causes a heightened state of preparedness for future encounters. Small RNAs, including siRNAs, miRNAs, and phasiRNAs, are essential for gene silencing before and after transcription, fine-tuning immune responses, and inhibiting negative regulators. These RNA molecules interact closely with chromatin features, influencing histone acetylation/methylation (e.g., H3K4me3, H3K27me3) and guiding DNA methylation patterns. Epigenetically encoded immune memory can be stable across multiple generations, resulting in the transgenerational inheritance of stress resilience. Such memory effects have been observed in rice, tomato, maize, and Arabidopsis. This review summarizes new findings on short RNA biology, chromatin-level immunological control, and epigenetic memory in plant defense. Emerging technologies, such as ATAC-seq (Assay for Transposase-Accessible Chromatin using Sequencing), ChIP-seq (Chromatin Immunoprecipitation followed by Sequencing), bisulfite sequencing, and CRISPR/dCas9-based epigenome editing, are helping researchers comprehend these pathways. These developments hold an opportunity for establishing epigenetic breeding strategies that target the production of non-GMO, stress-resistant crops for sustainable agriculture.</description>
	<pubDate>2025-10-01</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 47: Small RNA and Epigenetic Control of Plant Immunity</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/4/47">doi: 10.3390/dna5040047</a></p>
	<p>Authors:
		Sopan Ganpatrao Wagh
		Akshay Milind Patil
		Ghanshyam Bhaurao Patil
		Sumeet Prabhakar Mankar
		Khushboo Rastogi
		Masamichi Nishiguchi
		</p>
	<p>Plants have evolved a complex, multilayered immune system that integrates molecular recognition, signaling pathways, epigenetic regulation, and small RNA-mediated control. Recent studies have shown that DNA-level regulatory mechanisms, such as RNA-directed DNA methylation (RdDM), histone modifications, and chromatin remodeling, are critical for modulating immune gene expression, allowing for rapid and accurate pathogen-defense responses. The epigenetic landscape not only maintains immunological homeostasis but also promotes stress-responsive transcription via stable chromatin modifications. These changes contribute to immunological priming, a process in which earlier exposure to pathogens or abiotic stress causes a heightened state of preparedness for future encounters. Small RNAs, including siRNAs, miRNAs, and phasiRNAs, are essential for gene silencing before and after transcription, fine-tuning immune responses, and inhibiting negative regulators. These RNA molecules interact closely with chromatin features, influencing histone acetylation/methylation (e.g., H3K4me3, H3K27me3) and guiding DNA methylation patterns. Epigenetically encoded immune memory can be stable across multiple generations, resulting in the transgenerational inheritance of stress resilience. Such memory effects have been observed in rice, tomato, maize, and Arabidopsis. This review summarizes new findings on short RNA biology, chromatin-level immunological control, and epigenetic memory in plant defense. Emerging technologies, such as ATAC-seq (Assay for Transposase-Accessible Chromatin using Sequencing), ChIP-seq (Chromatin Immunoprecipitation followed by Sequencing), bisulfite sequencing, and CRISPR/dCas9-based epigenome editing, are helping researchers comprehend these pathways. These developments hold an opportunity for establishing epigenetic breeding strategies that target the production of non-GMO, stress-resistant crops for sustainable agriculture.</p>
	]]></content:encoded>

	<dc:title>Small RNA and Epigenetic Control of Plant Immunity</dc:title>
			<dc:creator>Sopan Ganpatrao Wagh</dc:creator>
			<dc:creator>Akshay Milind Patil</dc:creator>
			<dc:creator>Ghanshyam Bhaurao Patil</dc:creator>
			<dc:creator>Sumeet Prabhakar Mankar</dc:creator>
			<dc:creator>Khushboo Rastogi</dc:creator>
			<dc:creator>Masamichi Nishiguchi</dc:creator>
		<dc:identifier>doi: 10.3390/dna5040047</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-10-01</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-10-01</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>4</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>47</prism:startingPage>
		<prism:doi>10.3390/dna5040047</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/4/47</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/4/46">

	<title>DNA, Vol. 5, Pages 46: Evaluating AlphaFold 3 Folding of the Intrinsically Disordered Human DNA Topoisomerase II&amp;alpha; C-Terminal Domain</title>
	<link>https://www.mdpi.com/2673-8856/5/4/46</link>
	<description>Background/Objectives: Intrinsically disordered protein regions (IDRs) are difficult to study due to their flexible nature and transient interactions. Computational folding using AlphaFold may offer one way to explore potential folding of these regions under various conditions. Human DNA topoisomerase II&amp;amp;alpha; (TOP2A) is an essential enzyme involved in regulating DNA topology during replication and cell division. TOP2A has an IDR at the C-terminal domain (CTD) that has been shown to be important for regulating TOP2A function, but little is known about potential conformations that it may undertake. Methods: Utilizing the AlphaFold 3 (AF3) model by way of AlphaFold Server, TOP2A was folded as a dimer first without and then with 29 literature-supported post-translational modifications (PTMs) and DNA to observe whether there is predicted folding. Results: TOP2A CTD does not fold in the absence of PTMs. With the addition of PTMs, however, the CTD is predicted to fold into a globular bundle of loops and &amp;amp;alpha;-helices. While DNA alone did not induce folding, in the presence of PTMs, DNA ligands increased helicity of the folded CTD and caused it to interact at different core domain interfaces. In addition, DNA is predicted to enable folding of the TOP2A CTD in the presence of fewer PTMs when compared to the absence of DNA. Conclusions: AF3 predicts the folding of TOP2A CTD in the presence of specific PTMs, and this folding appears to shift to allow binding to DNA in functionally relevant regions. These studies provide predicted folding patterns that can be tested by biochemical approaches. AF3 may support the development of testable hypotheses regarding IDRs and enables researchers to model protein-DNA interactions.</description>
	<pubDate>2025-09-25</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 46: Evaluating AlphaFold 3 Folding of the Intrinsically Disordered Human DNA Topoisomerase II&amp;alpha; C-Terminal Domain</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/4/46">doi: 10.3390/dna5040046</a></p>
	<p>Authors:
		Charisse M. Nartey
		Joseph E. Deweese
		</p>
	<p>Background/Objectives: Intrinsically disordered protein regions (IDRs) are difficult to study due to their flexible nature and transient interactions. Computational folding using AlphaFold may offer one way to explore potential folding of these regions under various conditions. Human DNA topoisomerase II&amp;amp;alpha; (TOP2A) is an essential enzyme involved in regulating DNA topology during replication and cell division. TOP2A has an IDR at the C-terminal domain (CTD) that has been shown to be important for regulating TOP2A function, but little is known about potential conformations that it may undertake. Methods: Utilizing the AlphaFold 3 (AF3) model by way of AlphaFold Server, TOP2A was folded as a dimer first without and then with 29 literature-supported post-translational modifications (PTMs) and DNA to observe whether there is predicted folding. Results: TOP2A CTD does not fold in the absence of PTMs. With the addition of PTMs, however, the CTD is predicted to fold into a globular bundle of loops and &amp;amp;alpha;-helices. While DNA alone did not induce folding, in the presence of PTMs, DNA ligands increased helicity of the folded CTD and caused it to interact at different core domain interfaces. In addition, DNA is predicted to enable folding of the TOP2A CTD in the presence of fewer PTMs when compared to the absence of DNA. Conclusions: AF3 predicts the folding of TOP2A CTD in the presence of specific PTMs, and this folding appears to shift to allow binding to DNA in functionally relevant regions. These studies provide predicted folding patterns that can be tested by biochemical approaches. AF3 may support the development of testable hypotheses regarding IDRs and enables researchers to model protein-DNA interactions.</p>
	]]></content:encoded>

	<dc:title>Evaluating AlphaFold 3 Folding of the Intrinsically Disordered Human DNA Topoisomerase II&amp;amp;alpha; C-Terminal Domain</dc:title>
			<dc:creator>Charisse M. Nartey</dc:creator>
			<dc:creator>Joseph E. Deweese</dc:creator>
		<dc:identifier>doi: 10.3390/dna5040046</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-09-25</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-09-25</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>4</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>46</prism:startingPage>
		<prism:doi>10.3390/dna5040046</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/4/46</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/3/45">

	<title>DNA, Vol. 5, Pages 45: Abyssal DNA: Eukaryotic Diversity in Atlantic Equatorial Deep-Sea Sediments Assessed Through DNA Metabarcoding</title>
	<link>https://www.mdpi.com/2673-8856/5/3/45</link>
	<description>Background/Objectives: We evaluated eukaryotic diversity in two cores obtained from abyssal sediments collected at depths of 4280 m and 4444 m in the equatorial Atlantic, between the Fernando de Noronha and S&amp;amp;atilde;o Pedro and S&amp;amp;atilde;o Paulo archipelagos, using a DNA metabarcoding approach applied to environmental DNA (eDNA) samples. Results: In total, we detected 248,905 DNA reads that were assigned to 65 amplicon sequence variants (ASVs) in the two core sediments (176,073 DNA reads and 59 ASVs were detected in sediment obtained at 4280 m depth, and 72,832 DNA reads and 14 ASVs were detected in the core at 4444 m). These represented three Kingdoms and five phyla: Fungi (Ascomycota and Basidiomycota), Viridiplantae (Chlorophyta and Streptophyta) and Chromista (Ciliophora), in rank abundance order. Ascomycota was the dominant phylum, followed by Basidiomycota. Didymella sp., Cladosporium sp., Scopulariopsis sp., Alternaria eichhorniae, Curvularia sp., Hortaea werneckii, Penicillium sp. (Ascomycota) and Malassezia globosa (Basidiomycota) were the most abundant taxa. Pseudochlorella pyrenoidosa (Chlorophyta) was the most abundant representative of Viridiplantae detected, and Spirotrachelostyla tani (Ciliophora) was the only Chromista detected, both present as minor components of the assigned eukaryotic diversity and only in the 4280 m core. The eukaryotic assemblages displayed moderate diversity indices, and those from the deeper core (4444 m depth) displayed the highest diversity values. Few assigned taxa were present in both samples. The two cores differed in their geological characteristics, consistent with their location in different depositional basins. The core obtained at 4280 m depth, located further north and more isolated from the adjacent continent by two fracture zones, appears to receive less terrigenous sediment input. In contrast, the core obtained at 4444 m depth is under greater continental influence and receives more terrigenous input from the continent. These geological and geographic differences may contribute to the varying eukaryotic eDNA diversities found. Results: Our metabarcoding study revealed the presence of a sediment eukaryotic community dominated by fungi. This included assigned ASVs representing groups with different ecological roles, such as cosmopolitan and phytopathogenic members and extremophiles, some of which may be able to survive and function in the polyextreme deep-sea abyssal conditions. Abyssal sediments present a potential habitat for studying organisms at the edge of viable conditions for life on Earth. eDNA metabarcoding provides a promising technique for detecting cryptic and uncultured biodiversity compared to traditional approaches, opening avenues for further ecological, evolutionary and biotechnological studies.</description>
	<pubDate>2025-09-15</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 45: Abyssal DNA: Eukaryotic Diversity in Atlantic Equatorial Deep-Sea Sediments Assessed Through DNA Metabarcoding</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/3/45">doi: 10.3390/dna5030045</a></p>
	<p>Authors:
		Natana Rabelo Gontijo
		Vívian Nicolau Gonçalves
		Arthur Ayres Neto
		Rosemary Vieira
		Tainá Napoleão Caram
		Marina Martins Malheiros
		Fabyano A. C. Lopes
		Micheline C. Silva
		Allana Queiroz Azevedo
		Thauana Rodrigues Gonçalves
		Luigi Jovane
		Peter Convey
		Paulo E. A. S. Câmara
		Luiz Henrique Rosa
		</p>
	<p>Background/Objectives: We evaluated eukaryotic diversity in two cores obtained from abyssal sediments collected at depths of 4280 m and 4444 m in the equatorial Atlantic, between the Fernando de Noronha and S&amp;amp;atilde;o Pedro and S&amp;amp;atilde;o Paulo archipelagos, using a DNA metabarcoding approach applied to environmental DNA (eDNA) samples. Results: In total, we detected 248,905 DNA reads that were assigned to 65 amplicon sequence variants (ASVs) in the two core sediments (176,073 DNA reads and 59 ASVs were detected in sediment obtained at 4280 m depth, and 72,832 DNA reads and 14 ASVs were detected in the core at 4444 m). These represented three Kingdoms and five phyla: Fungi (Ascomycota and Basidiomycota), Viridiplantae (Chlorophyta and Streptophyta) and Chromista (Ciliophora), in rank abundance order. Ascomycota was the dominant phylum, followed by Basidiomycota. Didymella sp., Cladosporium sp., Scopulariopsis sp., Alternaria eichhorniae, Curvularia sp., Hortaea werneckii, Penicillium sp. (Ascomycota) and Malassezia globosa (Basidiomycota) were the most abundant taxa. Pseudochlorella pyrenoidosa (Chlorophyta) was the most abundant representative of Viridiplantae detected, and Spirotrachelostyla tani (Ciliophora) was the only Chromista detected, both present as minor components of the assigned eukaryotic diversity and only in the 4280 m core. The eukaryotic assemblages displayed moderate diversity indices, and those from the deeper core (4444 m depth) displayed the highest diversity values. Few assigned taxa were present in both samples. The two cores differed in their geological characteristics, consistent with their location in different depositional basins. The core obtained at 4280 m depth, located further north and more isolated from the adjacent continent by two fracture zones, appears to receive less terrigenous sediment input. In contrast, the core obtained at 4444 m depth is under greater continental influence and receives more terrigenous input from the continent. These geological and geographic differences may contribute to the varying eukaryotic eDNA diversities found. Results: Our metabarcoding study revealed the presence of a sediment eukaryotic community dominated by fungi. This included assigned ASVs representing groups with different ecological roles, such as cosmopolitan and phytopathogenic members and extremophiles, some of which may be able to survive and function in the polyextreme deep-sea abyssal conditions. Abyssal sediments present a potential habitat for studying organisms at the edge of viable conditions for life on Earth. eDNA metabarcoding provides a promising technique for detecting cryptic and uncultured biodiversity compared to traditional approaches, opening avenues for further ecological, evolutionary and biotechnological studies.</p>
	]]></content:encoded>

	<dc:title>Abyssal DNA: Eukaryotic Diversity in Atlantic Equatorial Deep-Sea Sediments Assessed Through DNA Metabarcoding</dc:title>
			<dc:creator>Natana Rabelo Gontijo</dc:creator>
			<dc:creator>Vívian Nicolau Gonçalves</dc:creator>
			<dc:creator>Arthur Ayres Neto</dc:creator>
			<dc:creator>Rosemary Vieira</dc:creator>
			<dc:creator>Tainá Napoleão Caram</dc:creator>
			<dc:creator>Marina Martins Malheiros</dc:creator>
			<dc:creator>Fabyano A. C. Lopes</dc:creator>
			<dc:creator>Micheline C. Silva</dc:creator>
			<dc:creator>Allana Queiroz Azevedo</dc:creator>
			<dc:creator>Thauana Rodrigues Gonçalves</dc:creator>
			<dc:creator>Luigi Jovane</dc:creator>
			<dc:creator>Peter Convey</dc:creator>
			<dc:creator>Paulo E. A. S. Câmara</dc:creator>
			<dc:creator>Luiz Henrique Rosa</dc:creator>
		<dc:identifier>doi: 10.3390/dna5030045</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-09-15</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-09-15</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>3</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>45</prism:startingPage>
		<prism:doi>10.3390/dna5030045</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/3/45</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/3/44">

	<title>DNA, Vol. 5, Pages 44: Melatonin and DNA Integrity: The Impact of Exogenous Administration in Exercise-Induced Oxidative Stress&amp;mdash;A Systematic Review</title>
	<link>https://www.mdpi.com/2673-8856/5/3/44</link>
	<description>Background/Objectives: Intense physical exercise leads to oxidative stress, causing cellular and DNA damage in athletes. Melatonin (MLT), a hormone with antioxidant and anti-inflammatory properties, is increasingly used to counteract these effects. However, its specific role in protecting DNA integrity and modulating repair mechanisms post-exercise remains unclear. This systematic review aimed to synthesize clinical evidence on the effects of exogenous MLT supplementation in reducing exercise-induced oxidative stress, reducing DNA damage, and influencing DNA integrity in healthy, physically active individuals. Methods: A comprehensive search was conducted in PubMed and Scopus up to 25 March 2025, for randomized or controlled clinical trials assessing exogenous MLT in healthy, physically active adults, with outcomes related to oxidative stress, DNA damage, or DNA repair. Risk of bias was evaluated using the RoB2 tool. Due to heterogeneity in study designs and outcomes, results were synthesized narratively. Results: Six clinical trials met the inclusion criteria, with MLT administered as a single dose (6&amp;amp;ndash;10 mg) or in repeated doses over 6 days to 4 weeks. Across the studies, MLT consistently reduced oxidative stress markers (malondialdehyde, advanced oxidation protein products), muscle damage indicators (creatine kinase, LDH), and inflammation, while increasing antioxidant enzyme activity (SOD, GPx). Only one study directly assessed DNA damage, reporting significantly reduced DNA fragmentation (comet assay) in the MLT group compared to placebo. No studies directly evaluated DNA repair pathways. Conclusions: Exogenous MLT supplementation appears effective in attenuating exercise-induced oxidative stress and may reduce DNA damage in athletes. While findings support its antioxidant and cytoprotective roles, further rigorous trials are needed to clarify its direct effects on DNA repair mechanisms in sports medicine. Funding: This review received no specific grant from funding agencies in the public, commercial, or not-for-profit sectors. Registration: This review was prospectively registered in the PROSPERO database (CRD420231039805).</description>
	<pubDate>2025-09-10</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 44: Melatonin and DNA Integrity: The Impact of Exogenous Administration in Exercise-Induced Oxidative Stress&amp;mdash;A Systematic Review</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/3/44">doi: 10.3390/dna5030044</a></p>
	<p>Authors:
		Vanessa Bertolucci
		Nicole Maria Marino Granado
		Karen Y. Sánchez-Luquez
		</p>
	<p>Background/Objectives: Intense physical exercise leads to oxidative stress, causing cellular and DNA damage in athletes. Melatonin (MLT), a hormone with antioxidant and anti-inflammatory properties, is increasingly used to counteract these effects. However, its specific role in protecting DNA integrity and modulating repair mechanisms post-exercise remains unclear. This systematic review aimed to synthesize clinical evidence on the effects of exogenous MLT supplementation in reducing exercise-induced oxidative stress, reducing DNA damage, and influencing DNA integrity in healthy, physically active individuals. Methods: A comprehensive search was conducted in PubMed and Scopus up to 25 March 2025, for randomized or controlled clinical trials assessing exogenous MLT in healthy, physically active adults, with outcomes related to oxidative stress, DNA damage, or DNA repair. Risk of bias was evaluated using the RoB2 tool. Due to heterogeneity in study designs and outcomes, results were synthesized narratively. Results: Six clinical trials met the inclusion criteria, with MLT administered as a single dose (6&amp;amp;ndash;10 mg) or in repeated doses over 6 days to 4 weeks. Across the studies, MLT consistently reduced oxidative stress markers (malondialdehyde, advanced oxidation protein products), muscle damage indicators (creatine kinase, LDH), and inflammation, while increasing antioxidant enzyme activity (SOD, GPx). Only one study directly assessed DNA damage, reporting significantly reduced DNA fragmentation (comet assay) in the MLT group compared to placebo. No studies directly evaluated DNA repair pathways. Conclusions: Exogenous MLT supplementation appears effective in attenuating exercise-induced oxidative stress and may reduce DNA damage in athletes. While findings support its antioxidant and cytoprotective roles, further rigorous trials are needed to clarify its direct effects on DNA repair mechanisms in sports medicine. Funding: This review received no specific grant from funding agencies in the public, commercial, or not-for-profit sectors. Registration: This review was prospectively registered in the PROSPERO database (CRD420231039805).</p>
	]]></content:encoded>

	<dc:title>Melatonin and DNA Integrity: The Impact of Exogenous Administration in Exercise-Induced Oxidative Stress&amp;amp;mdash;A Systematic Review</dc:title>
			<dc:creator>Vanessa Bertolucci</dc:creator>
			<dc:creator>Nicole Maria Marino Granado</dc:creator>
			<dc:creator>Karen Y. Sánchez-Luquez</dc:creator>
		<dc:identifier>doi: 10.3390/dna5030044</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-09-10</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-09-10</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>3</prism:number>
	<prism:section>Systematic Review</prism:section>
	<prism:startingPage>44</prism:startingPage>
		<prism:doi>10.3390/dna5030044</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/3/44</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/3/43">

	<title>DNA, Vol. 5, Pages 43: Mutational Characterization of Astrocytoma, IDH-Mutant, CNS WHO Grade III in the AACR GENIE Database</title>
	<link>https://www.mdpi.com/2673-8856/5/3/43</link>
	<description>Background/Objectives: Astrocytoma, IDH-mutant, CNS WHO grade 3, is a diffuse glioma with poor prognosis, molecularly defined by IDH mutations and frequently co-occurring TP53 and ATRX alterations. This study aimed to delineate the genomic landscape and identify clinically relevant molecular features of astrocytoma, IDH-mutant, CNS WHO grade 3 using this resource. Methods: Patients in the American Association for Cancer Research Project Genomics Evidence Neoplasia Information Exchange (AACR Project GENIE) database were selected based on histological diagnosis of &amp;amp;ldquo;anaplastic astrocytoma&amp;amp;rdquo;, confirmed IDH1/2 mutation, and exclusion of CDKN2A/B homozygous deletions. We analyzed frequencies of somatic mutations, copy number alterations (CNAs), structural variants (SVs), assessed co-occurrence/exclusivity patterns, and explored associations with available demographic and limited survival data. Results: The most common somatic mutations were in IDH1 (98.0%), TP53 (94.8%), and ATRX (55.2%). The observed ATRX mutation frequency was lower than some historical reports (e.g., ~86%). Other recurrent alterations included phosphatidylinositol-4,5-bisphosphate 3-kinase catalytic subunit alpha (PIK3CA) (6.9%), Notch receptor 1 (NOTCH1) (6.9%), and platelet-derived growth factor receptor alpha (PDGFRA) (mutations 4.3%; CNAs also observed). Conclusions: This study provides a comprehensive genomic characterization of astrocytoma, IDH-mutant, CNS WHO grade 3 using the AACR GENIE database, confirming core mutational signatures while also highlighting potential variations in alteration frequencies, such as for ATRX. The findings establish a valuable real-world genomic benchmark for this tumor type, while promoting the need for continued data integration with robust clinical outcomes to identify actionable prognostic and therapeutic targets.</description>
	<pubDate>2025-09-04</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 43: Mutational Characterization of Astrocytoma, IDH-Mutant, CNS WHO Grade III in the AACR GENIE Database</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/3/43">doi: 10.3390/dna5030043</a></p>
	<p>Authors:
		Elijah Torbenson
		Beau Hsia
		Nigel Lang
		Peter Silberstein
		</p>
	<p>Background/Objectives: Astrocytoma, IDH-mutant, CNS WHO grade 3, is a diffuse glioma with poor prognosis, molecularly defined by IDH mutations and frequently co-occurring TP53 and ATRX alterations. This study aimed to delineate the genomic landscape and identify clinically relevant molecular features of astrocytoma, IDH-mutant, CNS WHO grade 3 using this resource. Methods: Patients in the American Association for Cancer Research Project Genomics Evidence Neoplasia Information Exchange (AACR Project GENIE) database were selected based on histological diagnosis of &amp;amp;ldquo;anaplastic astrocytoma&amp;amp;rdquo;, confirmed IDH1/2 mutation, and exclusion of CDKN2A/B homozygous deletions. We analyzed frequencies of somatic mutations, copy number alterations (CNAs), structural variants (SVs), assessed co-occurrence/exclusivity patterns, and explored associations with available demographic and limited survival data. Results: The most common somatic mutations were in IDH1 (98.0%), TP53 (94.8%), and ATRX (55.2%). The observed ATRX mutation frequency was lower than some historical reports (e.g., ~86%). Other recurrent alterations included phosphatidylinositol-4,5-bisphosphate 3-kinase catalytic subunit alpha (PIK3CA) (6.9%), Notch receptor 1 (NOTCH1) (6.9%), and platelet-derived growth factor receptor alpha (PDGFRA) (mutations 4.3%; CNAs also observed). Conclusions: This study provides a comprehensive genomic characterization of astrocytoma, IDH-mutant, CNS WHO grade 3 using the AACR GENIE database, confirming core mutational signatures while also highlighting potential variations in alteration frequencies, such as for ATRX. The findings establish a valuable real-world genomic benchmark for this tumor type, while promoting the need for continued data integration with robust clinical outcomes to identify actionable prognostic and therapeutic targets.</p>
	]]></content:encoded>

	<dc:title>Mutational Characterization of Astrocytoma, IDH-Mutant, CNS WHO Grade III in the AACR GENIE Database</dc:title>
			<dc:creator>Elijah Torbenson</dc:creator>
			<dc:creator>Beau Hsia</dc:creator>
			<dc:creator>Nigel Lang</dc:creator>
			<dc:creator>Peter Silberstein</dc:creator>
		<dc:identifier>doi: 10.3390/dna5030043</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-09-04</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-09-04</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>3</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>43</prism:startingPage>
		<prism:doi>10.3390/dna5030043</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/3/43</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/3/42">

	<title>DNA, Vol. 5, Pages 42: Comparative Analysis of Virulence Genes and Antimicrobial Resistance in Escherichia coli from Poultry Meat and Poultry Farm Environments in Pakistan</title>
	<link>https://www.mdpi.com/2673-8856/5/3/42</link>
	<description>Background/Objectives: Escherichia coli (E. coli) strains harboring virulence genes and antimicrobial resistance (AMR) pose a significant risk to poultry production and public health in Pakistan. This study aimed to isolate E. coli from poultry meat and poultry farm environments and compare their virulence gene profiles and AMR patterns. Methods: A total of 100 samples were collected, including 50 poultry meat samples from retail shops and 50 environmental samples from poultry farms. E. coli was isolated on MacConkey agar following overnight enrichment in lactose broth. Isolates were confirmed by biochemical testing and 16S rRNA gene PCR. Virulence genes (stx1, stx2, eae) were detected using multiplex PCR, and AMR profiles were assessed via the Kirby&amp;amp;ndash;Bauer disk diffusion method. Results: E. coli was isolated from 26 poultry meat samples (52%) and 23 poultry farm environment samples (46%). All isolates harbored at least one virulence gene, with stx2 being the most prevalent (34.62% meat; 39.13% environment), followed by stx1 (19.23% meat; 17.40% environment) and eae (11.54% meat; 13.04% environment). Combined gene patterns (stx1/eae, stx2/eae, stx1/stx2/eae) were also detected across both sources. AMR analysis revealed high resistance to cefoxitin (100% both sources), trimethoprim (57.09% meat; 60.87% environment), and ampicillin&amp;amp;ndash;sulbactam (42.3% meat; 52.17% environment). In contrast, isolates were completely susceptible to norfloxacin (100% meat; 95.65% environment) and exhibited high susceptibility to tetracycline (84.62% meat; 82.61% environment). Statistical comparisons using Fisher&amp;amp;rsquo;s exact test and the Kruskal&amp;amp;ndash;Wallis test showed no significant differences (p &amp;amp;gt; 0.05) in virulence gene prevalence or AMR patterns between poultry meat and environmental isolates. Conclusions: These findings highlight poultry farm environments as potential reservoirs for pathogenic, antimicrobial-resistant E. coli, emphasizing the risk of zoonotic transmission through contaminated poultry meat and the need for improved biosecurity measures.</description>
	<pubDate>2025-09-03</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 42: Comparative Analysis of Virulence Genes and Antimicrobial Resistance in Escherichia coli from Poultry Meat and Poultry Farm Environments in Pakistan</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/3/42">doi: 10.3390/dna5030042</a></p>
	<p>Authors:
		Arjmand Fatima
		Sultan Ali
		Rabin Raut
		</p>
	<p>Background/Objectives: Escherichia coli (E. coli) strains harboring virulence genes and antimicrobial resistance (AMR) pose a significant risk to poultry production and public health in Pakistan. This study aimed to isolate E. coli from poultry meat and poultry farm environments and compare their virulence gene profiles and AMR patterns. Methods: A total of 100 samples were collected, including 50 poultry meat samples from retail shops and 50 environmental samples from poultry farms. E. coli was isolated on MacConkey agar following overnight enrichment in lactose broth. Isolates were confirmed by biochemical testing and 16S rRNA gene PCR. Virulence genes (stx1, stx2, eae) were detected using multiplex PCR, and AMR profiles were assessed via the Kirby&amp;amp;ndash;Bauer disk diffusion method. Results: E. coli was isolated from 26 poultry meat samples (52%) and 23 poultry farm environment samples (46%). All isolates harbored at least one virulence gene, with stx2 being the most prevalent (34.62% meat; 39.13% environment), followed by stx1 (19.23% meat; 17.40% environment) and eae (11.54% meat; 13.04% environment). Combined gene patterns (stx1/eae, stx2/eae, stx1/stx2/eae) were also detected across both sources. AMR analysis revealed high resistance to cefoxitin (100% both sources), trimethoprim (57.09% meat; 60.87% environment), and ampicillin&amp;amp;ndash;sulbactam (42.3% meat; 52.17% environment). In contrast, isolates were completely susceptible to norfloxacin (100% meat; 95.65% environment) and exhibited high susceptibility to tetracycline (84.62% meat; 82.61% environment). Statistical comparisons using Fisher&amp;amp;rsquo;s exact test and the Kruskal&amp;amp;ndash;Wallis test showed no significant differences (p &amp;amp;gt; 0.05) in virulence gene prevalence or AMR patterns between poultry meat and environmental isolates. Conclusions: These findings highlight poultry farm environments as potential reservoirs for pathogenic, antimicrobial-resistant E. coli, emphasizing the risk of zoonotic transmission through contaminated poultry meat and the need for improved biosecurity measures.</p>
	]]></content:encoded>

	<dc:title>Comparative Analysis of Virulence Genes and Antimicrobial Resistance in Escherichia coli from Poultry Meat and Poultry Farm Environments in Pakistan</dc:title>
			<dc:creator>Arjmand Fatima</dc:creator>
			<dc:creator>Sultan Ali</dc:creator>
			<dc:creator>Rabin Raut</dc:creator>
		<dc:identifier>doi: 10.3390/dna5030042</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-09-03</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-09-03</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>3</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>42</prism:startingPage>
		<prism:doi>10.3390/dna5030042</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/3/42</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/3/41">

	<title>DNA, Vol. 5, Pages 41: Cell-Free Mitochondrial DNA in Cell Culture Supernatant: Fragment Size Analysis and FBS Contamination Assessment</title>
	<link>https://www.mdpi.com/2673-8856/5/3/41</link>
	<description>Background/Objectives: Circulating cell-free DNA (cfDNA) consists of genomic DNA (cf-nDNA) and mitochondrial DNA (cf-mtDNA) fragments released from cells primarily through apoptosis and necrosis. In healthy individuals, the main source of cfDNA is apoptosis, whereas in cancer patients, necrosis predominates. Considering that in vitro cfDNA models are valuable research tools, this study presents an in vitro characterization of cf-mtDNA patterns released into the culture medium by four human cell lines: normal dermal fibroblasts (Hs27), induced pluripotent stem cells (iPSCs), melanoma cells (BMel), and prostate cancer cells (PC3). Furthermore, as fetal bovine serum (FBS)&amp;amp;mdash;a widely used supplement in cell culture media&amp;amp;mdash;has been shown to contain bovine cfDNA, species-specific primers were employed to eliminate potential artifacts arising from this contamination in in vitro experiments. Methods: Fragmentation analysis of cf-mtDNA was conducted by amplifying the human MT-CYB gene and the D-loop region in four cell lines using species-specific primers. Two indices, Q and &amp;amp;lambda;, were employed to quantify fragmentation. Results: These indices reveal that cancer cells exhibit the highest degree of fragmentation compared to fibroblasts, whereas stem cells show the lowest degree of fragmentation. This study identified species-specific primers for the human and bovine MT-CYB gene, confirming the presence of bovine cf-mtDNA in cell culture media supplemented with FBS. Conclusions: in vitro cellular models are useful for studying the mechanisms of cfDNA release and fragmentation; designed primers provide a reliable tool for assessing contamination across different growth time points minimizing interference errors and non-specific amplifications.</description>
	<pubDate>2025-08-27</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 41: Cell-Free Mitochondrial DNA in Cell Culture Supernatant: Fragment Size Analysis and FBS Contamination Assessment</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/3/41">doi: 10.3390/dna5030041</a></p>
	<p>Authors:
		Patrizia Cesare
		Sabrina Colafarina
		Antonella Bonfigli
		Anna Rita Volpe
		Massimo Aloisi
		Osvaldo Zarivi
		Anna Maria Giuseppina Poma
		</p>
	<p>Background/Objectives: Circulating cell-free DNA (cfDNA) consists of genomic DNA (cf-nDNA) and mitochondrial DNA (cf-mtDNA) fragments released from cells primarily through apoptosis and necrosis. In healthy individuals, the main source of cfDNA is apoptosis, whereas in cancer patients, necrosis predominates. Considering that in vitro cfDNA models are valuable research tools, this study presents an in vitro characterization of cf-mtDNA patterns released into the culture medium by four human cell lines: normal dermal fibroblasts (Hs27), induced pluripotent stem cells (iPSCs), melanoma cells (BMel), and prostate cancer cells (PC3). Furthermore, as fetal bovine serum (FBS)&amp;amp;mdash;a widely used supplement in cell culture media&amp;amp;mdash;has been shown to contain bovine cfDNA, species-specific primers were employed to eliminate potential artifacts arising from this contamination in in vitro experiments. Methods: Fragmentation analysis of cf-mtDNA was conducted by amplifying the human MT-CYB gene and the D-loop region in four cell lines using species-specific primers. Two indices, Q and &amp;amp;lambda;, were employed to quantify fragmentation. Results: These indices reveal that cancer cells exhibit the highest degree of fragmentation compared to fibroblasts, whereas stem cells show the lowest degree of fragmentation. This study identified species-specific primers for the human and bovine MT-CYB gene, confirming the presence of bovine cf-mtDNA in cell culture media supplemented with FBS. Conclusions: in vitro cellular models are useful for studying the mechanisms of cfDNA release and fragmentation; designed primers provide a reliable tool for assessing contamination across different growth time points minimizing interference errors and non-specific amplifications.</p>
	]]></content:encoded>

	<dc:title>Cell-Free Mitochondrial DNA in Cell Culture Supernatant: Fragment Size Analysis and FBS Contamination Assessment</dc:title>
			<dc:creator>Patrizia Cesare</dc:creator>
			<dc:creator>Sabrina Colafarina</dc:creator>
			<dc:creator>Antonella Bonfigli</dc:creator>
			<dc:creator>Anna Rita Volpe</dc:creator>
			<dc:creator>Massimo Aloisi</dc:creator>
			<dc:creator>Osvaldo Zarivi</dc:creator>
			<dc:creator>Anna Maria Giuseppina Poma</dc:creator>
		<dc:identifier>doi: 10.3390/dna5030041</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-08-27</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-08-27</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>3</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>41</prism:startingPage>
		<prism:doi>10.3390/dna5030041</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/3/41</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/3/40">

	<title>DNA, Vol. 5, Pages 40: Loss of LsSOC1 Function Delays Bolting and Reprograms Transcriptional and Metabolic Responses in Lettuce</title>
	<link>https://www.mdpi.com/2673-8856/5/3/40</link>
	<description>Background/Objectives: Bolting in lettuce (Lactuca sativa L.) is highly sensitive to elevated temperatures, leading to premature flowering and reduced crop quality and yield. Although SUPPRESSOR OF OVEREXPRESSION OF CONSTANS 1 (SOC1) is a well-known floral integrator in Arabidopsis, its role in heat-induced bolting in lettuce remains unclear. Methods: In this study, we generated CRISPR/Cas9-mediated LsSOC1 knockout (KO) lines and evaluated their phenotypes under high-temperature conditions. Results: LsSOC1-KO lines exhibited delayed bolting up to 18.6 days, and stem elongation was reduced by approximately 3.8 cm, which is equivalent to a 36.1% decrease compared to wild-type (WT) plants. Transcriptome analysis of leaf and bud tissues identified 32 up-regulated and 10 down-regulated genes common to leaf tissue (|log2FC| &amp;amp;ge; 1, adjusted p &amp;amp;lt; 0.05). Among them, GA20-oxidase1 was significantly down-regulated in both tissues, which may have contributed to delayed floral transition and possibly to reduced stem elongation, although tissue-specific regulation of gibberellin metabolism warrants further investigation. In contrast, genes encoding heat shock proteins, ROS-detoxification enzymes, and flavonoid biosynthetic enzymes were up-regulated, suggesting a dual role of LsSOC1 in modulating thermotolerance and floral transition. qRT-PCR validated the sustained suppression of flowering-related genes in LsSOC1 KO plants under 37 &amp;amp;deg;C heat stress. Conclusions: These findings demonstrate that LsSOC1 is a key integrator of developmental and thermal cues, orchestrating both bolting and stress-responsive transcriptional programs. Importantly, delayed bolting may extend the harvest window and improve postharvest quality in lettuce, highlighting LsSOC1 as a promising genetic target for breeding heat-resilient leafy vegetables.</description>
	<pubDate>2025-08-19</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 40: Loss of LsSOC1 Function Delays Bolting and Reprograms Transcriptional and Metabolic Responses in Lettuce</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/3/40">doi: 10.3390/dna5030040</a></p>
	<p>Authors:
		Jin-Young Kim
		Young-Hee Jang
		Tae-Sung Kim
		Yu-Jin Jung
		Kwon-Kyoo Kang
		</p>
	<p>Background/Objectives: Bolting in lettuce (Lactuca sativa L.) is highly sensitive to elevated temperatures, leading to premature flowering and reduced crop quality and yield. Although SUPPRESSOR OF OVEREXPRESSION OF CONSTANS 1 (SOC1) is a well-known floral integrator in Arabidopsis, its role in heat-induced bolting in lettuce remains unclear. Methods: In this study, we generated CRISPR/Cas9-mediated LsSOC1 knockout (KO) lines and evaluated their phenotypes under high-temperature conditions. Results: LsSOC1-KO lines exhibited delayed bolting up to 18.6 days, and stem elongation was reduced by approximately 3.8 cm, which is equivalent to a 36.1% decrease compared to wild-type (WT) plants. Transcriptome analysis of leaf and bud tissues identified 32 up-regulated and 10 down-regulated genes common to leaf tissue (|log2FC| &amp;amp;ge; 1, adjusted p &amp;amp;lt; 0.05). Among them, GA20-oxidase1 was significantly down-regulated in both tissues, which may have contributed to delayed floral transition and possibly to reduced stem elongation, although tissue-specific regulation of gibberellin metabolism warrants further investigation. In contrast, genes encoding heat shock proteins, ROS-detoxification enzymes, and flavonoid biosynthetic enzymes were up-regulated, suggesting a dual role of LsSOC1 in modulating thermotolerance and floral transition. qRT-PCR validated the sustained suppression of flowering-related genes in LsSOC1 KO plants under 37 &amp;amp;deg;C heat stress. Conclusions: These findings demonstrate that LsSOC1 is a key integrator of developmental and thermal cues, orchestrating both bolting and stress-responsive transcriptional programs. Importantly, delayed bolting may extend the harvest window and improve postharvest quality in lettuce, highlighting LsSOC1 as a promising genetic target for breeding heat-resilient leafy vegetables.</p>
	]]></content:encoded>

	<dc:title>Loss of LsSOC1 Function Delays Bolting and Reprograms Transcriptional and Metabolic Responses in Lettuce</dc:title>
			<dc:creator>Jin-Young Kim</dc:creator>
			<dc:creator>Young-Hee Jang</dc:creator>
			<dc:creator>Tae-Sung Kim</dc:creator>
			<dc:creator>Yu-Jin Jung</dc:creator>
			<dc:creator>Kwon-Kyoo Kang</dc:creator>
		<dc:identifier>doi: 10.3390/dna5030040</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-08-19</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-08-19</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>3</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>40</prism:startingPage>
		<prism:doi>10.3390/dna5030040</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/3/40</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/3/39">

	<title>DNA, Vol. 5, Pages 39: Inteins at Eleven Distinct Insertion Sites in Archaeal Helicase Subunit MCM Exhibit Varied Architectures and Activity Levels Across Archaeal Groups</title>
	<link>https://www.mdpi.com/2673-8856/5/3/39</link>
	<description>Background/Objectives: Inteins are mobile genetic elements invading highly conserved genes across all domains of life and viruses. Five active intein insertion sites (MCM-a through e) had previously been identified and studied in the archaeal replicative helicase minichromosome maintenance (MCM) subunit gene mcm, making MCM an ideal system for dissecting the dynamics of multi-intein genes. However, work in this system thus far has been limited to particular archaeal groups. To better understand the dynamics and diversity of these inteins, MCM homologs spanning all archaeal groups were extracted from NCBI&amp;amp;rsquo;s non-redundant protein sequence database, and the distribution and structural architectures of their inteins were characterized. Methods: The amino acid sequences of 4243 archaeal MCM homologs were retrieved from NCBI&amp;amp;rsquo;s non-redundant protein sequence database. These sequences were systematically assessed for their intein content through within-group multiple sequence alignments. To characterize the inteins present at each site, extensive intein structure predictions and comparisons were performed. Phylogenetic analyses were used to investigate intein relatedness between and within sites, as well as the distribution of different MCM inteins in geographically overlapping populations of archaea. Results: In total, 11 active MCM intein insertion sites were identified, expanding on the previously known five. The insertion sites have varied invasion activity levels across archaeal groups, with Nanobdellati (DPANN) being the only group with all 11 sites active. In all but two (Methanonatronarchaeia and Hadarchaeota) of the archaeal groups studied where inteins were present, at least one MCM homolog was invaded by more than one intein. With respect to intein structure, within-intein insertions bearing semblance to DNA-binding domains were identified, with varied presence between inteins. Additionally, a study of archaeal MCM sequences of samples collected from the Atacama Desert in June 2013 revealed high MCM intein diversity levels. Conclusions: We identified six new active intein insertion sites in archaeal MCM, more than doubling the five previously known sites. All eleven intein insertion sites were either close to the ATP binding site, or the lined the channel through which the single-stranded DNA is pulled during the catalytic cycle of the helicase. Many of the analyzed inteins contained insertions bearing similarity to DNA-binding helix-turn-helix domains suggesting potential involvement in the intein homing process. Additionally, the high levels of MCM intein diversity observed in archaea from the Atacama Desert provide novel and strong support for a co-existence model of intein persistence.</description>
	<pubDate>2025-08-14</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 39: Inteins at Eleven Distinct Insertion Sites in Archaeal Helicase Subunit MCM Exhibit Varied Architectures and Activity Levels Across Archaeal Groups</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/3/39">doi: 10.3390/dna5030039</a></p>
	<p>Authors:
		Danielle Arsenault
		Gabrielle F. Stack
		Johann Peter Gogarten
		</p>
	<p>Background/Objectives: Inteins are mobile genetic elements invading highly conserved genes across all domains of life and viruses. Five active intein insertion sites (MCM-a through e) had previously been identified and studied in the archaeal replicative helicase minichromosome maintenance (MCM) subunit gene mcm, making MCM an ideal system for dissecting the dynamics of multi-intein genes. However, work in this system thus far has been limited to particular archaeal groups. To better understand the dynamics and diversity of these inteins, MCM homologs spanning all archaeal groups were extracted from NCBI&amp;amp;rsquo;s non-redundant protein sequence database, and the distribution and structural architectures of their inteins were characterized. Methods: The amino acid sequences of 4243 archaeal MCM homologs were retrieved from NCBI&amp;amp;rsquo;s non-redundant protein sequence database. These sequences were systematically assessed for their intein content through within-group multiple sequence alignments. To characterize the inteins present at each site, extensive intein structure predictions and comparisons were performed. Phylogenetic analyses were used to investigate intein relatedness between and within sites, as well as the distribution of different MCM inteins in geographically overlapping populations of archaea. Results: In total, 11 active MCM intein insertion sites were identified, expanding on the previously known five. The insertion sites have varied invasion activity levels across archaeal groups, with Nanobdellati (DPANN) being the only group with all 11 sites active. In all but two (Methanonatronarchaeia and Hadarchaeota) of the archaeal groups studied where inteins were present, at least one MCM homolog was invaded by more than one intein. With respect to intein structure, within-intein insertions bearing semblance to DNA-binding domains were identified, with varied presence between inteins. Additionally, a study of archaeal MCM sequences of samples collected from the Atacama Desert in June 2013 revealed high MCM intein diversity levels. Conclusions: We identified six new active intein insertion sites in archaeal MCM, more than doubling the five previously known sites. All eleven intein insertion sites were either close to the ATP binding site, or the lined the channel through which the single-stranded DNA is pulled during the catalytic cycle of the helicase. Many of the analyzed inteins contained insertions bearing similarity to DNA-binding helix-turn-helix domains suggesting potential involvement in the intein homing process. Additionally, the high levels of MCM intein diversity observed in archaea from the Atacama Desert provide novel and strong support for a co-existence model of intein persistence.</p>
	]]></content:encoded>

	<dc:title>Inteins at Eleven Distinct Insertion Sites in Archaeal Helicase Subunit MCM Exhibit Varied Architectures and Activity Levels Across Archaeal Groups</dc:title>
			<dc:creator>Danielle Arsenault</dc:creator>
			<dc:creator>Gabrielle F. Stack</dc:creator>
			<dc:creator>Johann Peter Gogarten</dc:creator>
		<dc:identifier>doi: 10.3390/dna5030039</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-08-14</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-08-14</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>3</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>39</prism:startingPage>
		<prism:doi>10.3390/dna5030039</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/3/39</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/3/38">

	<title>DNA, Vol. 5, Pages 38: Mitochondrial Dysregulation in Male Infertility: A Preliminary Study for Infertility-Specific lncRNA Variants</title>
	<link>https://www.mdpi.com/2673-8856/5/3/38</link>
	<description>Background/Objectives: Male infertility is a major health concern with a complex etiopathology, yet a substantial proportion of cases remain idiopathic. Mitochondrial dysfunction and non-coding RNA (ncRNA) deregulation have both been implicated in impaired spermatogenesis, but their interplay remains poorly understood. This study aimed to identify infertility-specific variants in ncRNAs that affect mitochondrial dynamics and homeostasis and to explore their roles. Methods: Whole-genome sequencing (WGS) was performed on genomic DNA samples from teratozoospermic, asthenozoospermic, oligozoospermic, and normozoospermic men. Variants uniquely present in infertile individuals and mapped to ncRNAs that affect mitochondrial dynamics were selected and prioritized using bioinformatics tools. An independent transcriptomic validation was conducted using RNA-sequencing data from testicular biopsies of men with non-obstructive azoospermia (NOA) to determine whether the ncRNAs harboring WGS-derived variants were transcriptionally altered. Results: We identified several infertility-specific variants located in lncRNAs known to interact with mitochondrial regulators, including GAS5, HOTAIR, PVT1, MEG3, and CDKN2B-AS1. Transcriptomic analysis confirmed significant deregulation of these lncRNAs in azoospermic testicular samples. Bioinformatic analysis also implicated the disruption of lncRNA&amp;amp;ndash;miRNA&amp;amp;ndash;mitochondria networks, potentially contributing to mitochondrial membrane potential loss, elevated reactive oxygen species (ROS) production, impaired mitophagy, and germ cell apoptosis. Conclusions: Our integrative genomic and transcriptomic analysis highlights lncRNA&amp;amp;ndash;mitochondrial gene interactions as a novel regulatory layer in male infertility, while the identified lncRNAs hold promise as biomarkers and therapeutic targets. However, future functional studies are warranted to elucidate their mechanistic roles and potential for clinical translation in reproductive medicine.</description>
	<pubDate>2025-08-05</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 38: Mitochondrial Dysregulation in Male Infertility: A Preliminary Study for Infertility-Specific lncRNA Variants</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/3/38">doi: 10.3390/dna5030038</a></p>
	<p>Authors:
		Georgios Stamatellos
		Maria-Anna Kyrgiafini
		Aris Kaltsas
		Zissis Mamuris
		</p>
	<p>Background/Objectives: Male infertility is a major health concern with a complex etiopathology, yet a substantial proportion of cases remain idiopathic. Mitochondrial dysfunction and non-coding RNA (ncRNA) deregulation have both been implicated in impaired spermatogenesis, but their interplay remains poorly understood. This study aimed to identify infertility-specific variants in ncRNAs that affect mitochondrial dynamics and homeostasis and to explore their roles. Methods: Whole-genome sequencing (WGS) was performed on genomic DNA samples from teratozoospermic, asthenozoospermic, oligozoospermic, and normozoospermic men. Variants uniquely present in infertile individuals and mapped to ncRNAs that affect mitochondrial dynamics were selected and prioritized using bioinformatics tools. An independent transcriptomic validation was conducted using RNA-sequencing data from testicular biopsies of men with non-obstructive azoospermia (NOA) to determine whether the ncRNAs harboring WGS-derived variants were transcriptionally altered. Results: We identified several infertility-specific variants located in lncRNAs known to interact with mitochondrial regulators, including GAS5, HOTAIR, PVT1, MEG3, and CDKN2B-AS1. Transcriptomic analysis confirmed significant deregulation of these lncRNAs in azoospermic testicular samples. Bioinformatic analysis also implicated the disruption of lncRNA&amp;amp;ndash;miRNA&amp;amp;ndash;mitochondria networks, potentially contributing to mitochondrial membrane potential loss, elevated reactive oxygen species (ROS) production, impaired mitophagy, and germ cell apoptosis. Conclusions: Our integrative genomic and transcriptomic analysis highlights lncRNA&amp;amp;ndash;mitochondrial gene interactions as a novel regulatory layer in male infertility, while the identified lncRNAs hold promise as biomarkers and therapeutic targets. However, future functional studies are warranted to elucidate their mechanistic roles and potential for clinical translation in reproductive medicine.</p>
	]]></content:encoded>

	<dc:title>Mitochondrial Dysregulation in Male Infertility: A Preliminary Study for Infertility-Specific lncRNA Variants</dc:title>
			<dc:creator>Georgios Stamatellos</dc:creator>
			<dc:creator>Maria-Anna Kyrgiafini</dc:creator>
			<dc:creator>Aris Kaltsas</dc:creator>
			<dc:creator>Zissis Mamuris</dc:creator>
		<dc:identifier>doi: 10.3390/dna5030038</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-08-05</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-08-05</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>3</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>38</prism:startingPage>
		<prism:doi>10.3390/dna5030038</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/3/38</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/3/37">

	<title>DNA, Vol. 5, Pages 37: The Role of DNA in Neural Development and Cognitive Function</title>
	<link>https://www.mdpi.com/2673-8856/5/3/37</link>
	<description>DNA connects the domains of genetic regulation and environmental interactions and plays a crucial role in neural development and cognitive function. The complex roles of genetic and epigenetic processes in brain development, synaptic plasticity, and higher-order cognitive abilities were reviewed in this study. Neural progenitors are formed and differentiated according to genetic instructions, whereas epigenetic changes, such as DNA methylation, dynamically control gene expression in response to external stimuli. These processes shape behavior and cognitive resilience by influencing neural identity, synaptic efficiency, and adaptation. This review also examines how DNA damage and repair mechanisms affect the integrity of neurons, which are essential for memory and learning. It also emphasizes how genetic predispositions and environmental factors interact to determine a person&amp;amp;rsquo;s susceptibility to neurodegenerative disorders, such as Parkinson&amp;amp;rsquo;s and Alzheimer&amp;amp;rsquo;s diseases. Developments in gene-editing technologies, such as CRISPR, and non-viral delivery techniques provide encouraging treatment avenues for neurodegenerative disorders. This review highlights the fundamental role of DNA in coordinating the intricate interactions between molecular and environmental factors that underlie brain function and diseases.</description>
	<pubDate>2025-08-01</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 37: The Role of DNA in Neural Development and Cognitive Function</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/3/37">doi: 10.3390/dna5030037</a></p>
	<p>Authors:
		Tharsius Raja William Raja
		Janakiraman Pillai Udaiyappan
		Michael Pillay
		</p>
	<p>DNA connects the domains of genetic regulation and environmental interactions and plays a crucial role in neural development and cognitive function. The complex roles of genetic and epigenetic processes in brain development, synaptic plasticity, and higher-order cognitive abilities were reviewed in this study. Neural progenitors are formed and differentiated according to genetic instructions, whereas epigenetic changes, such as DNA methylation, dynamically control gene expression in response to external stimuli. These processes shape behavior and cognitive resilience by influencing neural identity, synaptic efficiency, and adaptation. This review also examines how DNA damage and repair mechanisms affect the integrity of neurons, which are essential for memory and learning. It also emphasizes how genetic predispositions and environmental factors interact to determine a person&amp;amp;rsquo;s susceptibility to neurodegenerative disorders, such as Parkinson&amp;amp;rsquo;s and Alzheimer&amp;amp;rsquo;s diseases. Developments in gene-editing technologies, such as CRISPR, and non-viral delivery techniques provide encouraging treatment avenues for neurodegenerative disorders. This review highlights the fundamental role of DNA in coordinating the intricate interactions between molecular and environmental factors that underlie brain function and diseases.</p>
	]]></content:encoded>

	<dc:title>The Role of DNA in Neural Development and Cognitive Function</dc:title>
			<dc:creator>Tharsius Raja William Raja</dc:creator>
			<dc:creator>Janakiraman Pillai Udaiyappan</dc:creator>
			<dc:creator>Michael Pillay</dc:creator>
		<dc:identifier>doi: 10.3390/dna5030037</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-08-01</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-08-01</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>3</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>37</prism:startingPage>
		<prism:doi>10.3390/dna5030037</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/3/37</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/3/36">

	<title>DNA, Vol. 5, Pages 36: DNA Triplex-Formation by a Covalent Conjugate of the Anticancer Drug Temozolomide</title>
	<link>https://www.mdpi.com/2673-8856/5/3/36</link>
	<description>Background/Objectives: Temozolomide is an important drug used for the treatment of glioblastoma multiforme. Covalent conjugation of temozolomide to triplex-forming oligonucleotides could facilitate better sequence discrimination when targeted to DNA to lessen off-target effects and potentially reduce side-effects associated with conventional chemotherapy. The base sensitivity of temozolomide precludes use of basic deprotection conditions that typify the solid-supported synthesis of oligonucleotides. Methods: A novel di-iso-propylsilylene-linked solid support was developed and used in solid-supported synthesis of oligonucleotide conjugates. Results: Conditions were established whereby fully deprotected, solid-supported oligonucleotides could be prepared for derivatisation. Cleavage of the di-iso-propylsilylene linker was possible using mild, acidic conditions. Conclusions: The di-iso-propylsilylene-linked solid support was developed and shown to be compatible with base-sensitive oligonucleotide conjugate formation. The DNA triplex formation exhibited by a temozolomide oligonucleotide conjugate was equal in stability to the unconjugated control, opening new possibilities for sequence selective delivery of temozolomide to targeted DNA.</description>
	<pubDate>2025-07-22</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 36: DNA Triplex-Formation by a Covalent Conjugate of the Anticancer Drug Temozolomide</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/3/36">doi: 10.3390/dna5030036</a></p>
	<p>Authors:
		Andrew J. Walsh
		William Fraser
		</p>
	<p>Background/Objectives: Temozolomide is an important drug used for the treatment of glioblastoma multiforme. Covalent conjugation of temozolomide to triplex-forming oligonucleotides could facilitate better sequence discrimination when targeted to DNA to lessen off-target effects and potentially reduce side-effects associated with conventional chemotherapy. The base sensitivity of temozolomide precludes use of basic deprotection conditions that typify the solid-supported synthesis of oligonucleotides. Methods: A novel di-iso-propylsilylene-linked solid support was developed and used in solid-supported synthesis of oligonucleotide conjugates. Results: Conditions were established whereby fully deprotected, solid-supported oligonucleotides could be prepared for derivatisation. Cleavage of the di-iso-propylsilylene linker was possible using mild, acidic conditions. Conclusions: The di-iso-propylsilylene-linked solid support was developed and shown to be compatible with base-sensitive oligonucleotide conjugate formation. The DNA triplex formation exhibited by a temozolomide oligonucleotide conjugate was equal in stability to the unconjugated control, opening new possibilities for sequence selective delivery of temozolomide to targeted DNA.</p>
	]]></content:encoded>

	<dc:title>DNA Triplex-Formation by a Covalent Conjugate of the Anticancer Drug Temozolomide</dc:title>
			<dc:creator>Andrew J. Walsh</dc:creator>
			<dc:creator>William Fraser</dc:creator>
		<dc:identifier>doi: 10.3390/dna5030036</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-07-22</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-07-22</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>3</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>36</prism:startingPage>
		<prism:doi>10.3390/dna5030036</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/3/36</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/3/35">

	<title>DNA, Vol. 5, Pages 35: Mutational Profiling of Medullary Thyroid Carcinoma via a Large-Scale Genomic Repository</title>
	<link>https://www.mdpi.com/2673-8856/5/3/35</link>
	<description>Background: Medullary thyroid cancer (MTC), a neuroendocrine tumor originating from thyroid parafollicular C-cells, presents therapeutic challenges, particularly in advanced stages. While RET proto-oncogene mutations are known drivers, a comprehensive understanding of the broader somatic mutation landscape is needed to identify novel therapeutic targets and improve prognostication. This study leveraged the extensive AACR Project GENIE dataset to characterize MTC genomics. Methods: A retrospective analysis of MTC samples from GENIE examined recurrent somatic mutations, demographic/survival correlations, and copy number variations using targeted sequencing data (significance: p &amp;amp;lt; 0.05). Results: Among 341 samples, RET mutations predominated (75.7%, mostly M918T), followed by HRAS (10.0%) and KRAS (5.6%), with mutual exclusivity between RET and RAS alterations. Recurrent mutations included KMT2D (5.3%), CDH11 (5.3%), ATM (5.0%), and TP53 (4.1%). NOTCH1 mutations were enriched in metastatic cases (p = 0.023). Preliminary associations included sex-linked mutations (BRAF/BRCA1/KIT in females, p = 0.028), and survival (ATM associated with longer survival, p = 0.016; BARD1/BLM/UBR5/MYH11 with shorter survival, p &amp;amp;lt; 0.05), though limited subgroup sizes warrant caution. Conclusions: This large-scale genomic analysis confirms the centrality of RET and RAS pathway alterations in MTC and their mutual exclusivity. The association of NOTCH1 mutations with metastasis suggests a potential role in disease progression. While findings regarding demographic and survival correlations are preliminary, they generate hypotheses for future validation. This study enhances the genomic foundation for understanding MTC and underscores the need for integrated clinico-genomic datasets to refine therapeutic approaches.</description>
	<pubDate>2025-07-17</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 35: Mutational Profiling of Medullary Thyroid Carcinoma via a Large-Scale Genomic Repository</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/3/35">doi: 10.3390/dna5030035</a></p>
	<p>Authors:
		Beau Hsia
		Elijah Torbenson
		Nigel Lang
		Peter T. Silberstein
		</p>
	<p>Background: Medullary thyroid cancer (MTC), a neuroendocrine tumor originating from thyroid parafollicular C-cells, presents therapeutic challenges, particularly in advanced stages. While RET proto-oncogene mutations are known drivers, a comprehensive understanding of the broader somatic mutation landscape is needed to identify novel therapeutic targets and improve prognostication. This study leveraged the extensive AACR Project GENIE dataset to characterize MTC genomics. Methods: A retrospective analysis of MTC samples from GENIE examined recurrent somatic mutations, demographic/survival correlations, and copy number variations using targeted sequencing data (significance: p &amp;amp;lt; 0.05). Results: Among 341 samples, RET mutations predominated (75.7%, mostly M918T), followed by HRAS (10.0%) and KRAS (5.6%), with mutual exclusivity between RET and RAS alterations. Recurrent mutations included KMT2D (5.3%), CDH11 (5.3%), ATM (5.0%), and TP53 (4.1%). NOTCH1 mutations were enriched in metastatic cases (p = 0.023). Preliminary associations included sex-linked mutations (BRAF/BRCA1/KIT in females, p = 0.028), and survival (ATM associated with longer survival, p = 0.016; BARD1/BLM/UBR5/MYH11 with shorter survival, p &amp;amp;lt; 0.05), though limited subgroup sizes warrant caution. Conclusions: This large-scale genomic analysis confirms the centrality of RET and RAS pathway alterations in MTC and their mutual exclusivity. The association of NOTCH1 mutations with metastasis suggests a potential role in disease progression. While findings regarding demographic and survival correlations are preliminary, they generate hypotheses for future validation. This study enhances the genomic foundation for understanding MTC and underscores the need for integrated clinico-genomic datasets to refine therapeutic approaches.</p>
	]]></content:encoded>

	<dc:title>Mutational Profiling of Medullary Thyroid Carcinoma via a Large-Scale Genomic Repository</dc:title>
			<dc:creator>Beau Hsia</dc:creator>
			<dc:creator>Elijah Torbenson</dc:creator>
			<dc:creator>Nigel Lang</dc:creator>
			<dc:creator>Peter T. Silberstein</dc:creator>
		<dc:identifier>doi: 10.3390/dna5030035</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-07-17</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-07-17</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>3</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>35</prism:startingPage>
		<prism:doi>10.3390/dna5030035</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/3/35</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/3/34">

	<title>DNA, Vol. 5, Pages 34: Yeast Surface Display of Protein Addresses Confers Robust Storage and Access of DNA-Based Data</title>
	<link>https://www.mdpi.com/2673-8856/5/3/34</link>
	<description>Background/Objectives: The potential of DNA as an information-dense storage medium has inspired a broad spectrum of creative systems. In particular, hybrid biomolecular systems that integrate new materials and chemistries with DNA could drive novel functions. In this work, we explore the potential for proteins to serve as molecular file addresses. We stored DNA-encoded data in yeast and leveraged yeast surface display to readily produce the protein addresses and make them easy to access on the cell surface. Methods: We generated yeast populations that each displayed a distinct protein on their cell surfaces. These proteins included binding partners for cognate antibodies as well as chromatin-associated proteins that bind post-translationally modified histone peptides. For each specific yeast population, we transformed a library of hundreds of DNA sequences collectively encoding a specific image file. Results: We first demonstrated that the yeast retained file-encoded DNA through multiple cell divisions without a noticeable skew in their distribution or a loss in file integrity. Second, we showed that the physical act of sorting yeast displaying a specific file address was able to recover the desired data without a loss in file fidelity. Finally, we showed that analog addresses can be achieved by using addresses that have overlapping binding specificities for target peptides. Conclusions: These results motivate further exploration into the advantages proteins may confer in molecular information storage.</description>
	<pubDate>2025-07-09</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 34: Yeast Surface Display of Protein Addresses Confers Robust Storage and Access of DNA-Based Data</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/3/34">doi: 10.3390/dna5030034</a></p>
	<p>Authors:
		Magdelene N. Lee
		Gunavaran Brihadiswaran
		Balaji M. Rao
		James M. Tuck
		Albert J. Keung
		</p>
	<p>Background/Objectives: The potential of DNA as an information-dense storage medium has inspired a broad spectrum of creative systems. In particular, hybrid biomolecular systems that integrate new materials and chemistries with DNA could drive novel functions. In this work, we explore the potential for proteins to serve as molecular file addresses. We stored DNA-encoded data in yeast and leveraged yeast surface display to readily produce the protein addresses and make them easy to access on the cell surface. Methods: We generated yeast populations that each displayed a distinct protein on their cell surfaces. These proteins included binding partners for cognate antibodies as well as chromatin-associated proteins that bind post-translationally modified histone peptides. For each specific yeast population, we transformed a library of hundreds of DNA sequences collectively encoding a specific image file. Results: We first demonstrated that the yeast retained file-encoded DNA through multiple cell divisions without a noticeable skew in their distribution or a loss in file integrity. Second, we showed that the physical act of sorting yeast displaying a specific file address was able to recover the desired data without a loss in file fidelity. Finally, we showed that analog addresses can be achieved by using addresses that have overlapping binding specificities for target peptides. Conclusions: These results motivate further exploration into the advantages proteins may confer in molecular information storage.</p>
	]]></content:encoded>

	<dc:title>Yeast Surface Display of Protein Addresses Confers Robust Storage and Access of DNA-Based Data</dc:title>
			<dc:creator>Magdelene N. Lee</dc:creator>
			<dc:creator>Gunavaran Brihadiswaran</dc:creator>
			<dc:creator>Balaji M. Rao</dc:creator>
			<dc:creator>James M. Tuck</dc:creator>
			<dc:creator>Albert J. Keung</dc:creator>
		<dc:identifier>doi: 10.3390/dna5030034</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-07-09</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-07-09</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>3</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>34</prism:startingPage>
		<prism:doi>10.3390/dna5030034</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/3/34</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/3/33">

	<title>DNA, Vol. 5, Pages 33: Challenges in the Identification of Environmental Bacterial Isolates from a Pharmaceutical Industry Facility by 16S rRNA Gene Sequences</title>
	<link>https://www.mdpi.com/2673-8856/5/3/33</link>
	<description>Microbial contamination is a critical challenge for the pharmaceutical industry, especially in thermosensitive sterile products, and can compromise their quality and safety. The accurate identification of microorganisms is essential to trace sources of contamination and adopt corrective measures. Although MALDI-TOF MS technology has revolutionized this process, its database limitations necessitate the use of complementary methods, such as sequencing 16S rRNA genes, housekeeping genes, and, in some cases, the entire genome. Advances in sequencing have expanded genomic taxonomy, increasing the accuracy of bacterial identification. The integration of these approaches significantly improves the reliability of identification, overcoming the limitations of isolated methods.</description>
	<pubDate>2025-07-07</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 33: Challenges in the Identification of Environmental Bacterial Isolates from a Pharmaceutical Industry Facility by 16S rRNA Gene Sequences</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/3/33">doi: 10.3390/dna5030033</a></p>
	<p>Authors:
		Juliana Nunes Ramos
		Luciana Veloso da Costa
		Verônica Viana Vieira
		Marcelo Luiz Lima Brandão
		</p>
	<p>Microbial contamination is a critical challenge for the pharmaceutical industry, especially in thermosensitive sterile products, and can compromise their quality and safety. The accurate identification of microorganisms is essential to trace sources of contamination and adopt corrective measures. Although MALDI-TOF MS technology has revolutionized this process, its database limitations necessitate the use of complementary methods, such as sequencing 16S rRNA genes, housekeeping genes, and, in some cases, the entire genome. Advances in sequencing have expanded genomic taxonomy, increasing the accuracy of bacterial identification. The integration of these approaches significantly improves the reliability of identification, overcoming the limitations of isolated methods.</p>
	]]></content:encoded>

	<dc:title>Challenges in the Identification of Environmental Bacterial Isolates from a Pharmaceutical Industry Facility by 16S rRNA Gene Sequences</dc:title>
			<dc:creator>Juliana Nunes Ramos</dc:creator>
			<dc:creator>Luciana Veloso da Costa</dc:creator>
			<dc:creator>Verônica Viana Vieira</dc:creator>
			<dc:creator>Marcelo Luiz Lima Brandão</dc:creator>
		<dc:identifier>doi: 10.3390/dna5030033</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-07-07</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-07-07</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>3</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>33</prism:startingPage>
		<prism:doi>10.3390/dna5030033</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/3/33</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/3/32">

	<title>DNA, Vol. 5, Pages 32: Hypodiploidy: A Poor Prognostic Cytogenetic Marker in B-CLL</title>
	<link>https://www.mdpi.com/2673-8856/5/3/32</link>
	<description>In B-cell chronic lymphocytic leukemia (B-CLL), hypodiploidy is a rare but aggressive subtype of the disease with a very bad prognosis. Hypodiploidy, in contrast to normal B-CLL chromosomal aberrations, is marked by widespread genomic instability, which promotes treatment resistance and quick illness development. Its persistence after treatment implies that chromosomal loss gives cancerous clones a selection edge, which is made worse by telomere malfunction and epigenetic changes. Since thorough genetic profiling has a major impact on patient outcomes, advanced diagnostic methods are crucial for early detection. Treatment approaches must advance beyond accepted practices because of its resistance to traditional medicines. Hematopoietic stem cell transplantation (HSCT) and chimeric antigen receptor (CAR) T-cell therapy are two potential new therapeutic modalities. Relapse and treatment-related morbidity continue to be limiting concerns, despite the noteworthy improvements in outcomes in high-risk CLL patients receiving HSCT. Although more research is required, CAR T-cell treatment is effective in treating recurrent B-ALL and may also be used to treat B-CLL with hypodiploidy. Novel approaches are essential for enhancing patient outcomes and redefining therapeutic success when hypodiploidy challenges established treatment paradigms. Hypodiploidy is an uncommon yet aggressive form of B-CLL that has a very bad prognosis. Hypodiploidy represents significant chromosomal loss and structural imbalance, which contributes to a disordered genomic environment, in contrast to more prevalent cytogenetic changes. This instability promotes resistance to certain new drugs as well as chemoimmunotherapy and speeds up clonal evolution. Its persistence after treatment implies that hypodiploid clones have benefits in survival, which are probably strengthened by chromosomal segregation issues and damaged DNA repair pathways. Malignant progression and treatment failure are further exacerbated by telomere erosion and epigenetic dysregulation. The need for more sensitive molecular diagnostics is highlighted by the fact that standard karyotyping frequently overlooks hypodiploid clones, particularly those concealed by endoreduplication, despite the fact that these complications make early and correct diagnosis crucial. Hypodiploidy requires a move toward individualized treatment because of their link to high-risk genetic traits and resistance to conventional regimens. Although treatments like hematopoietic stem cell transplantation and CAR T-cells show promise, long-term management is still elusive. To improve long-term results and avoid early relapse, addressing this cytogenetic population necessitates combining high-resolution genomic technologies with changing therapy approaches.</description>
	<pubDate>2025-07-01</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 32: Hypodiploidy: A Poor Prognostic Cytogenetic Marker in B-CLL</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/3/32">doi: 10.3390/dna5030032</a></p>
	<p>Authors:
		Andrew Ruggero
		Carlos A. Tirado
		</p>
	<p>In B-cell chronic lymphocytic leukemia (B-CLL), hypodiploidy is a rare but aggressive subtype of the disease with a very bad prognosis. Hypodiploidy, in contrast to normal B-CLL chromosomal aberrations, is marked by widespread genomic instability, which promotes treatment resistance and quick illness development. Its persistence after treatment implies that chromosomal loss gives cancerous clones a selection edge, which is made worse by telomere malfunction and epigenetic changes. Since thorough genetic profiling has a major impact on patient outcomes, advanced diagnostic methods are crucial for early detection. Treatment approaches must advance beyond accepted practices because of its resistance to traditional medicines. Hematopoietic stem cell transplantation (HSCT) and chimeric antigen receptor (CAR) T-cell therapy are two potential new therapeutic modalities. Relapse and treatment-related morbidity continue to be limiting concerns, despite the noteworthy improvements in outcomes in high-risk CLL patients receiving HSCT. Although more research is required, CAR T-cell treatment is effective in treating recurrent B-ALL and may also be used to treat B-CLL with hypodiploidy. Novel approaches are essential for enhancing patient outcomes and redefining therapeutic success when hypodiploidy challenges established treatment paradigms. Hypodiploidy is an uncommon yet aggressive form of B-CLL that has a very bad prognosis. Hypodiploidy represents significant chromosomal loss and structural imbalance, which contributes to a disordered genomic environment, in contrast to more prevalent cytogenetic changes. This instability promotes resistance to certain new drugs as well as chemoimmunotherapy and speeds up clonal evolution. Its persistence after treatment implies that hypodiploid clones have benefits in survival, which are probably strengthened by chromosomal segregation issues and damaged DNA repair pathways. Malignant progression and treatment failure are further exacerbated by telomere erosion and epigenetic dysregulation. The need for more sensitive molecular diagnostics is highlighted by the fact that standard karyotyping frequently overlooks hypodiploid clones, particularly those concealed by endoreduplication, despite the fact that these complications make early and correct diagnosis crucial. Hypodiploidy requires a move toward individualized treatment because of their link to high-risk genetic traits and resistance to conventional regimens. Although treatments like hematopoietic stem cell transplantation and CAR T-cells show promise, long-term management is still elusive. To improve long-term results and avoid early relapse, addressing this cytogenetic population necessitates combining high-resolution genomic technologies with changing therapy approaches.</p>
	]]></content:encoded>

	<dc:title>Hypodiploidy: A Poor Prognostic Cytogenetic Marker in B-CLL</dc:title>
			<dc:creator>Andrew Ruggero</dc:creator>
			<dc:creator>Carlos A. Tirado</dc:creator>
		<dc:identifier>doi: 10.3390/dna5030032</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-07-01</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-07-01</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>3</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>32</prism:startingPage>
		<prism:doi>10.3390/dna5030032</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/3/32</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/2/31">

	<title>DNA, Vol. 5, Pages 31: A Multi-Well Method for the CD138 and AML/MDS FISH Testing of Multiple Biomarkers on a Single Slide in Multiple Myeloma and AML/MDS Patients</title>
	<link>https://www.mdpi.com/2673-8856/5/2/31</link>
	<description>Background/Objectives: Genetic abnormalities play a pivotal role in patient risk stratification, therapeutic decision-making, and elucidating the disease pathogenesis in hematological malignancies. In multiple myeloma (MM) and acute myeloid leukemia (AML)/myelodysplastic syndrome (MDS), numerous recurring genetic aberrations are well documented. Fluorescence in situ hybridization (FISH) is a cornerstone of clinical diagnostics for detecting these abnormalities. Conventionally, FISH assesses up to two biomarkers, with one or two circles per slide, but this approach faces challenges when cancer cell yields are limited, particularly in post-treatment follow-up specimens. Methods: To overcome this limitation, we developed a multi-well method, enabling the simultaneous testing of multiple biomarkers on a single microscopic slide. This study included 53 MM and 129 AML/MDS cases. Results: With a cohort of 182 patients, 1016 FISH assays performed on multi-well slides accurately detected diagnostic genetic aberrations previously identified by karyotyping and/or FISH, achieving a sensitivity and specificity of 100%. The use of multi-well slides achieved up to a 2.5-fold increase in the number of wells per slide while achieving more than a 3-fold reduction in the reagent volume compared to traditional methods. This advancement leverages distinct FISH signal patterns to strategically combine biomarkers within multiple wells, suitable for specimens from diagnosis, follow-ups, and relapses, regardless of the cancer cell quantity. Conclusions: The multi-well approach enhances the accessibility to comprehensive biomarker analysis, reducing both the processing time and costs. Beyond MM and AML/MDS, this technique holds promise for use with other hematological malignancies with limited sample volumes, offering an efficient, cost-effective solution for precision diagnostics.</description>
	<pubDate>2025-06-11</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 31: A Multi-Well Method for the CD138 and AML/MDS FISH Testing of Multiple Biomarkers on a Single Slide in Multiple Myeloma and AML/MDS Patients</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/2/31">doi: 10.3390/dna5020031</a></p>
	<p>Authors:
		Frank Tambini
		Melanie Klausner
		Victoria Stinnett
		Jen Ghabrial
		Azin Nozari
		William Middlezong
		Brian Phan
		Micheal Phan
		Laura Morsberger
		Patty Long
		Ying S. Zou
		</p>
	<p>Background/Objectives: Genetic abnormalities play a pivotal role in patient risk stratification, therapeutic decision-making, and elucidating the disease pathogenesis in hematological malignancies. In multiple myeloma (MM) and acute myeloid leukemia (AML)/myelodysplastic syndrome (MDS), numerous recurring genetic aberrations are well documented. Fluorescence in situ hybridization (FISH) is a cornerstone of clinical diagnostics for detecting these abnormalities. Conventionally, FISH assesses up to two biomarkers, with one or two circles per slide, but this approach faces challenges when cancer cell yields are limited, particularly in post-treatment follow-up specimens. Methods: To overcome this limitation, we developed a multi-well method, enabling the simultaneous testing of multiple biomarkers on a single microscopic slide. This study included 53 MM and 129 AML/MDS cases. Results: With a cohort of 182 patients, 1016 FISH assays performed on multi-well slides accurately detected diagnostic genetic aberrations previously identified by karyotyping and/or FISH, achieving a sensitivity and specificity of 100%. The use of multi-well slides achieved up to a 2.5-fold increase in the number of wells per slide while achieving more than a 3-fold reduction in the reagent volume compared to traditional methods. This advancement leverages distinct FISH signal patterns to strategically combine biomarkers within multiple wells, suitable for specimens from diagnosis, follow-ups, and relapses, regardless of the cancer cell quantity. Conclusions: The multi-well approach enhances the accessibility to comprehensive biomarker analysis, reducing both the processing time and costs. Beyond MM and AML/MDS, this technique holds promise for use with other hematological malignancies with limited sample volumes, offering an efficient, cost-effective solution for precision diagnostics.</p>
	]]></content:encoded>

	<dc:title>A Multi-Well Method for the CD138 and AML/MDS FISH Testing of Multiple Biomarkers on a Single Slide in Multiple Myeloma and AML/MDS Patients</dc:title>
			<dc:creator>Frank Tambini</dc:creator>
			<dc:creator>Melanie Klausner</dc:creator>
			<dc:creator>Victoria Stinnett</dc:creator>
			<dc:creator>Jen Ghabrial</dc:creator>
			<dc:creator>Azin Nozari</dc:creator>
			<dc:creator>William Middlezong</dc:creator>
			<dc:creator>Brian Phan</dc:creator>
			<dc:creator>Micheal Phan</dc:creator>
			<dc:creator>Laura Morsberger</dc:creator>
			<dc:creator>Patty Long</dc:creator>
			<dc:creator>Ying S. Zou</dc:creator>
		<dc:identifier>doi: 10.3390/dna5020031</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-06-11</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-06-11</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>2</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>31</prism:startingPage>
		<prism:doi>10.3390/dna5020031</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/2/31</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/2/30">

	<title>DNA, Vol. 5, Pages 30: Of Short Interspersed Nuclear Elements, Long Interspersed Nuclear Elements and Leeches: Identification and Molecular Characterization of Transposable Elements in Leech Genomes</title>
	<link>https://www.mdpi.com/2673-8856/5/2/30</link>
	<description>Backround/Objectives: Mobile genetic elements (MGEs), in general, and transposable elements (TEs), in particular, constitute a major part of almost every eukaryotic genome, and several types of such elements have been classified based on size, genetic structure and transposition intermediate. Methods: The fast-growing availability of whole genome sequences of species across the living world provides almost unlimited possibilities for in-depth molecular analyses of all kinds, including the search for TEs. The aim of the present study was to perform the first molecular description and characterization of selected MGEs in leeches, namely, short interspersed nuclear element (SINE), long interspersed nuclear element (LINE) and long terminal repeat (LTR) retrotransposons. Results: Several representatives of all three groups of TEs could be identified, and some of the newly described elements display unique structural features compared to the archetype elements of the respective groups. Conclusions: Non-model organisms like leeches are an excellent source for new information on long-term studied objects like TEs and may provide new insights into the diversity and the putative biological impact of these MGEs.</description>
	<pubDate>2025-06-10</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 30: Of Short Interspersed Nuclear Elements, Long Interspersed Nuclear Elements and Leeches: Identification and Molecular Characterization of Transposable Elements in Leech Genomes</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/2/30">doi: 10.3390/dna5020030</a></p>
	<p>Authors:
		Christian Müller
		</p>
	<p>Backround/Objectives: Mobile genetic elements (MGEs), in general, and transposable elements (TEs), in particular, constitute a major part of almost every eukaryotic genome, and several types of such elements have been classified based on size, genetic structure and transposition intermediate. Methods: The fast-growing availability of whole genome sequences of species across the living world provides almost unlimited possibilities for in-depth molecular analyses of all kinds, including the search for TEs. The aim of the present study was to perform the first molecular description and characterization of selected MGEs in leeches, namely, short interspersed nuclear element (SINE), long interspersed nuclear element (LINE) and long terminal repeat (LTR) retrotransposons. Results: Several representatives of all three groups of TEs could be identified, and some of the newly described elements display unique structural features compared to the archetype elements of the respective groups. Conclusions: Non-model organisms like leeches are an excellent source for new information on long-term studied objects like TEs and may provide new insights into the diversity and the putative biological impact of these MGEs.</p>
	]]></content:encoded>

	<dc:title>Of Short Interspersed Nuclear Elements, Long Interspersed Nuclear Elements and Leeches: Identification and Molecular Characterization of Transposable Elements in Leech Genomes</dc:title>
			<dc:creator>Christian Müller</dc:creator>
		<dc:identifier>doi: 10.3390/dna5020030</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-06-10</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-06-10</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>2</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>30</prism:startingPage>
		<prism:doi>10.3390/dna5020030</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/2/30</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/2/29">

	<title>DNA, Vol. 5, Pages 29: Long-Term DNA Storage of Challenging Forensic Casework Samples at Room Temperature</title>
	<link>https://www.mdpi.com/2673-8856/5/2/29</link>
	<description>Background: The success of forensic genetics has led to considerable numbers of DNA samples that must be stored. For example, the genetic casework unit of the forensic institute of the French gendarmerie analyzes more than 70,000 casework samples per year mainly from swabs that are fully consumed during DNA extraction. The only way to process further analyses is to preserve DNA. Currently, the most common technique used for the long-term preservation of DNA is to freeze the extracted DNA at &amp;amp;minus;20 &amp;amp;deg;C or &amp;amp;minus;80 &amp;amp;deg;C. However, this preservation method involves significant constraints (large equipment), risks (equipment failure), and is not ecologically sustainable due to its high energy consumption. Many solutions for DNA preservation at room temperature exist based either on fibrous supports or on anhydrobiosis. However, few studies have examined the efficiency of these systems in preserving very-low DNA amounts, such as those in forensic samples (&amp;amp;le;1 ng), while ensuring full recovery and the ability to retest the samples many years later. Methods: We choose to evaluate the ability of the anhydrobiosis technology from GenTegra&amp;amp;reg; LLC to preserve DNA extracts from one month to one accelerated year from different DNA quantities (from 1 ng to 0.2 ng) and sources (NIST, mocked samples, and true casework mixtures). We studied the quantity, integrity of DNA, and also the quality of the STR genetic profiles obtained. Results and Conclusions: Our results prove the high potential of this technology to preserve and to allow an effective recovery of the DNA extracts for forensic purposes.</description>
	<pubDate>2025-06-09</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 29: Long-Term DNA Storage of Challenging Forensic Casework Samples at Room Temperature</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/2/29">doi: 10.3390/dna5020029</a></p>
	<p>Authors:
		Chloé Scherer
		Jean-Marc Josse
		Naura Ikadoumène
		Joséphine Gibert
		Sylvain Hubac
		Francis Hermitte
		</p>
	<p>Background: The success of forensic genetics has led to considerable numbers of DNA samples that must be stored. For example, the genetic casework unit of the forensic institute of the French gendarmerie analyzes more than 70,000 casework samples per year mainly from swabs that are fully consumed during DNA extraction. The only way to process further analyses is to preserve DNA. Currently, the most common technique used for the long-term preservation of DNA is to freeze the extracted DNA at &amp;amp;minus;20 &amp;amp;deg;C or &amp;amp;minus;80 &amp;amp;deg;C. However, this preservation method involves significant constraints (large equipment), risks (equipment failure), and is not ecologically sustainable due to its high energy consumption. Many solutions for DNA preservation at room temperature exist based either on fibrous supports or on anhydrobiosis. However, few studies have examined the efficiency of these systems in preserving very-low DNA amounts, such as those in forensic samples (&amp;amp;le;1 ng), while ensuring full recovery and the ability to retest the samples many years later. Methods: We choose to evaluate the ability of the anhydrobiosis technology from GenTegra&amp;amp;reg; LLC to preserve DNA extracts from one month to one accelerated year from different DNA quantities (from 1 ng to 0.2 ng) and sources (NIST, mocked samples, and true casework mixtures). We studied the quantity, integrity of DNA, and also the quality of the STR genetic profiles obtained. Results and Conclusions: Our results prove the high potential of this technology to preserve and to allow an effective recovery of the DNA extracts for forensic purposes.</p>
	]]></content:encoded>

	<dc:title>Long-Term DNA Storage of Challenging Forensic Casework Samples at Room Temperature</dc:title>
			<dc:creator>Chloé Scherer</dc:creator>
			<dc:creator>Jean-Marc Josse</dc:creator>
			<dc:creator>Naura Ikadoumène</dc:creator>
			<dc:creator>Joséphine Gibert</dc:creator>
			<dc:creator>Sylvain Hubac</dc:creator>
			<dc:creator>Francis Hermitte</dc:creator>
		<dc:identifier>doi: 10.3390/dna5020029</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-06-09</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-06-09</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>2</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>29</prism:startingPage>
		<prism:doi>10.3390/dna5020029</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/2/29</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/2/28">

	<title>DNA, Vol. 5, Pages 28: A Cost-Effective Saliva-Based Human Epigenetic Clock Using 10 CpG Sites Identified with the Illumina EPIC 850k Array</title>
	<link>https://www.mdpi.com/2673-8856/5/2/28</link>
	<description>Background/Objectives: DNA methylation profiles have emerged as robust biomarkers of ageing, leading to the development of &amp;amp;ldquo;epigenetic clocks&amp;amp;rdquo; that estimate biological age. Most established clocks (e.g., Horvath&amp;amp;rsquo;s 353-CpG pan-tissue clock and Hannum&amp;amp;rsquo;s 71-CpG blood clock) require dozens to hundreds of CpG sites. This study presents a novel saliva-specific epigenetic clock built on 10 sites identified from Illumina MethylationEPIC (850 k) array data. Methods: Saliva DNA methylation was analysed from 3408 individuals (age range 15&amp;amp;ndash;89 years, 68% male, 32% female, no diagnosed disease) from the Muhdo Health Ltd. dataset (2022&amp;amp;ndash;2024), and 10 CpG sites were selected where methylation levels showed the strongest positive correlations with chronological age (Pearson r = 0.48&amp;amp;ndash;0.66, p &amp;amp;lt; 1 &amp;amp;times; 10&amp;amp;minus;20). These CpGs map to genes involved in developmental and metabolic pathways (including ELOVL2, CHGA, OTUD7A, PRLHR, ZYG11A, and GPR158). A linear combination of the 10 methylation sites was used to calculate a &amp;amp;ldquo;DNA methylation age&amp;amp;rdquo;. Results: The 10-CpG clock&amp;amp;rsquo;s predictions were highly correlated with chronological age (r = 0.80, R2 = 0.64), with a mean absolute error of ~5.5 years. Its performance, while slightly less precise than Horvath&amp;amp;rsquo;s or Hannum&amp;amp;rsquo;s multi-CpG clocks, is notable given the minimal marker set. It was observed that all 10 clock CpGs undergo age-related hypermethylation. The biological significance of these loci is discussed, along with the potential health and forensic applications of a saliva-based epigenetic age predictor. Conclusions: This study demonstrates that a saliva-specific epigenetic clock using only 10 CpG sites can capture a substantial portion of age-related DNA methylation changes, providing a cost-effective tool for age estimation.</description>
	<pubDate>2025-06-04</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 28: A Cost-Effective Saliva-Based Human Epigenetic Clock Using 10 CpG Sites Identified with the Illumina EPIC 850k Array</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/2/28">doi: 10.3390/dna5020028</a></p>
	<p>Authors:
		Christopher Collins
		James Brown
		Henry C. Chung
		</p>
	<p>Background/Objectives: DNA methylation profiles have emerged as robust biomarkers of ageing, leading to the development of &amp;amp;ldquo;epigenetic clocks&amp;amp;rdquo; that estimate biological age. Most established clocks (e.g., Horvath&amp;amp;rsquo;s 353-CpG pan-tissue clock and Hannum&amp;amp;rsquo;s 71-CpG blood clock) require dozens to hundreds of CpG sites. This study presents a novel saliva-specific epigenetic clock built on 10 sites identified from Illumina MethylationEPIC (850 k) array data. Methods: Saliva DNA methylation was analysed from 3408 individuals (age range 15&amp;amp;ndash;89 years, 68% male, 32% female, no diagnosed disease) from the Muhdo Health Ltd. dataset (2022&amp;amp;ndash;2024), and 10 CpG sites were selected where methylation levels showed the strongest positive correlations with chronological age (Pearson r = 0.48&amp;amp;ndash;0.66, p &amp;amp;lt; 1 &amp;amp;times; 10&amp;amp;minus;20). These CpGs map to genes involved in developmental and metabolic pathways (including ELOVL2, CHGA, OTUD7A, PRLHR, ZYG11A, and GPR158). A linear combination of the 10 methylation sites was used to calculate a &amp;amp;ldquo;DNA methylation age&amp;amp;rdquo;. Results: The 10-CpG clock&amp;amp;rsquo;s predictions were highly correlated with chronological age (r = 0.80, R2 = 0.64), with a mean absolute error of ~5.5 years. Its performance, while slightly less precise than Horvath&amp;amp;rsquo;s or Hannum&amp;amp;rsquo;s multi-CpG clocks, is notable given the minimal marker set. It was observed that all 10 clock CpGs undergo age-related hypermethylation. The biological significance of these loci is discussed, along with the potential health and forensic applications of a saliva-based epigenetic age predictor. Conclusions: This study demonstrates that a saliva-specific epigenetic clock using only 10 CpG sites can capture a substantial portion of age-related DNA methylation changes, providing a cost-effective tool for age estimation.</p>
	]]></content:encoded>

	<dc:title>A Cost-Effective Saliva-Based Human Epigenetic Clock Using 10 CpG Sites Identified with the Illumina EPIC 850k Array</dc:title>
			<dc:creator>Christopher Collins</dc:creator>
			<dc:creator>James Brown</dc:creator>
			<dc:creator>Henry C. Chung</dc:creator>
		<dc:identifier>doi: 10.3390/dna5020028</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-06-04</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-06-04</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>2</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>28</prism:startingPage>
		<prism:doi>10.3390/dna5020028</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/2/28</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/2/27">

	<title>DNA, Vol. 5, Pages 27: Captain Tardigrade and Its Shield to Protect DNA</title>
	<link>https://www.mdpi.com/2673-8856/5/2/27</link>
	<description>Tardigrades, also known as &amp;amp;ldquo;water bears&amp;amp;rdquo;, are microscopic invertebrates capable of surviving extreme conditions, including extreme temperatures, intense radiation, and the vacuum of space. Recent studies have unveiled a novel nucleosome-binding protein in the tardigrade Ramazzottius varieornatus, known as the damage suppressor protein (Dsup). This protein has proven essential for enabling tardigrades to thrive in the most challenging environmental conditions, highlighting its pivotal role in their remarkable survival capabilities. Dsup is a highly disordered protein with DNA-binding abilities that reduces DNA damage and enhances cell survival and viability caused by several stresses such as oxidative stress, UV exposure, and X-ray and ionizing radiation. In this review, we summarized articles describing the protective role of Dsup upon different stressors across diverse organisms, including bacteria, yeast, plants, and animals (cell lines and organisms). The multifaceted properties of Dsup open avenues for biotechnological applications, such as developing stress-resistant crops and innovative biomaterials for DNA manipulation. Furthermore, investigations into its potential in space exploration, particularly in protecting organisms from space radiation, underscore its relevance in extreme environments.</description>
	<pubDate>2025-06-03</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 27: Captain Tardigrade and Its Shield to Protect DNA</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/2/27">doi: 10.3390/dna5020027</a></p>
	<p>Authors:
		Silvia Cantara
		Tommaso Regoli
		Claudia Ricci
		</p>
	<p>Tardigrades, also known as &amp;amp;ldquo;water bears&amp;amp;rdquo;, are microscopic invertebrates capable of surviving extreme conditions, including extreme temperatures, intense radiation, and the vacuum of space. Recent studies have unveiled a novel nucleosome-binding protein in the tardigrade Ramazzottius varieornatus, known as the damage suppressor protein (Dsup). This protein has proven essential for enabling tardigrades to thrive in the most challenging environmental conditions, highlighting its pivotal role in their remarkable survival capabilities. Dsup is a highly disordered protein with DNA-binding abilities that reduces DNA damage and enhances cell survival and viability caused by several stresses such as oxidative stress, UV exposure, and X-ray and ionizing radiation. In this review, we summarized articles describing the protective role of Dsup upon different stressors across diverse organisms, including bacteria, yeast, plants, and animals (cell lines and organisms). The multifaceted properties of Dsup open avenues for biotechnological applications, such as developing stress-resistant crops and innovative biomaterials for DNA manipulation. Furthermore, investigations into its potential in space exploration, particularly in protecting organisms from space radiation, underscore its relevance in extreme environments.</p>
	]]></content:encoded>

	<dc:title>Captain Tardigrade and Its Shield to Protect DNA</dc:title>
			<dc:creator>Silvia Cantara</dc:creator>
			<dc:creator>Tommaso Regoli</dc:creator>
			<dc:creator>Claudia Ricci</dc:creator>
		<dc:identifier>doi: 10.3390/dna5020027</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-06-03</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-06-03</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>2</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>27</prism:startingPage>
		<prism:doi>10.3390/dna5020027</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/2/27</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/2/26">

	<title>DNA, Vol. 5, Pages 26: Comparing the Efficiency of Different Methods for Reliable Results in Ancient DNA NGS Workflow</title>
	<link>https://www.mdpi.com/2673-8856/5/2/26</link>
	<description>Background/Objectives: Ancient DNA (aDNA) research workflows heavily depend on efficient aDNA extraction and NGS library preparation. In this study, we compared some of the commonly used laboratory protocols and compared the source of the bone material for sufficient and reliable results. Methods: We executed a three-phase study. First, we analyzed about 2000 previously processed archaic bone samples and conducted a comparative analysis. The second phase involved a controlled experiment of five ancient individuals, with internal control, to further investigate the efficiency of some of the methods. In the third phase, we made a comparison between the efficiency of two enzymes used for library preparation. Results: Samples made from Pars petrosa resulted in the highest yield of endogenous DNA and longer fragment sizes compared to tooth or skeletal samples. DNA extraction made by MinElute columns preserved slightly longer fragments than the handmade silica suspension. NGS libraries indexed using AccuPrime Pfx produced slightly more consistent insert sizes compared to GoTaq G2. Samples prepared with GoTaq G2 contained slightly more unique molecules. The duplication rates showed no significant impact from enzyme choice. Conclusions: Pars petrosa remains the most reliable source of aDNA, with the extraction method using MinElute columns. While AccuPrime Pfx ensures precise NGS library preparation, a more economical choice of the GoTaq G2 enzyme is a viable alternative for degraded archaic samples.</description>
	<pubDate>2025-05-19</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 26: Comparing the Efficiency of Different Methods for Reliable Results in Ancient DNA NGS Workflow</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/2/26">doi: 10.3390/dna5020026</a></p>
	<p>Authors:
		Bence Kovács
		Alexandra Gînguță
		Petra Kiss
		Kitti Maár
		Oszkár Schütz
		Gergely I. B. Varga
		Endre Neparáczki
		</p>
	<p>Background/Objectives: Ancient DNA (aDNA) research workflows heavily depend on efficient aDNA extraction and NGS library preparation. In this study, we compared some of the commonly used laboratory protocols and compared the source of the bone material for sufficient and reliable results. Methods: We executed a three-phase study. First, we analyzed about 2000 previously processed archaic bone samples and conducted a comparative analysis. The second phase involved a controlled experiment of five ancient individuals, with internal control, to further investigate the efficiency of some of the methods. In the third phase, we made a comparison between the efficiency of two enzymes used for library preparation. Results: Samples made from Pars petrosa resulted in the highest yield of endogenous DNA and longer fragment sizes compared to tooth or skeletal samples. DNA extraction made by MinElute columns preserved slightly longer fragments than the handmade silica suspension. NGS libraries indexed using AccuPrime Pfx produced slightly more consistent insert sizes compared to GoTaq G2. Samples prepared with GoTaq G2 contained slightly more unique molecules. The duplication rates showed no significant impact from enzyme choice. Conclusions: Pars petrosa remains the most reliable source of aDNA, with the extraction method using MinElute columns. While AccuPrime Pfx ensures precise NGS library preparation, a more economical choice of the GoTaq G2 enzyme is a viable alternative for degraded archaic samples.</p>
	]]></content:encoded>

	<dc:title>Comparing the Efficiency of Different Methods for Reliable Results in Ancient DNA NGS Workflow</dc:title>
			<dc:creator>Bence Kovács</dc:creator>
			<dc:creator>Alexandra Gînguță</dc:creator>
			<dc:creator>Petra Kiss</dc:creator>
			<dc:creator>Kitti Maár</dc:creator>
			<dc:creator>Oszkár Schütz</dc:creator>
			<dc:creator>Gergely I. B. Varga</dc:creator>
			<dc:creator>Endre Neparáczki</dc:creator>
		<dc:identifier>doi: 10.3390/dna5020026</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-05-19</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-05-19</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>2</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>26</prism:startingPage>
		<prism:doi>10.3390/dna5020026</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/2/26</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/2/25">

	<title>DNA, Vol. 5, Pages 25: Synthesis of Sensitive Oligodeoxynucleotides Containing Acylated Cytosine, Adenine, and Guanine Nucleobases</title>
	<link>https://www.mdpi.com/2673-8856/5/2/25</link>
	<description>Background/Objective: Oligodeoxynucleotides (ODNs) containing base-labile modifications such as N4-acetyldeoxycytidine (4acC), N6-acetyladenosine (6acA), N2-acetylguanosine (2acG), and N4-methyoxycarbonyldeoxycytidine (4mcC) are highly challenging to synthesize because standard ODN synthesis methods require deprotection and cleavage under strongly basic and nucleophilic conditions, and there is a lack of ideal alternative methods to solve the problem. The objective of this work is to explore the capability of the recently developed 1,3-dithian-2-yl-methoxycarbonyl (Dmoc) method for the incorporation of multiple 4acC modifications into a single ODN molecule and the feasibility of using the method for the incorporation of the 6acA, 2acG and 4mcC modifications into ODNs. Methods: The sensitive ODNs were synthesized on an automated solid phase synthesizer using the Dmoc group as the linker and the methyl Dmoc (meDmoc) group for the protection of the exo-amino groups of nucleobases. Deprotection and cleavage were achieved under non-nucleophilic and weakly basic conditions. Results: The 4acC, 6acA, 2acG, and 4mcC were all found to be stable under the mild ODN deprotection and cleavage conditions. Up to four 4acC modifications were able to be incorporated into a single 19-mer ODN molecule. ODNs containing the 6acA, 2acG, and 4mcC modifications were also successfully synthesized. The ODNs were characterized using RP HPLC, capillary electrophoresis, gel electrophoresis and MALDI MS. Conclusions: Among the modified nucleotides, 4acC has been found in nature and proven beneficial to DNA duplex stability. A method for the synthesis of ODNs containing multiple 4acC modifications is expected to find applications in biological studies involving 4acC. Although 6acA, 2acG, and 4mcC have not been found in nature, a synthetic route to ODNs containing them is expected to facilitate projects aimed at studying their biophysical properties as well as their potential for antisense, RNAi, CRISPR, and mRNA therapeutic applications.</description>
	<pubDate>2025-05-09</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 25: Synthesis of Sensitive Oligodeoxynucleotides Containing Acylated Cytosine, Adenine, and Guanine Nucleobases</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/2/25">doi: 10.3390/dna5020025</a></p>
	<p>Authors:
		Komal Chillar
		Rohith Awasthy
		Marina Tanasova
		Shiyue Fang
		</p>
	<p>Background/Objective: Oligodeoxynucleotides (ODNs) containing base-labile modifications such as N4-acetyldeoxycytidine (4acC), N6-acetyladenosine (6acA), N2-acetylguanosine (2acG), and N4-methyoxycarbonyldeoxycytidine (4mcC) are highly challenging to synthesize because standard ODN synthesis methods require deprotection and cleavage under strongly basic and nucleophilic conditions, and there is a lack of ideal alternative methods to solve the problem. The objective of this work is to explore the capability of the recently developed 1,3-dithian-2-yl-methoxycarbonyl (Dmoc) method for the incorporation of multiple 4acC modifications into a single ODN molecule and the feasibility of using the method for the incorporation of the 6acA, 2acG and 4mcC modifications into ODNs. Methods: The sensitive ODNs were synthesized on an automated solid phase synthesizer using the Dmoc group as the linker and the methyl Dmoc (meDmoc) group for the protection of the exo-amino groups of nucleobases. Deprotection and cleavage were achieved under non-nucleophilic and weakly basic conditions. Results: The 4acC, 6acA, 2acG, and 4mcC were all found to be stable under the mild ODN deprotection and cleavage conditions. Up to four 4acC modifications were able to be incorporated into a single 19-mer ODN molecule. ODNs containing the 6acA, 2acG, and 4mcC modifications were also successfully synthesized. The ODNs were characterized using RP HPLC, capillary electrophoresis, gel electrophoresis and MALDI MS. Conclusions: Among the modified nucleotides, 4acC has been found in nature and proven beneficial to DNA duplex stability. A method for the synthesis of ODNs containing multiple 4acC modifications is expected to find applications in biological studies involving 4acC. Although 6acA, 2acG, and 4mcC have not been found in nature, a synthetic route to ODNs containing them is expected to facilitate projects aimed at studying their biophysical properties as well as their potential for antisense, RNAi, CRISPR, and mRNA therapeutic applications.</p>
	]]></content:encoded>

	<dc:title>Synthesis of Sensitive Oligodeoxynucleotides Containing Acylated Cytosine, Adenine, and Guanine Nucleobases</dc:title>
			<dc:creator>Komal Chillar</dc:creator>
			<dc:creator>Rohith Awasthy</dc:creator>
			<dc:creator>Marina Tanasova</dc:creator>
			<dc:creator>Shiyue Fang</dc:creator>
		<dc:identifier>doi: 10.3390/dna5020025</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-05-09</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-05-09</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>2</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>25</prism:startingPage>
		<prism:doi>10.3390/dna5020025</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/2/25</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/2/24">

	<title>DNA, Vol. 5, Pages 24: DNA Replication in Time and Space: The Archaeal Dimension</title>
	<link>https://www.mdpi.com/2673-8856/5/2/24</link>
	<description>The ability of a nucleic acid molecule to self-replicate is the driving force behind the evolution of cellular life and the transition from RNA to DNA as the genetic material. Thus, the physicochemical properties of genome replication, such as the requirement for a terminal hydroxyl group for de novo DNA synthesis, are conserved in all three domains of life: eukaryotes, bacteria, and archaea. Canonical DNA replication is initiated from specific chromosomal sequences termed origins. Early bacterial models of DNA replication proposed origins as regulatory points for spatiotemporal control, with replication factors acting on a single origin on the chromosome. In eukaryotes and archaea, however, replication initiation usually involves multiple origins, with complex spatiotemporal regulation in the former. An alternative replication initiation mechanism, recombination-dependent replication, is observed in every cellular domain (and viruses); DNA synthesis is initiated instead from the 3&amp;amp;prime; end of a recombination intermediate. In the domain archaea, species including Haloferax volcanii are not only capable of initiating DNA replication without origins but grow faster without them. This raises questions about the necessity and nature of origins. Why have archaea retained such an alternative DNA replication initiation mechanism? Might recombination-dependent replication be the ancestral mode of DNA synthesis that was used during evolution from the primordial RNA world? This review provides a historical overview of major advancements in the study of DNA replication, followed by a comparative analysis of replication initiation systems in the three domains of life. Our current knowledge of origin-dependent and recombination-dependent DNA replication in archaea is summarised.</description>
	<pubDate>2025-05-06</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 24: DNA Replication in Time and Space: The Archaeal Dimension</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/2/24">doi: 10.3390/dna5020024</a></p>
	<p>Authors:
		Anastasia Serdyuk
		Thorsten Allers
		</p>
	<p>The ability of a nucleic acid molecule to self-replicate is the driving force behind the evolution of cellular life and the transition from RNA to DNA as the genetic material. Thus, the physicochemical properties of genome replication, such as the requirement for a terminal hydroxyl group for de novo DNA synthesis, are conserved in all three domains of life: eukaryotes, bacteria, and archaea. Canonical DNA replication is initiated from specific chromosomal sequences termed origins. Early bacterial models of DNA replication proposed origins as regulatory points for spatiotemporal control, with replication factors acting on a single origin on the chromosome. In eukaryotes and archaea, however, replication initiation usually involves multiple origins, with complex spatiotemporal regulation in the former. An alternative replication initiation mechanism, recombination-dependent replication, is observed in every cellular domain (and viruses); DNA synthesis is initiated instead from the 3&amp;amp;prime; end of a recombination intermediate. In the domain archaea, species including Haloferax volcanii are not only capable of initiating DNA replication without origins but grow faster without them. This raises questions about the necessity and nature of origins. Why have archaea retained such an alternative DNA replication initiation mechanism? Might recombination-dependent replication be the ancestral mode of DNA synthesis that was used during evolution from the primordial RNA world? This review provides a historical overview of major advancements in the study of DNA replication, followed by a comparative analysis of replication initiation systems in the three domains of life. Our current knowledge of origin-dependent and recombination-dependent DNA replication in archaea is summarised.</p>
	]]></content:encoded>

	<dc:title>DNA Replication in Time and Space: The Archaeal Dimension</dc:title>
			<dc:creator>Anastasia Serdyuk</dc:creator>
			<dc:creator>Thorsten Allers</dc:creator>
		<dc:identifier>doi: 10.3390/dna5020024</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-05-06</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-05-06</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>2</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>24</prism:startingPage>
		<prism:doi>10.3390/dna5020024</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/2/24</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/2/23">

	<title>DNA, Vol. 5, Pages 23: Unveiling the Genomic Basis of Antagonism and Plant Growth Promotion in the Novel Endophyte Bacillus velezensis Strain B.B.Sf.2</title>
	<link>https://www.mdpi.com/2673-8856/5/2/23</link>
	<description>Background/Objectives: The agriculture sector faces significant challenges due to global climate change, environmental stressors, and rapid population growth, compounded by unsustainable farming practices. This study investigates the potential of the endophytic bacterial strain B.B.Sf.2, isolated from the bark of Salvia fruticosa and identified as Bacillus velezensis through phylogenomic analyses. Methods: To address these issues, eco-friendly techniques, such as the application of plant-associated microbes, are gaining attention. Genome mining revealed numerous secondary metabolite biosynthetic gene clusters associated with plant growth promotion, biocontrol, colonization, and defense elicitation. Results: The strain exhibited strong antagonistic activity against phytopathogens, mediated by diffusible and volatile compound production, along with plant-growth-promoting traits and environmental adaptability. Genome mining revealed numerous secondary metabolite biosynthetic gene clusters associated with plant growth promotion, biocontrol, colonization, and defense elicitation. B.B.Sf.2 effectively inhibited Colletotrichum species causing olive anthracnose and suppressed Botrytis cinerea, the gray mold pathogen, in post-harvest studies on infected fruits. Bioautography of ethyl acetate extracts demonstrated bioactivity against B. cinerea, attributed to iturin-like metabolites. The extracts maintained bioactive properties regardless of fungal interaction. Furthermore, the strain significantly promoted the growth of Arabidopsis thaliana via diffusible and volatile compounds. Conclusions: Our results highlight the multifunctional potential of B.B.Sf.2 as a biocontrol and growth-promoting agent, warranting further evaluation in field applications to enhance sustainable agriculture.</description>
	<pubDate>2025-05-04</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 23: Unveiling the Genomic Basis of Antagonism and Plant Growth Promotion in the Novel Endophyte Bacillus velezensis Strain B.B.Sf.2</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/2/23">doi: 10.3390/dna5020023</a></p>
	<p>Authors:
		Dimitra Douka
		Tasos-Nektarios Spantidos
		Panagiotis Katinakis
		Anastasia Venieraki
		</p>
	<p>Background/Objectives: The agriculture sector faces significant challenges due to global climate change, environmental stressors, and rapid population growth, compounded by unsustainable farming practices. This study investigates the potential of the endophytic bacterial strain B.B.Sf.2, isolated from the bark of Salvia fruticosa and identified as Bacillus velezensis through phylogenomic analyses. Methods: To address these issues, eco-friendly techniques, such as the application of plant-associated microbes, are gaining attention. Genome mining revealed numerous secondary metabolite biosynthetic gene clusters associated with plant growth promotion, biocontrol, colonization, and defense elicitation. Results: The strain exhibited strong antagonistic activity against phytopathogens, mediated by diffusible and volatile compound production, along with plant-growth-promoting traits and environmental adaptability. Genome mining revealed numerous secondary metabolite biosynthetic gene clusters associated with plant growth promotion, biocontrol, colonization, and defense elicitation. B.B.Sf.2 effectively inhibited Colletotrichum species causing olive anthracnose and suppressed Botrytis cinerea, the gray mold pathogen, in post-harvest studies on infected fruits. Bioautography of ethyl acetate extracts demonstrated bioactivity against B. cinerea, attributed to iturin-like metabolites. The extracts maintained bioactive properties regardless of fungal interaction. Furthermore, the strain significantly promoted the growth of Arabidopsis thaliana via diffusible and volatile compounds. Conclusions: Our results highlight the multifunctional potential of B.B.Sf.2 as a biocontrol and growth-promoting agent, warranting further evaluation in field applications to enhance sustainable agriculture.</p>
	]]></content:encoded>

	<dc:title>Unveiling the Genomic Basis of Antagonism and Plant Growth Promotion in the Novel Endophyte Bacillus velezensis Strain B.B.Sf.2</dc:title>
			<dc:creator>Dimitra Douka</dc:creator>
			<dc:creator>Tasos-Nektarios Spantidos</dc:creator>
			<dc:creator>Panagiotis Katinakis</dc:creator>
			<dc:creator>Anastasia Venieraki</dc:creator>
		<dc:identifier>doi: 10.3390/dna5020023</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-05-04</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-05-04</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>2</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>23</prism:startingPage>
		<prism:doi>10.3390/dna5020023</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/2/23</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/2/22">

	<title>DNA, Vol. 5, Pages 22: Genomic and Epigenomic Plasticity in the Hypoxic Environment</title>
	<link>https://www.mdpi.com/2673-8856/5/2/22</link>
	<description>Our genome has evolved a complex network of information designed to precisely regulate gene transcription. Commonly known as cis-regulatory elements, they represent those parts of DNA that are highly sensitive to environmental changes in the form of associated multi-protein complexes. Oxygen levels are an important environmental factor influencing a range of cellular activities, including cell survival. To respond to changes in oxygen levels, cells have developed an efficient and precise system for regulating gene expression. Cis-regulatory elements are the key hubs of this response and control the activation of the transcriptional response to hypoxia. In this review, we will discuss the complex genomic and epigenomic structures that are modulated by oxygen and control the activity of cis-regulatory elements and the adaptations to variations in O2 availability.</description>
	<pubDate>2025-05-04</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 22: Genomic and Epigenomic Plasticity in the Hypoxic Environment</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/2/22">doi: 10.3390/dna5020022</a></p>
	<p>Authors:
		Emanuele Cricchi
		Alessio Bertozzo
		Martina Minisini
		Claudio Brancolini
		</p>
	<p>Our genome has evolved a complex network of information designed to precisely regulate gene transcription. Commonly known as cis-regulatory elements, they represent those parts of DNA that are highly sensitive to environmental changes in the form of associated multi-protein complexes. Oxygen levels are an important environmental factor influencing a range of cellular activities, including cell survival. To respond to changes in oxygen levels, cells have developed an efficient and precise system for regulating gene expression. Cis-regulatory elements are the key hubs of this response and control the activation of the transcriptional response to hypoxia. In this review, we will discuss the complex genomic and epigenomic structures that are modulated by oxygen and control the activity of cis-regulatory elements and the adaptations to variations in O2 availability.</p>
	]]></content:encoded>

	<dc:title>Genomic and Epigenomic Plasticity in the Hypoxic Environment</dc:title>
			<dc:creator>Emanuele Cricchi</dc:creator>
			<dc:creator>Alessio Bertozzo</dc:creator>
			<dc:creator>Martina Minisini</dc:creator>
			<dc:creator>Claudio Brancolini</dc:creator>
		<dc:identifier>doi: 10.3390/dna5020022</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-05-04</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-05-04</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>2</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>22</prism:startingPage>
		<prism:doi>10.3390/dna5020022</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/2/22</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/2/21">

	<title>DNA, Vol. 5, Pages 21: Research Themes in KAT6A Syndrome: A Scoping Review</title>
	<link>https://www.mdpi.com/2673-8856/5/2/21</link>
	<description>Pathogenic variants in the KAT6A gene cause KAT6A syndrome, a neurodevelopmental disorder characterised by intellectual disability (ID), developmental delay, speech and language challenges, feeding difficulties, and skeletal abnormalities. This scoping review synthesises current knowledge on KAT6A syndrome, identifies key research themes, and supports the mission of advocacy groups like the KAT6 Foundation. A systematic search of five databases (Ovid MEDLINE, Ovid EMBASE, PubMed, Web of Science, and Scopus) was conducted from 1990 to 2024, including peer-reviewed articles, preprints, and conference abstracts published from 2022 onward. Of 771 citations retrieved, 111 full-text articles were reviewed, with 62 meeting the inclusion criteria. Data were synthesised into six themes: (1) the genotype and phenotype map, revealing a broad phenotypic spectrum with common features like ID, absent speech, and craniofacial dysmorphism, as well as rare features such as severe aplastic anaemia and pancraniosynostosis; (2) the neurodevelopmental profile, detailing communication deficits, sleep disturbances, and impaired adaptive functioning; (3) the epigenetic and developmental roles of KAT6A, highlighting its critical function in histone acetylation, chromatin remodelling, and gene regulation; (4) molecular biomarkers, identifying distinct DNA methylation episignatures and dysregulated cellular pathways; (5) drug discovery, with preliminary studies suggesting that pantothenate and L-carnitine may mitigate mitochondrial dysfunction and histone acetylation deficits, while RSPO2 overexpression reverses cognitive impairment in animal models; (6) phenotypic overlap with Rett syndrome and KAT6B-related disorders. This review underscores the complexity and variability of KAT6A syndrome, highlighting the need for multidisciplinary approaches to improving diagnosis, management, and development of therapies. Future research should focus on longitudinal studies, underrepresented phenotypes, biomarker identification, and robust therapeutic trials to enhance outcomes for affected individuals and their families.</description>
	<pubDate>2025-04-27</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 21: Research Themes in KAT6A Syndrome: A Scoping Review</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/2/21">doi: 10.3390/dna5020021</a></p>
	<p>Authors:
		Tanya Tripathi
		Miya St John
		Jordan Wright
		Natacha Esber
		David J. Amor
		</p>
	<p>Pathogenic variants in the KAT6A gene cause KAT6A syndrome, a neurodevelopmental disorder characterised by intellectual disability (ID), developmental delay, speech and language challenges, feeding difficulties, and skeletal abnormalities. This scoping review synthesises current knowledge on KAT6A syndrome, identifies key research themes, and supports the mission of advocacy groups like the KAT6 Foundation. A systematic search of five databases (Ovid MEDLINE, Ovid EMBASE, PubMed, Web of Science, and Scopus) was conducted from 1990 to 2024, including peer-reviewed articles, preprints, and conference abstracts published from 2022 onward. Of 771 citations retrieved, 111 full-text articles were reviewed, with 62 meeting the inclusion criteria. Data were synthesised into six themes: (1) the genotype and phenotype map, revealing a broad phenotypic spectrum with common features like ID, absent speech, and craniofacial dysmorphism, as well as rare features such as severe aplastic anaemia and pancraniosynostosis; (2) the neurodevelopmental profile, detailing communication deficits, sleep disturbances, and impaired adaptive functioning; (3) the epigenetic and developmental roles of KAT6A, highlighting its critical function in histone acetylation, chromatin remodelling, and gene regulation; (4) molecular biomarkers, identifying distinct DNA methylation episignatures and dysregulated cellular pathways; (5) drug discovery, with preliminary studies suggesting that pantothenate and L-carnitine may mitigate mitochondrial dysfunction and histone acetylation deficits, while RSPO2 overexpression reverses cognitive impairment in animal models; (6) phenotypic overlap with Rett syndrome and KAT6B-related disorders. This review underscores the complexity and variability of KAT6A syndrome, highlighting the need for multidisciplinary approaches to improving diagnosis, management, and development of therapies. Future research should focus on longitudinal studies, underrepresented phenotypes, biomarker identification, and robust therapeutic trials to enhance outcomes for affected individuals and their families.</p>
	]]></content:encoded>

	<dc:title>Research Themes in KAT6A Syndrome: A Scoping Review</dc:title>
			<dc:creator>Tanya Tripathi</dc:creator>
			<dc:creator>Miya St John</dc:creator>
			<dc:creator>Jordan Wright</dc:creator>
			<dc:creator>Natacha Esber</dc:creator>
			<dc:creator>David J. Amor</dc:creator>
		<dc:identifier>doi: 10.3390/dna5020021</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-04-27</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-04-27</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>2</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>21</prism:startingPage>
		<prism:doi>10.3390/dna5020021</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/2/21</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/2/20">

	<title>DNA, Vol. 5, Pages 20: DNA Barcoding as a Tool for Surveying Cytospora Species Associated with Branch Dieback and Canker Diseases of Woody Plants in Canada</title>
	<link>https://www.mdpi.com/2673-8856/5/2/20</link>
	<description>Background/Objectives: Branch dieback and canker diseases caused by Cytospora species adversely impact the health of woody plants worldwide. Results: During this survey, 59 Cytospora isolates were obtained from symptomatic trees and shrubs growing in southwest Ontario and Saskatchewan, Canada. A DNA barcoding approach combined with morphological characterization identified 15 known species of Cytospora associated with these diseases: C. chrysosperma, C. curvata, C. euonymina, C. hoffmannii, C. kantschavelii, C. leucosperma, C. leucostoma, C. nitschkeana, C. piceae, C. populina, C. pruinopsis, C. pruinosa, C. ribis, C. schulzeri, and C. sorbina. The most common species isolated from multiple hosts were C. sorbina (10), C. chrysosperma (8), C. nitschkeana (6), and C. pruinosa (6). A wide range of host associations, including non-conifer species, was observed for C. piceae. Conclusions: The obtained results contribute to the study of diversity, host affiliation, geographical distribution, and pathogenicity of Cytospora species occurring on woody plants in both natural habitats and agricultural systems. The findings support the effectiveness of using DNA barcodes in fungal taxonomy and plant pathology studies.</description>
	<pubDate>2025-04-21</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 20: DNA Barcoding as a Tool for Surveying Cytospora Species Associated with Branch Dieback and Canker Diseases of Woody Plants in Canada</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/2/20">doi: 10.3390/dna5020020</a></p>
	<p>Authors:
		Evgeny Ilyukhin
		Svetlana Markovskaja
		</p>
	<p>Background/Objectives: Branch dieback and canker diseases caused by Cytospora species adversely impact the health of woody plants worldwide. Results: During this survey, 59 Cytospora isolates were obtained from symptomatic trees and shrubs growing in southwest Ontario and Saskatchewan, Canada. A DNA barcoding approach combined with morphological characterization identified 15 known species of Cytospora associated with these diseases: C. chrysosperma, C. curvata, C. euonymina, C. hoffmannii, C. kantschavelii, C. leucosperma, C. leucostoma, C. nitschkeana, C. piceae, C. populina, C. pruinopsis, C. pruinosa, C. ribis, C. schulzeri, and C. sorbina. The most common species isolated from multiple hosts were C. sorbina (10), C. chrysosperma (8), C. nitschkeana (6), and C. pruinosa (6). A wide range of host associations, including non-conifer species, was observed for C. piceae. Conclusions: The obtained results contribute to the study of diversity, host affiliation, geographical distribution, and pathogenicity of Cytospora species occurring on woody plants in both natural habitats and agricultural systems. The findings support the effectiveness of using DNA barcodes in fungal taxonomy and plant pathology studies.</p>
	]]></content:encoded>

	<dc:title>DNA Barcoding as a Tool for Surveying Cytospora Species Associated with Branch Dieback and Canker Diseases of Woody Plants in Canada</dc:title>
			<dc:creator>Evgeny Ilyukhin</dc:creator>
			<dc:creator>Svetlana Markovskaja</dc:creator>
		<dc:identifier>doi: 10.3390/dna5020020</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-04-21</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-04-21</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>2</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>20</prism:startingPage>
		<prism:doi>10.3390/dna5020020</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/2/20</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/2/19">

	<title>DNA, Vol. 5, Pages 19: Chemical Versus Enzymatic Nucleic Acid Modifications and Genomic Stability</title>
	<link>https://www.mdpi.com/2673-8856/5/2/19</link>
	<description>DNA damage and repair have been central themes in cellular biology research. Broadly, DNA damage is understood as modifications to canonical nucleotides that disrupt their function during transcription and replication. A deeper biochemical understanding of DNA damage is essential, as the genome governs all cellular processes. We can classify DNA damage according to whether the modifications to the nucleic acid scaffold are chemically or enzymatically initiated. This distinction is important because chemical modifications are often irreversible, sometimes sparse, and difficult to detect or control spatially and replicate systematically. This can result in genomic damage or modifications to nucleotides in the nucleotide pool, which is less commonly studied. In contrast, enzymatic modifications are typically induced by the cell for specific purposes and are under strong regulatory control. Enzymatic DNA modifications also present a degree of sequence specificity and are often reversible. However, both types of DNA modifications contribute to cellular aging when poorly repaired and, as a result, remain incompletely understood. This review hopes to gather less studied mechanisms in nucleotide modifications and show research gaps in our current understanding of nucleotide biology. By examining the implications of these mechanisms on DNA modifications, in the nucleotide pool and genome, we may gain insights into innovative strategies for mitigating the effects of cellular aging.</description>
	<pubDate>2025-04-09</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 19: Chemical Versus Enzymatic Nucleic Acid Modifications and Genomic Stability</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/2/19">doi: 10.3390/dna5020019</a></p>
	<p>Authors:
		Jonathan R. Cortez
		Marie E. Migaud
		</p>
	<p>DNA damage and repair have been central themes in cellular biology research. Broadly, DNA damage is understood as modifications to canonical nucleotides that disrupt their function during transcription and replication. A deeper biochemical understanding of DNA damage is essential, as the genome governs all cellular processes. We can classify DNA damage according to whether the modifications to the nucleic acid scaffold are chemically or enzymatically initiated. This distinction is important because chemical modifications are often irreversible, sometimes sparse, and difficult to detect or control spatially and replicate systematically. This can result in genomic damage or modifications to nucleotides in the nucleotide pool, which is less commonly studied. In contrast, enzymatic modifications are typically induced by the cell for specific purposes and are under strong regulatory control. Enzymatic DNA modifications also present a degree of sequence specificity and are often reversible. However, both types of DNA modifications contribute to cellular aging when poorly repaired and, as a result, remain incompletely understood. This review hopes to gather less studied mechanisms in nucleotide modifications and show research gaps in our current understanding of nucleotide biology. By examining the implications of these mechanisms on DNA modifications, in the nucleotide pool and genome, we may gain insights into innovative strategies for mitigating the effects of cellular aging.</p>
	]]></content:encoded>

	<dc:title>Chemical Versus Enzymatic Nucleic Acid Modifications and Genomic Stability</dc:title>
			<dc:creator>Jonathan R. Cortez</dc:creator>
			<dc:creator>Marie E. Migaud</dc:creator>
		<dc:identifier>doi: 10.3390/dna5020019</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-04-09</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-04-09</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>2</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>19</prism:startingPage>
		<prism:doi>10.3390/dna5020019</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/2/19</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/2/18">

	<title>DNA, Vol. 5, Pages 18: Thyroid Hormone-Responsive Genes in Primary Cultures of Rat Hepatic Cells</title>
	<link>https://www.mdpi.com/2673-8856/5/2/18</link>
	<description>Background/Objectives: Thyroid hormones are key regulators in hepatic metabolic pathways. Although they regulate various hepatic genes, only a few are known to be under direct transcriptional regulation through thyroid hormone receptors. To better understand the roles of thyroid hormones in the liver, it is critical to identify thyroid hormone-responsive genes at the cellular level. Methods: A cDNA microarray analysis was applied to primary cultures of rat hepatic cells treated with triiodothyronine (T3) at 10&amp;amp;minus;9 M for 24 h to identify the differentially expressed genes. The identified gene expressions were further examined in vivo using F344 rats. The reporter gene assay was performed to investigate the transcriptional activity of the upstream region of the gene. Results: A limited number of genes were listed, and only three of them, pyridoxal kinase (Pdxk), phosphoenolpyruvate carboxykinase 1 (Pck1), and solute carrier family 17 member 2 (Slc17a2), were confirmed to be upregulated by quantitative RT-PCR. The mRNA expression of these genes increased in the livers of F344 rats after T3 injection, suggesting the physiological relevance in vivo. There are two partially conserved thyroid hormone-responsive elements (TREs) in the upstream region of the rat Pdxk gene. The reporter gene assay indicated that an imperfect TRE (5&amp;amp;prime;-gGGTCAxxxxAGGaCt-3&amp;amp;prime;) located at &amp;amp;minus;2146 was sufficient for the thyroid hormone-induced transcription of the gene. Conclusions: The present study identified novel T3-responsive genes, pdxk and Slc17a2. Promoter analyses showed that a single TRE in the pdxk gene accounts for the transcriptional regulation by T3.</description>
	<pubDate>2025-04-01</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 18: Thyroid Hormone-Responsive Genes in Primary Cultures of Rat Hepatic Cells</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/2/18">doi: 10.3390/dna5020018</a></p>
	<p>Authors:
		Nariaki Fujimoto
		Shigeyuki Kitamura
		</p>
	<p>Background/Objectives: Thyroid hormones are key regulators in hepatic metabolic pathways. Although they regulate various hepatic genes, only a few are known to be under direct transcriptional regulation through thyroid hormone receptors. To better understand the roles of thyroid hormones in the liver, it is critical to identify thyroid hormone-responsive genes at the cellular level. Methods: A cDNA microarray analysis was applied to primary cultures of rat hepatic cells treated with triiodothyronine (T3) at 10&amp;amp;minus;9 M for 24 h to identify the differentially expressed genes. The identified gene expressions were further examined in vivo using F344 rats. The reporter gene assay was performed to investigate the transcriptional activity of the upstream region of the gene. Results: A limited number of genes were listed, and only three of them, pyridoxal kinase (Pdxk), phosphoenolpyruvate carboxykinase 1 (Pck1), and solute carrier family 17 member 2 (Slc17a2), were confirmed to be upregulated by quantitative RT-PCR. The mRNA expression of these genes increased in the livers of F344 rats after T3 injection, suggesting the physiological relevance in vivo. There are two partially conserved thyroid hormone-responsive elements (TREs) in the upstream region of the rat Pdxk gene. The reporter gene assay indicated that an imperfect TRE (5&amp;amp;prime;-gGGTCAxxxxAGGaCt-3&amp;amp;prime;) located at &amp;amp;minus;2146 was sufficient for the thyroid hormone-induced transcription of the gene. Conclusions: The present study identified novel T3-responsive genes, pdxk and Slc17a2. Promoter analyses showed that a single TRE in the pdxk gene accounts for the transcriptional regulation by T3.</p>
	]]></content:encoded>

	<dc:title>Thyroid Hormone-Responsive Genes in Primary Cultures of Rat Hepatic Cells</dc:title>
			<dc:creator>Nariaki Fujimoto</dc:creator>
			<dc:creator>Shigeyuki Kitamura</dc:creator>
		<dc:identifier>doi: 10.3390/dna5020018</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-04-01</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-04-01</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>2</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>18</prism:startingPage>
		<prism:doi>10.3390/dna5020018</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/2/18</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/2/17">

	<title>DNA, Vol. 5, Pages 17: Overview of Roles of Novel Components in the Regulation of DNA Damage Repair in BRCA1-Deficient Cancers: An Update</title>
	<link>https://www.mdpi.com/2673-8856/5/2/17</link>
	<description>Cancers that arise from germline mutations of breast cancer associated gene 1 (BRCA1), which is a crucial player in homologous recombination (HR) DNA repair, are vulnerable to DNA-damaging agents such as platinum and PARP inhibitors (PARPis). Increasing evidence suggests that BRCA1 is an essential driver of all phases of the cell cycle, thereby maintaining orderly steps during cell cycle progression. Specifically, loss of BRCA1 activity causes the S-phase, G2/M, spindle checkpoints, and centrosome duplication to be dysregulated, thereby blocking cell proliferation and inducing apoptosis. In vertebrates, loss of HR genes such as BRCA1 and/or BRCA2 is lethal, since HR is a prerequisite for genome integrity. Thus, cancer cells utilize alternative DNA repair pathways such as non-homologous end joining (NHEJ) to cope with the loss of BRCA1 function. In this review, we attempt to update and discuss how these novel components are crucial for regulating DNA damage repair (DDR) in BRCA1-deficient cancers.</description>
	<pubDate>2025-04-01</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 17: Overview of Roles of Novel Components in the Regulation of DNA Damage Repair in BRCA1-Deficient Cancers: An Update</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/2/17">doi: 10.3390/dna5020017</a></p>
	<p>Authors:
		Nhat Nguyen
		Dominic Arris
		Manh Tien Tran
		</p>
	<p>Cancers that arise from germline mutations of breast cancer associated gene 1 (BRCA1), which is a crucial player in homologous recombination (HR) DNA repair, are vulnerable to DNA-damaging agents such as platinum and PARP inhibitors (PARPis). Increasing evidence suggests that BRCA1 is an essential driver of all phases of the cell cycle, thereby maintaining orderly steps during cell cycle progression. Specifically, loss of BRCA1 activity causes the S-phase, G2/M, spindle checkpoints, and centrosome duplication to be dysregulated, thereby blocking cell proliferation and inducing apoptosis. In vertebrates, loss of HR genes such as BRCA1 and/or BRCA2 is lethal, since HR is a prerequisite for genome integrity. Thus, cancer cells utilize alternative DNA repair pathways such as non-homologous end joining (NHEJ) to cope with the loss of BRCA1 function. In this review, we attempt to update and discuss how these novel components are crucial for regulating DNA damage repair (DDR) in BRCA1-deficient cancers.</p>
	]]></content:encoded>

	<dc:title>Overview of Roles of Novel Components in the Regulation of DNA Damage Repair in BRCA1-Deficient Cancers: An Update</dc:title>
			<dc:creator>Nhat Nguyen</dc:creator>
			<dc:creator>Dominic Arris</dc:creator>
			<dc:creator>Manh Tien Tran</dc:creator>
		<dc:identifier>doi: 10.3390/dna5020017</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-04-01</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-04-01</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>2</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>17</prism:startingPage>
		<prism:doi>10.3390/dna5020017</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/2/17</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/1/16">

	<title>DNA, Vol. 5, Pages 16: BUB1 Inhibition Induces Ferroptosis in Triple-Negative Breast Cancer Cell Lines</title>
	<link>https://www.mdpi.com/2673-8856/5/1/16</link>
	<description>Background: Triple-negative breast cancer (TNBC) is a highly aggressive subtype with limited effective treatments available, including targeted therapies, often leading to poor prognosis. Mitotic checkpoint kinase BUB1 is frequently overexpressed in TNBC and correlates with poor survival outcomes suggesting its potential as a therapeutic target. This study explores the cytotoxicity of TNBC cells to BUB1 inhibition, alone or in combination with radiation and demonstrates that ferroptosis, an iron-dependent form of programmed cell death, has a role. Methods: TNBC cell lines (SUM159, MDA-MB-231, and BT-549) were treated with a BUB1 inhibitor BAY1816032 (BUB1i) alone or in combination with the ferroptosis activator RSL3 with or without 4 Gy irradiation. Cell viability assays were conducted to assess treatment effects, qPCR analyses measured expression of key ferroptosis markers including ACSL4, GPX4, PTGS2, SLC7A11, NCOA4, IREB2, NFS1, and TFRC expression, and TBARS assay measured the lipid peroxidation levels. Ferroptosis specificity was confirmed through co-treatment with the ferroptosis inhibitor Ferrostatin-1 (F-1). Results: In all TNBC cell lines studied, BUB1 inhibition significantly induced ferroptosis, marked by increased expression of ACSL4 and PTGS2, decreased expression of GPX4 and SLC7A11, and increased lipid peroxidation levels. The combination of BUB1i with RSL3 further amplified these ferroptotic markers, suggesting at least an additive effect, which was not present with the combination of BUB1i and radiation. Co-treatment with Ferrostatin-1 reversed the expression of ferroptosis markers, suggesting that BUB1i-mediated cell death may involve ferroptotic signaling in TNBC cell lines. Conclusions: This study demonstrates that BUB1 inhibition may independently induce ferroptosis in TNBC cell lines, which is enhanced when combined with a ferroptosis activator. Further research is warranted to delineate the molecular mechanism of BUB1-mediated ferroptosis in TNBC.</description>
	<pubDate>2025-03-12</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 16: BUB1 Inhibition Induces Ferroptosis in Triple-Negative Breast Cancer Cell Lines</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/1/16">doi: 10.3390/dna5010016</a></p>
	<p>Authors:
		Sushmitha Sriramulu
		Shivani Thoidingjam
		Stephen L. Brown
		Farzan Siddiqui
		Benjamin Movsas
		Shyam Nyati
		</p>
	<p>Background: Triple-negative breast cancer (TNBC) is a highly aggressive subtype with limited effective treatments available, including targeted therapies, often leading to poor prognosis. Mitotic checkpoint kinase BUB1 is frequently overexpressed in TNBC and correlates with poor survival outcomes suggesting its potential as a therapeutic target. This study explores the cytotoxicity of TNBC cells to BUB1 inhibition, alone or in combination with radiation and demonstrates that ferroptosis, an iron-dependent form of programmed cell death, has a role. Methods: TNBC cell lines (SUM159, MDA-MB-231, and BT-549) were treated with a BUB1 inhibitor BAY1816032 (BUB1i) alone or in combination with the ferroptosis activator RSL3 with or without 4 Gy irradiation. Cell viability assays were conducted to assess treatment effects, qPCR analyses measured expression of key ferroptosis markers including ACSL4, GPX4, PTGS2, SLC7A11, NCOA4, IREB2, NFS1, and TFRC expression, and TBARS assay measured the lipid peroxidation levels. Ferroptosis specificity was confirmed through co-treatment with the ferroptosis inhibitor Ferrostatin-1 (F-1). Results: In all TNBC cell lines studied, BUB1 inhibition significantly induced ferroptosis, marked by increased expression of ACSL4 and PTGS2, decreased expression of GPX4 and SLC7A11, and increased lipid peroxidation levels. The combination of BUB1i with RSL3 further amplified these ferroptotic markers, suggesting at least an additive effect, which was not present with the combination of BUB1i and radiation. Co-treatment with Ferrostatin-1 reversed the expression of ferroptosis markers, suggesting that BUB1i-mediated cell death may involve ferroptotic signaling in TNBC cell lines. Conclusions: This study demonstrates that BUB1 inhibition may independently induce ferroptosis in TNBC cell lines, which is enhanced when combined with a ferroptosis activator. Further research is warranted to delineate the molecular mechanism of BUB1-mediated ferroptosis in TNBC.</p>
	]]></content:encoded>

	<dc:title>BUB1 Inhibition Induces Ferroptosis in Triple-Negative Breast Cancer Cell Lines</dc:title>
			<dc:creator>Sushmitha Sriramulu</dc:creator>
			<dc:creator>Shivani Thoidingjam</dc:creator>
			<dc:creator>Stephen L. Brown</dc:creator>
			<dc:creator>Farzan Siddiqui</dc:creator>
			<dc:creator>Benjamin Movsas</dc:creator>
			<dc:creator>Shyam Nyati</dc:creator>
		<dc:identifier>doi: 10.3390/dna5010016</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-03-12</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-03-12</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>1</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>16</prism:startingPage>
		<prism:doi>10.3390/dna5010016</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/1/16</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/1/15">

	<title>DNA, Vol. 5, Pages 15: Carbon Dioxide Fluxes Associated with Prokaryotic and Eukaryotic Communities in Ice-Free Areas on King George Island, Maritime Antarctica</title>
	<link>https://www.mdpi.com/2673-8856/5/1/15</link>
	<description>Background and Methods: We assessed the prokaryotic and eukaryotic diversity present in non-vegetated and vegetated soils on King George Island, Maritime Antarctic, in combination with measurements of carbon dioxide fluxes. Results: For prokaryotes, 381 amplicon sequence variants (ASVs) were assigned, dominated by the phyla Actinobacteriota, Acidobacteriota, Pseudomonadota, Chloroflexota, and Verrucomicrobiota. A total of 432 eukaryotic ASVs were assigned, including representatives from seven kingdoms and 21 phyla. Fungi dominated the eukaryotic communities, followed by Viridiplantae. Non-vegetated soils had higher diversity indices compared with vegetated soils. The dominant prokaryotic ASV in non-vegetated soils was Pyrinomonadaceae sp., while Pseudarthrobacter sp. dominated vegetated soils. Mortierella antarctica (Fungi) and Meyerella sp. (Viridiplantae) were dominant eukaryotic taxa in the non-vegetated soils, while Lachnum sp. (Fungi) and Polytrichaceae sp. (Viridiplantae) were dominant in the vegetated soils. Measured CO2 fluxes indicated that the net ecosystem exchange values measured in vegetated soils were lower than ecosystem respiration in non-vegetated soils. However, the total flux values indicated that the region displayed positive ecosystem respiration values, suggesting that the soils may represent a source of CO2 in the atmosphere. Conclusions: Our study revealed the presence of rich and complex communities of prokaryotic and eukaryotic organisms in both soil types. Although non-vegetated soils demonstrated the highest levels of diversity, they had lower CO2 fluxes than vegetated soils, likely reflecting the significant biomass of photosynthetically active plants (mainly dense moss carpets) and their resident organisms. The greater diversity detected in exposed soils may influence future changes in CO2 flux in the studied region, for which comparisons of non-vegetated and vegetated soils with different microbial diversities are needed. This reinforces the necessity for studies to monitor the impact of resident biota on CO2 flux in different areas of Maritime Antarctica, a region strongly impacted by climatic changes.</description>
	<pubDate>2025-03-10</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 15: Carbon Dioxide Fluxes Associated with Prokaryotic and Eukaryotic Communities in Ice-Free Areas on King George Island, Maritime Antarctica</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/1/15">doi: 10.3390/dna5010015</a></p>
	<p>Authors:
		Luiz H. Rosa
		Vívian N. Gonçalves
		Débora Luiza Costa Barreto
		Marcio Rocha Francelino
		Clara Glória Oliveira Baldi
		Danilo Cesar Mello
		Kárita C. R. Santos
		Fabyano A. C. Lopes
		Micheline Carvalho-Silva
		Peter Convey
		Paulo E. A. S. Câmara
		</p>
	<p>Background and Methods: We assessed the prokaryotic and eukaryotic diversity present in non-vegetated and vegetated soils on King George Island, Maritime Antarctic, in combination with measurements of carbon dioxide fluxes. Results: For prokaryotes, 381 amplicon sequence variants (ASVs) were assigned, dominated by the phyla Actinobacteriota, Acidobacteriota, Pseudomonadota, Chloroflexota, and Verrucomicrobiota. A total of 432 eukaryotic ASVs were assigned, including representatives from seven kingdoms and 21 phyla. Fungi dominated the eukaryotic communities, followed by Viridiplantae. Non-vegetated soils had higher diversity indices compared with vegetated soils. The dominant prokaryotic ASV in non-vegetated soils was Pyrinomonadaceae sp., while Pseudarthrobacter sp. dominated vegetated soils. Mortierella antarctica (Fungi) and Meyerella sp. (Viridiplantae) were dominant eukaryotic taxa in the non-vegetated soils, while Lachnum sp. (Fungi) and Polytrichaceae sp. (Viridiplantae) were dominant in the vegetated soils. Measured CO2 fluxes indicated that the net ecosystem exchange values measured in vegetated soils were lower than ecosystem respiration in non-vegetated soils. However, the total flux values indicated that the region displayed positive ecosystem respiration values, suggesting that the soils may represent a source of CO2 in the atmosphere. Conclusions: Our study revealed the presence of rich and complex communities of prokaryotic and eukaryotic organisms in both soil types. Although non-vegetated soils demonstrated the highest levels of diversity, they had lower CO2 fluxes than vegetated soils, likely reflecting the significant biomass of photosynthetically active plants (mainly dense moss carpets) and their resident organisms. The greater diversity detected in exposed soils may influence future changes in CO2 flux in the studied region, for which comparisons of non-vegetated and vegetated soils with different microbial diversities are needed. This reinforces the necessity for studies to monitor the impact of resident biota on CO2 flux in different areas of Maritime Antarctica, a region strongly impacted by climatic changes.</p>
	]]></content:encoded>

	<dc:title>Carbon Dioxide Fluxes Associated with Prokaryotic and Eukaryotic Communities in Ice-Free Areas on King George Island, Maritime Antarctica</dc:title>
			<dc:creator>Luiz H. Rosa</dc:creator>
			<dc:creator>Vívian N. Gonçalves</dc:creator>
			<dc:creator>Débora Luiza Costa Barreto</dc:creator>
			<dc:creator>Marcio Rocha Francelino</dc:creator>
			<dc:creator>Clara Glória Oliveira Baldi</dc:creator>
			<dc:creator>Danilo Cesar Mello</dc:creator>
			<dc:creator>Kárita C. R. Santos</dc:creator>
			<dc:creator>Fabyano A. C. Lopes</dc:creator>
			<dc:creator>Micheline Carvalho-Silva</dc:creator>
			<dc:creator>Peter Convey</dc:creator>
			<dc:creator>Paulo E. A. S. Câmara</dc:creator>
		<dc:identifier>doi: 10.3390/dna5010015</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-03-10</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-03-10</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>1</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>15</prism:startingPage>
		<prism:doi>10.3390/dna5010015</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/1/15</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/1/14">

	<title>DNA, Vol. 5, Pages 14: Conservation Genomics of West Virginia Walleye (Sander vitreus): Impact of Minor Allele Frequency Thresholds on Population Structure and Potential Adaptive Divergence Inferences</title>
	<link>https://www.mdpi.com/2673-8856/5/1/14</link>
	<description>Background: Walleye (Sander vitreus), a valuable sportfish and an important ecological apex predator, exhibits genetic structuring across their range and localized structuring as a result of stocking. Methods: Walleye from 17 sampling locations across West Virginia were sequenced using a ddRAD protocol, generating various SNP datasets to assess population structuring and genomic diversity, with specific emphasis on the native Eastern Highlands strain. Different minor allele frequency filter thresholds were tested to assess impacts on genetic diversity and differentiation metrics. Results: High genetic differentiation was observed between the Eastern Highlands and Great Lakes strains, with further sub-structuring within the Eastern Highlands strain between the Ohio River populations and the other populations. Increasing MAF thresholds generally reduced the distinctiveness of clusters, but the overall inference of the number of clusters was minimally impacted. Genetic diversity metrics indicated some variability among Eastern Highlands walleye populations, with isolated populations, including the New River and Summersville Lake, showing higher inbreeding coefficients. MAF filters generally increased diversity metrics, but the trend of diversity metrics among populations remained relatively consistent. Several SNPs were found to be potentially undergoing selection, with the minor allele frequencies of these SNPs being found to be highest in Summersville Lake, highlighting potential adaptive divergence between the riverine populations and a large lentic system. Conclusions: The use of any MAF filter generated the same trends of population structuring and genomic diversity inferences regardless of the MAF threshold used. Further management of Eastern Highlands walleye in West Virginia needs to emphasize protecting the genetic integrity of the Kanawha River population and ongoing genomic screening of broodstock to conserve native genetic diversity.</description>
	<pubDate>2025-03-03</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 14: Conservation Genomics of West Virginia Walleye (Sander vitreus): Impact of Minor Allele Frequency Thresholds on Population Structure and Potential Adaptive Divergence Inferences</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/1/14">doi: 10.3390/dna5010014</a></p>
	<p>Authors:
		Andrew Johnson
		Katherine Zipfel
		Dustin Smith
		Amy Welsh
		</p>
	<p>Background: Walleye (Sander vitreus), a valuable sportfish and an important ecological apex predator, exhibits genetic structuring across their range and localized structuring as a result of stocking. Methods: Walleye from 17 sampling locations across West Virginia were sequenced using a ddRAD protocol, generating various SNP datasets to assess population structuring and genomic diversity, with specific emphasis on the native Eastern Highlands strain. Different minor allele frequency filter thresholds were tested to assess impacts on genetic diversity and differentiation metrics. Results: High genetic differentiation was observed between the Eastern Highlands and Great Lakes strains, with further sub-structuring within the Eastern Highlands strain between the Ohio River populations and the other populations. Increasing MAF thresholds generally reduced the distinctiveness of clusters, but the overall inference of the number of clusters was minimally impacted. Genetic diversity metrics indicated some variability among Eastern Highlands walleye populations, with isolated populations, including the New River and Summersville Lake, showing higher inbreeding coefficients. MAF filters generally increased diversity metrics, but the trend of diversity metrics among populations remained relatively consistent. Several SNPs were found to be potentially undergoing selection, with the minor allele frequencies of these SNPs being found to be highest in Summersville Lake, highlighting potential adaptive divergence between the riverine populations and a large lentic system. Conclusions: The use of any MAF filter generated the same trends of population structuring and genomic diversity inferences regardless of the MAF threshold used. Further management of Eastern Highlands walleye in West Virginia needs to emphasize protecting the genetic integrity of the Kanawha River population and ongoing genomic screening of broodstock to conserve native genetic diversity.</p>
	]]></content:encoded>

	<dc:title>Conservation Genomics of West Virginia Walleye (Sander vitreus): Impact of Minor Allele Frequency Thresholds on Population Structure and Potential Adaptive Divergence Inferences</dc:title>
			<dc:creator>Andrew Johnson</dc:creator>
			<dc:creator>Katherine Zipfel</dc:creator>
			<dc:creator>Dustin Smith</dc:creator>
			<dc:creator>Amy Welsh</dc:creator>
		<dc:identifier>doi: 10.3390/dna5010014</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-03-03</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-03-03</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>1</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>14</prism:startingPage>
		<prism:doi>10.3390/dna5010014</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/1/14</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/1/13">

	<title>DNA, Vol. 5, Pages 13: Estimating Carbon Biomass Using DNA: Phytoplankton as a Case Study</title>
	<link>https://www.mdpi.com/2673-8856/5/1/13</link>
	<description>Background/Objectives: Estimating carbon content for cells is often necessary but difficult. In many biological, oceanographic, and marine biogeochemical studies, information on phytoplankton species composition and their biomass contribution to the community is essential. However, it is technically challenging to estimate the biomass of individual species in a natural assemblage. DNA analysis has the potential to profile species composition and estimate species-specific carbon biomass simultaneously. However, this requires an established relationship between carbon biomass and DNA content with species resolution using a measurable DNA index such as rDNA. Methods: In this study, DNA, rDNA, and carbon contents were measured for species from major phytoplankton phyla grown in different growth stages and under different nutrient and temperature conditions. Correlations between these parameters were examined. Results: Our data resulted in significant log-log regression equations: Log C = 0.8165 &amp;amp;times; Log DNA + 2.407 (R2 = 0.9577, p &amp;amp;lt; 0.0001), Log rDNA = 0.7472 &amp;amp;times; Log DNA &amp;amp;minus; 0.0289 (R2 = 0.9456, p &amp;amp;lt; 0.0001), and Log C = 1.09 &amp;amp;times; Log rDNA + 2.41 (R2 = 0.9199, p &amp;amp;lt; 0.0001). Furthermore, similar strong regression functions were found when incorporating previously published data on a wide range of organisms including bacteria, plants, and animals. Conclusions: Carbon biomass is significantly correlated with DNA and rDNA abundances in phytoplankton and other organisms. The regression equations we developed offer a tool for estimating phytoplankton carbon biomass using DNA or rDNA and serve as a foundation for establishing similar models for other organisms.</description>
	<pubDate>2025-03-03</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 13: Estimating Carbon Biomass Using DNA: Phytoplankton as a Case Study</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/1/13">doi: 10.3390/dna5010013</a></p>
	<p>Authors:
		Lingjie Zhou
		Nanjing Ji
		Brittany N. Sprecher
		Senjie Lin
		</p>
	<p>Background/Objectives: Estimating carbon content for cells is often necessary but difficult. In many biological, oceanographic, and marine biogeochemical studies, information on phytoplankton species composition and their biomass contribution to the community is essential. However, it is technically challenging to estimate the biomass of individual species in a natural assemblage. DNA analysis has the potential to profile species composition and estimate species-specific carbon biomass simultaneously. However, this requires an established relationship between carbon biomass and DNA content with species resolution using a measurable DNA index such as rDNA. Methods: In this study, DNA, rDNA, and carbon contents were measured for species from major phytoplankton phyla grown in different growth stages and under different nutrient and temperature conditions. Correlations between these parameters were examined. Results: Our data resulted in significant log-log regression equations: Log C = 0.8165 &amp;amp;times; Log DNA + 2.407 (R2 = 0.9577, p &amp;amp;lt; 0.0001), Log rDNA = 0.7472 &amp;amp;times; Log DNA &amp;amp;minus; 0.0289 (R2 = 0.9456, p &amp;amp;lt; 0.0001), and Log C = 1.09 &amp;amp;times; Log rDNA + 2.41 (R2 = 0.9199, p &amp;amp;lt; 0.0001). Furthermore, similar strong regression functions were found when incorporating previously published data on a wide range of organisms including bacteria, plants, and animals. Conclusions: Carbon biomass is significantly correlated with DNA and rDNA abundances in phytoplankton and other organisms. The regression equations we developed offer a tool for estimating phytoplankton carbon biomass using DNA or rDNA and serve as a foundation for establishing similar models for other organisms.</p>
	]]></content:encoded>

	<dc:title>Estimating Carbon Biomass Using DNA: Phytoplankton as a Case Study</dc:title>
			<dc:creator>Lingjie Zhou</dc:creator>
			<dc:creator>Nanjing Ji</dc:creator>
			<dc:creator>Brittany N. Sprecher</dc:creator>
			<dc:creator>Senjie Lin</dc:creator>
		<dc:identifier>doi: 10.3390/dna5010013</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-03-03</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-03-03</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>1</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>13</prism:startingPage>
		<prism:doi>10.3390/dna5010013</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/1/13</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/1/12">

	<title>DNA, Vol. 5, Pages 12: Peroxidase-like Activity of G-Quadruplex/Hemin Complexes for Colorimetric Nucleic Acid Analysis: Loop and Flanking Sequences Affect Signal Intensity</title>
	<link>https://www.mdpi.com/2673-8856/5/1/12</link>
	<description>Background/Objectives: Some G-quadruplex (G4)-forming nucleic acid sequences bind a hemin cofactor to enhance its peroxidase-like activity. This has been implemented in a variety of bioanalytical assays benefiting from analyte-dependent peroxidation of a chromogenic organic substrate (e.g., ABTS) to produce a color change. Adenine and cytosine nucleotides in the vicinity of the G4 hemin-binding site promote the peroxidation reaction. In this work, the effect of G4 loop and flanking nucleotides on the colorimetric signal of split hybridization probes utilizing hemin-G4 signal reporters was tested. Methods: G4s varying by loop sequences and flanking nucleotides were tested with hemin for ABTS peroxidation (A420), and the signal was compared with that produced by the most catalytically efficient complexes reported in the literature using one-way ANOVA and post hoc pairwise comparison with Tukey&amp;amp;rsquo;s HSD test. The best G4s were used as signal transducers in the split peroxidase deoxyribozyme (sPDz) probes for sensing two model nucleic acid analytes, as well as in a cascade system, where the analyte-dependent assembly of an RNA-cleaving deoxyribozyme 10&amp;amp;ndash;23 results in G4 release. Results: Intramolecular G4s (G3T)3G3TC or G3T3G3ATTG3T3G3 were found to be the most efficient hemin PDzs. When splitting intramolecular G4 for the purpose of sPDz probe design, the addition of a flanking d(TC) sequence at one of the G4 halves or d(ATT) in a loop connecting the second and third G-tracts helps boost analyte-dependent signal intensity. However, for the cascade system, the effect of d(TC) or d(ATT) in the released G4 was not fully consistent with the data reported for intramolecular G4-hemin complexes. Conclusions: Our findings offer guidance on the design of split hybridization probes utilizing the peroxidase-like activity of G4-hemin complexes as a signal transducer.</description>
	<pubDate>2025-03-03</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 12: Peroxidase-like Activity of G-Quadruplex/Hemin Complexes for Colorimetric Nucleic Acid Analysis: Loop and Flanking Sequences Affect Signal Intensity</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/1/12">doi: 10.3390/dna5010012</a></p>
	<p>Authors:
		Ryan P. Connelly
		Valentina Fonseca
		Yulia V. Gerasimova
		</p>
	<p>Background/Objectives: Some G-quadruplex (G4)-forming nucleic acid sequences bind a hemin cofactor to enhance its peroxidase-like activity. This has been implemented in a variety of bioanalytical assays benefiting from analyte-dependent peroxidation of a chromogenic organic substrate (e.g., ABTS) to produce a color change. Adenine and cytosine nucleotides in the vicinity of the G4 hemin-binding site promote the peroxidation reaction. In this work, the effect of G4 loop and flanking nucleotides on the colorimetric signal of split hybridization probes utilizing hemin-G4 signal reporters was tested. Methods: G4s varying by loop sequences and flanking nucleotides were tested with hemin for ABTS peroxidation (A420), and the signal was compared with that produced by the most catalytically efficient complexes reported in the literature using one-way ANOVA and post hoc pairwise comparison with Tukey&amp;amp;rsquo;s HSD test. The best G4s were used as signal transducers in the split peroxidase deoxyribozyme (sPDz) probes for sensing two model nucleic acid analytes, as well as in a cascade system, where the analyte-dependent assembly of an RNA-cleaving deoxyribozyme 10&amp;amp;ndash;23 results in G4 release. Results: Intramolecular G4s (G3T)3G3TC or G3T3G3ATTG3T3G3 were found to be the most efficient hemin PDzs. When splitting intramolecular G4 for the purpose of sPDz probe design, the addition of a flanking d(TC) sequence at one of the G4 halves or d(ATT) in a loop connecting the second and third G-tracts helps boost analyte-dependent signal intensity. However, for the cascade system, the effect of d(TC) or d(ATT) in the released G4 was not fully consistent with the data reported for intramolecular G4-hemin complexes. Conclusions: Our findings offer guidance on the design of split hybridization probes utilizing the peroxidase-like activity of G4-hemin complexes as a signal transducer.</p>
	]]></content:encoded>

	<dc:title>Peroxidase-like Activity of G-Quadruplex/Hemin Complexes for Colorimetric Nucleic Acid Analysis: Loop and Flanking Sequences Affect Signal Intensity</dc:title>
			<dc:creator>Ryan P. Connelly</dc:creator>
			<dc:creator>Valentina Fonseca</dc:creator>
			<dc:creator>Yulia V. Gerasimova</dc:creator>
		<dc:identifier>doi: 10.3390/dna5010012</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-03-03</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-03-03</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>1</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>12</prism:startingPage>
		<prism:doi>10.3390/dna5010012</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/1/12</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/1/11">

	<title>DNA, Vol. 5, Pages 11: Similar Ehlers&amp;ndash;Danlos Syndrome Profiles Produced by Variants in Multiple Collagen Genes</title>
	<link>https://www.mdpi.com/2673-8856/5/1/11</link>
	<description>Background: Despite increased attention to double-jointedness or joint hypermobility as seen in connective tissue dysplasias like Ehlers&amp;amp;ndash;Danlos syndrome, improved clinical DNA correlations are needed to reduce decadal delays in diagnosis. Methods: To this end, patterns of history (among 80) and physical (among 40) findings are compared for 121 Ehlers&amp;amp;ndash;Danlos syndrome patients with recurring variants in collagen type I, II, III, V, VI, VII, IX, XI, and XII genes and novel ones in type XV, XVII, XVIII, and XXVII. Results: A recognizable tissue laxity&amp;amp;ndash;dysautonomia profile that transcended collagen biochemical class, triple helix component, mutation type, or presence of accessory DNA variants was defined with a few exceptions. Patients with novel variations experienced severe symptoms at younger ages (6&amp;amp;ndash;10 versus 14&amp;amp;ndash;18 years) and those with collagen type III variations had more than one significant difference in finding frequencies (spinal disk issues 75% versus 49%; bloating-reflux 100% versus 69%; migraines or menorrhagia 92% versus 53%). Conclusions: These results suggest that collagen DNA variants of diverse gene and molecular type can demonstrate EDS disposition and hasten its diagnosis when distress and disease become manifest.</description>
	<pubDate>2025-02-25</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 11: Similar Ehlers&amp;ndash;Danlos Syndrome Profiles Produced by Variants in Multiple Collagen Genes</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/1/11">doi: 10.3390/dna5010011</a></p>
	<p>Authors:
		Sahil S. Tonk
		Golder N. Wilson
		</p>
	<p>Background: Despite increased attention to double-jointedness or joint hypermobility as seen in connective tissue dysplasias like Ehlers&amp;amp;ndash;Danlos syndrome, improved clinical DNA correlations are needed to reduce decadal delays in diagnosis. Methods: To this end, patterns of history (among 80) and physical (among 40) findings are compared for 121 Ehlers&amp;amp;ndash;Danlos syndrome patients with recurring variants in collagen type I, II, III, V, VI, VII, IX, XI, and XII genes and novel ones in type XV, XVII, XVIII, and XXVII. Results: A recognizable tissue laxity&amp;amp;ndash;dysautonomia profile that transcended collagen biochemical class, triple helix component, mutation type, or presence of accessory DNA variants was defined with a few exceptions. Patients with novel variations experienced severe symptoms at younger ages (6&amp;amp;ndash;10 versus 14&amp;amp;ndash;18 years) and those with collagen type III variations had more than one significant difference in finding frequencies (spinal disk issues 75% versus 49%; bloating-reflux 100% versus 69%; migraines or menorrhagia 92% versus 53%). Conclusions: These results suggest that collagen DNA variants of diverse gene and molecular type can demonstrate EDS disposition and hasten its diagnosis when distress and disease become manifest.</p>
	]]></content:encoded>

	<dc:title>Similar Ehlers&amp;amp;ndash;Danlos Syndrome Profiles Produced by Variants in Multiple Collagen Genes</dc:title>
			<dc:creator>Sahil S. Tonk</dc:creator>
			<dc:creator>Golder N. Wilson</dc:creator>
		<dc:identifier>doi: 10.3390/dna5010011</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-02-25</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-02-25</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>1</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>11</prism:startingPage>
		<prism:doi>10.3390/dna5010011</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/1/11</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/1/10">

	<title>DNA, Vol. 5, Pages 10: Essays on the Binary Representations of the DNA Data</title>
	<link>https://www.mdpi.com/2673-8856/5/1/10</link>
	<description>The advancement of modern genomics has led to the large-scale industrial production of molecular data and scientific outcomes. Simultaneously, conventional DNA character alignments (sequence alignments) are utilized for DNA-based phylogenetic analyses without further recoding procedures or any a priori determination of character polarity, contrary to the requirements of foundations of phylogenetic systematics. These factors are the primary reasons why the binary perspective has not been implemented in modern molecular phylogenetics. In this study, we demonstrate how to recode conventional DNA data into various types of binary matrices, either unpolarized or with established polarity. Despite its historical foundation, our analytical approach to DNA sequence data has not been adequately explored since the inception of the molecular age. Binary representations of conventional DNA alignments allow for the analysis of molecular data from a purely comparative or static perspective. Furthermore, we show that the binarization of DNA data possesses broad mathematical and cultural connotations, making them intriguing regardless of their applications to different phylogenetic procedures.</description>
	<pubDate>2025-02-14</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 10: Essays on the Binary Representations of the DNA Data</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/1/10">doi: 10.3390/dna5010010</a></p>
	<p>Authors:
		Evgeny V. Mavrodiev
		Nicholas E. Mavrodiev
		</p>
	<p>The advancement of modern genomics has led to the large-scale industrial production of molecular data and scientific outcomes. Simultaneously, conventional DNA character alignments (sequence alignments) are utilized for DNA-based phylogenetic analyses without further recoding procedures or any a priori determination of character polarity, contrary to the requirements of foundations of phylogenetic systematics. These factors are the primary reasons why the binary perspective has not been implemented in modern molecular phylogenetics. In this study, we demonstrate how to recode conventional DNA data into various types of binary matrices, either unpolarized or with established polarity. Despite its historical foundation, our analytical approach to DNA sequence data has not been adequately explored since the inception of the molecular age. Binary representations of conventional DNA alignments allow for the analysis of molecular data from a purely comparative or static perspective. Furthermore, we show that the binarization of DNA data possesses broad mathematical and cultural connotations, making them intriguing regardless of their applications to different phylogenetic procedures.</p>
	]]></content:encoded>

	<dc:title>Essays on the Binary Representations of the DNA Data</dc:title>
			<dc:creator>Evgeny V. Mavrodiev</dc:creator>
			<dc:creator>Nicholas E. Mavrodiev</dc:creator>
		<dc:identifier>doi: 10.3390/dna5010010</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-02-14</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-02-14</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>1</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>10</prism:startingPage>
		<prism:doi>10.3390/dna5010010</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/1/10</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/1/9">

	<title>DNA, Vol. 5, Pages 9: Contribution of Androgen Receptor CAG Repeat Polymorphism to Human Reproduction</title>
	<link>https://www.mdpi.com/2673-8856/5/1/9</link>
	<description>Background: Exon 1 of the gene encoding for the androgen receptor (AR) contains a polymorphic sequence of variably repeated CAG triplets ranging from 11 to 36. The number of triplets appears to inversely correlate with receptor transcriptional activity, conditioning the peripheral effects of testosterone. Methods: We conducted a narrative review to explore the current evidence regarding the relationship between the number of CAG repeats and the human reproductive system. Results: We found several articles that investigate the relationship between CAG polymorphism and the male reproductive system, suggesting a possible modulatory effect on spermatogenesis, sexual function, prostate cancer, and testicular cancer. Similarly, in women, evidence has emerged to support a possible relationship between CAG repeat number and breast cancer, polycystic ovary syndrome (PCOS), and recurrent spontaneous abortions (RSAs). Unfortunately, the data in the current literature are largely discordant, largely due to an important influence of ethnicity on the variability of the CAG polymorphism, and partly due to the quality of the available studies. Conclusions: In the current state of the art, the study of CAG polymorphism does not have a sufficient literature base to allow its use in common clinical practice. However, it represents an interesting research target and, in the future, as new evidence emerges, it could help to elucidate some pathogenetic aspects of human reproductive disorders.</description>
	<pubDate>2025-02-08</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 9: Contribution of Androgen Receptor CAG Repeat Polymorphism to Human Reproduction</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/1/9">doi: 10.3390/dna5010009</a></p>
	<p>Authors:
		Alessandro Ciarloni
		Nicola delli Muti
		Nicola Ambo
		Michele Perrone
		Silvia Rossi
		Sara Sacco
		Gianmaria Salvio
		Giancarlo Balercia
		</p>
	<p>Background: Exon 1 of the gene encoding for the androgen receptor (AR) contains a polymorphic sequence of variably repeated CAG triplets ranging from 11 to 36. The number of triplets appears to inversely correlate with receptor transcriptional activity, conditioning the peripheral effects of testosterone. Methods: We conducted a narrative review to explore the current evidence regarding the relationship between the number of CAG repeats and the human reproductive system. Results: We found several articles that investigate the relationship between CAG polymorphism and the male reproductive system, suggesting a possible modulatory effect on spermatogenesis, sexual function, prostate cancer, and testicular cancer. Similarly, in women, evidence has emerged to support a possible relationship between CAG repeat number and breast cancer, polycystic ovary syndrome (PCOS), and recurrent spontaneous abortions (RSAs). Unfortunately, the data in the current literature are largely discordant, largely due to an important influence of ethnicity on the variability of the CAG polymorphism, and partly due to the quality of the available studies. Conclusions: In the current state of the art, the study of CAG polymorphism does not have a sufficient literature base to allow its use in common clinical practice. However, it represents an interesting research target and, in the future, as new evidence emerges, it could help to elucidate some pathogenetic aspects of human reproductive disorders.</p>
	]]></content:encoded>

	<dc:title>Contribution of Androgen Receptor CAG Repeat Polymorphism to Human Reproduction</dc:title>
			<dc:creator>Alessandro Ciarloni</dc:creator>
			<dc:creator>Nicola delli Muti</dc:creator>
			<dc:creator>Nicola Ambo</dc:creator>
			<dc:creator>Michele Perrone</dc:creator>
			<dc:creator>Silvia Rossi</dc:creator>
			<dc:creator>Sara Sacco</dc:creator>
			<dc:creator>Gianmaria Salvio</dc:creator>
			<dc:creator>Giancarlo Balercia</dc:creator>
		<dc:identifier>doi: 10.3390/dna5010009</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-02-08</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-02-08</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>1</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>9</prism:startingPage>
		<prism:doi>10.3390/dna5010009</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/1/9</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/1/8">

	<title>DNA, Vol. 5, Pages 8: Transcription Factor Inhibition as a Potential Additional Mechanism of Action of Pyrrolobenzodiazepine (PBD) Dimers</title>
	<link>https://www.mdpi.com/2673-8856/5/1/8</link>
	<description>Background: The pyrrolobenzodiazepine (PBD) dimer SJG-136 reached Phase II clinical trials in ovarian cancer and leukaemia in the UK and USA in the 2000s. Several structural analogues of SJG-136 are currently in clinical development as payloads for Antibody-Drug Conjugates (ADCs). There is growing evidence that PBDs exert their pharmacological effects through inhibition of transcription factors (TFs) in addition to arrest at the replication fork, DNA strand breakage, and inhibition of enzymes including endonucleases and RNA polymerases. Hence, PBDs can be used to target specific DNA sequences to inhibit TFs as a novel anticancer therapy. Objective: To explore the ability of SJG-136 to bind to the cognate sequences of transcription factors using a previously described HPLC/MS method, to obtain preliminary mechanistic evidence of its ability to inhibit transcription factors (TF), and to determine its effect on TF-dependent gene expression. Methods: An HPLC/MS method was used to assess the kinetics and thermodynamics of adduct formation between the PBD dimer SJG-136 and the cognate recognition sequence of the TFs NF-&amp;amp;kappa;B, EGR-1, AP-1, and STAT3. CD spectroscopy, molecular dynamics simulations, and gene expression analyses were used to rationalize the findings of the HPLC/MS study. Results: Notable differences in the rate and extent of adduct formation were observed with different DNA sequences, which might explain the variations in cytotoxicity of SJG-136 observed across different tumour cell lines. The differences in adduct formation result in variable downregulation of several STAT3-dependent genes in the human colon carcinoma cell line HT-29 and the human breast cancer cell line MDA-MB-231. Conclusions: SJG-136 can disrupt transcription factor-mediated gene expression, which contributes to its exceptional cytotoxicity in addition to the DNA-strand cleavage initiated by its ability to crosslink DNA.</description>
	<pubDate>2025-02-05</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 8: Transcription Factor Inhibition as a Potential Additional Mechanism of Action of Pyrrolobenzodiazepine (PBD) Dimers</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/1/8">doi: 10.3390/dna5010008</a></p>
	<p>Authors:
		Julia Mantaj
		Paul J. M. Jackson
		Richard B. Parsons
		Tam T. T. Bui
		David E. Thurston
		Khondaker Miraz Rahman
		</p>
	<p>Background: The pyrrolobenzodiazepine (PBD) dimer SJG-136 reached Phase II clinical trials in ovarian cancer and leukaemia in the UK and USA in the 2000s. Several structural analogues of SJG-136 are currently in clinical development as payloads for Antibody-Drug Conjugates (ADCs). There is growing evidence that PBDs exert their pharmacological effects through inhibition of transcription factors (TFs) in addition to arrest at the replication fork, DNA strand breakage, and inhibition of enzymes including endonucleases and RNA polymerases. Hence, PBDs can be used to target specific DNA sequences to inhibit TFs as a novel anticancer therapy. Objective: To explore the ability of SJG-136 to bind to the cognate sequences of transcription factors using a previously described HPLC/MS method, to obtain preliminary mechanistic evidence of its ability to inhibit transcription factors (TF), and to determine its effect on TF-dependent gene expression. Methods: An HPLC/MS method was used to assess the kinetics and thermodynamics of adduct formation between the PBD dimer SJG-136 and the cognate recognition sequence of the TFs NF-&amp;amp;kappa;B, EGR-1, AP-1, and STAT3. CD spectroscopy, molecular dynamics simulations, and gene expression analyses were used to rationalize the findings of the HPLC/MS study. Results: Notable differences in the rate and extent of adduct formation were observed with different DNA sequences, which might explain the variations in cytotoxicity of SJG-136 observed across different tumour cell lines. The differences in adduct formation result in variable downregulation of several STAT3-dependent genes in the human colon carcinoma cell line HT-29 and the human breast cancer cell line MDA-MB-231. Conclusions: SJG-136 can disrupt transcription factor-mediated gene expression, which contributes to its exceptional cytotoxicity in addition to the DNA-strand cleavage initiated by its ability to crosslink DNA.</p>
	]]></content:encoded>

	<dc:title>Transcription Factor Inhibition as a Potential Additional Mechanism of Action of Pyrrolobenzodiazepine (PBD) Dimers</dc:title>
			<dc:creator>Julia Mantaj</dc:creator>
			<dc:creator>Paul J. M. Jackson</dc:creator>
			<dc:creator>Richard B. Parsons</dc:creator>
			<dc:creator>Tam T. T. Bui</dc:creator>
			<dc:creator>David E. Thurston</dc:creator>
			<dc:creator>Khondaker Miraz Rahman</dc:creator>
		<dc:identifier>doi: 10.3390/dna5010008</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-02-05</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-02-05</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>1</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>8</prism:startingPage>
		<prism:doi>10.3390/dna5010008</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/1/8</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/1/7">

	<title>DNA, Vol. 5, Pages 7: Partial Proliferating Cell Nuclear Antigen Functional Knockout Impairs Cisplatin Resistance and Clonogenic Potential in Lung Adenocarcinoma Cells</title>
	<link>https://www.mdpi.com/2673-8856/5/1/7</link>
	<description>Background/Objectives: Lung cancer ranks as the leading cause of cancer-related deaths globally and is highly associated with cisplatin resistance due to both intrinsic and extrinsic mechanisms. Proliferating Cell Nuclear Antigen (PCNA) plays a critical role in molecular processes, such as DNA replication and repair, chromatin structure maintenance, and cell cycle progression. PCNA is known as a molecular marker for proliferation and an excellent inhibition target to shut down highly proliferative cells. One of the mechanisms of cisplatin resistance is the increase in DNA repair, and studies have reported an association between PCNA, lung cancer, and cisplatin treatment. The present study aimed to characterize the absence of PCNA in A549 lung adenocarcinoma cells. Methods: Employing a CRISPR/Cas9 gene-editing approach, we generated a monoclonal cell culture, termed PKO (PCNA knockout). Results: PKO cells exhibited a residual PCNA expression, significantly decreased clonogenic potential and ubiquitylation at K164 residue. IC50 assay suggested that PKO cells could not acquire cisplatin resistance when compared to PX. After cisplatin treatment, PKO cells presented impaired ubiquitylation and did not have increased STAT3 phosphorylation (Tyr705), a previously characterized mechanism of cisplatin resistance. Conclusions: We suggest that PCNA participates in cisplatin resistance in A549, partially by DNA damage tolerance through failure on PCNA monoubiquitylation, and its inhibition may be an approach to circumvent cisplatin resistance.</description>
	<pubDate>2025-02-02</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 7: Partial Proliferating Cell Nuclear Antigen Functional Knockout Impairs Cisplatin Resistance and Clonogenic Potential in Lung Adenocarcinoma Cells</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/1/7">doi: 10.3390/dna5010007</a></p>
	<p>Authors:
		Ana Paula Morelli
		Nathalia Quintero-Ruiz
		Mariana Camargo Silva Mancini
		Isadora Carolina Betim Pavan
		Isabelle Lima Flores
		Luiz Guilherme Salvino Silva
		Matheus Brandemarte Severino
		Rosangela Maria Neves Bezerra
		Fernando Moreira Simabuco
		</p>
	<p>Background/Objectives: Lung cancer ranks as the leading cause of cancer-related deaths globally and is highly associated with cisplatin resistance due to both intrinsic and extrinsic mechanisms. Proliferating Cell Nuclear Antigen (PCNA) plays a critical role in molecular processes, such as DNA replication and repair, chromatin structure maintenance, and cell cycle progression. PCNA is known as a molecular marker for proliferation and an excellent inhibition target to shut down highly proliferative cells. One of the mechanisms of cisplatin resistance is the increase in DNA repair, and studies have reported an association between PCNA, lung cancer, and cisplatin treatment. The present study aimed to characterize the absence of PCNA in A549 lung adenocarcinoma cells. Methods: Employing a CRISPR/Cas9 gene-editing approach, we generated a monoclonal cell culture, termed PKO (PCNA knockout). Results: PKO cells exhibited a residual PCNA expression, significantly decreased clonogenic potential and ubiquitylation at K164 residue. IC50 assay suggested that PKO cells could not acquire cisplatin resistance when compared to PX. After cisplatin treatment, PKO cells presented impaired ubiquitylation and did not have increased STAT3 phosphorylation (Tyr705), a previously characterized mechanism of cisplatin resistance. Conclusions: We suggest that PCNA participates in cisplatin resistance in A549, partially by DNA damage tolerance through failure on PCNA monoubiquitylation, and its inhibition may be an approach to circumvent cisplatin resistance.</p>
	]]></content:encoded>

	<dc:title>Partial Proliferating Cell Nuclear Antigen Functional Knockout Impairs Cisplatin Resistance and Clonogenic Potential in Lung Adenocarcinoma Cells</dc:title>
			<dc:creator>Ana Paula Morelli</dc:creator>
			<dc:creator>Nathalia Quintero-Ruiz</dc:creator>
			<dc:creator>Mariana Camargo Silva Mancini</dc:creator>
			<dc:creator>Isadora Carolina Betim Pavan</dc:creator>
			<dc:creator>Isabelle Lima Flores</dc:creator>
			<dc:creator>Luiz Guilherme Salvino Silva</dc:creator>
			<dc:creator>Matheus Brandemarte Severino</dc:creator>
			<dc:creator>Rosangela Maria Neves Bezerra</dc:creator>
			<dc:creator>Fernando Moreira Simabuco</dc:creator>
		<dc:identifier>doi: 10.3390/dna5010007</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-02-02</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-02-02</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>1</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>7</prism:startingPage>
		<prism:doi>10.3390/dna5010007</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/1/7</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/1/6">

	<title>DNA, Vol. 5, Pages 6: The Evolutionary Reasons of Epigenetics</title>
	<link>https://www.mdpi.com/2673-8856/5/1/6</link>
	<description>Epigenetic modifications affecting DNA, RNA, and proteins can alter the functional state of a gene and heavily interfere with gene expression. These processes are typically transient, and the predominant form of inheritance is mitotic, with a small fraction of transgenerational modifications. It is therefore reasonable to ask what forces drive this acquisition in living beings, where certain variations in phenotype do not correspond to changes in the DNA sequence.</description>
	<pubDate>2025-01-30</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 6: The Evolutionary Reasons of Epigenetics</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/1/6">doi: 10.3390/dna5010006</a></p>
	<p>Authors:
		Giorgio Camilloni
		</p>
	<p>Epigenetic modifications affecting DNA, RNA, and proteins can alter the functional state of a gene and heavily interfere with gene expression. These processes are typically transient, and the predominant form of inheritance is mitotic, with a small fraction of transgenerational modifications. It is therefore reasonable to ask what forces drive this acquisition in living beings, where certain variations in phenotype do not correspond to changes in the DNA sequence.</p>
	]]></content:encoded>

	<dc:title>The Evolutionary Reasons of Epigenetics</dc:title>
			<dc:creator>Giorgio Camilloni</dc:creator>
		<dc:identifier>doi: 10.3390/dna5010006</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-01-30</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-01-30</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>1</prism:number>
	<prism:section>Perspective</prism:section>
	<prism:startingPage>6</prism:startingPage>
		<prism:doi>10.3390/dna5010006</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/1/6</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/1/5">

	<title>DNA, Vol. 5, Pages 5: MafB Transcription Factor Involved in IRD-Induced AKI (Acute Kidney Injury) Phenotype Attenuation and Inflammation Resolution</title>
	<link>https://www.mdpi.com/2673-8856/5/1/5</link>
	<description>In this research, we induced acute kidney injury (AKI) by ischemia-reperfusion injury (IRI), one of its main causes. Then, we assessed kidney dysfunction by CRE (creatinine)/BUN (serum blood urea nitrogen) levels and histological analysis. Surprisingly, kidney macrophages, initially not expressing MafB and c-Maf, expressed both of them 48 h after bilateral ischemia renal disease (double IRD; dIRD), supporting their possible roles in the disease. We speculated that the M2 macrophages involved in AKI repair might be the source of MafB and c-Maf after injury and that these two transcription factors could have a significant role in the disease. Considering that IL-4/IL-13-induced M2a is the main contributor to AKI recovery and that MafB is upregulated under the effect of these two cytokines combined, we chose to focus on MafB analysis and aimed to examine its potential role in IRD. Previous studies have not examined the role of MafB in ischemic renal disease (IRD). In this study, we demonstrated a significant loss of brush borders, accumulation of intraluminal debris, and extensive damage to the anatomical structure of the MafBf/f::Lys-Cre mice kidneys compared to their littermates, MafBf/f, which are considered as a negative control in the entire paper. This was marked by the enlarged tubules, a significant decrease in mature macrophages (F4/80+ cells), and, therefore, worsening of the disease in the absence of MafB and delay/failure of the early signs of ischemia recovery. Importantly, these MafB cKO mice presented higher mortality, caused by the abrogation of the intraluminal debris clearance, and died after 48 h from IRD, suggesting the involvement of MafB in the signaling pathway of this pathology. Therefore, we found evidence that MafB attenuates IRD.</description>
	<pubDate>2025-01-17</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 5: MafB Transcription Factor Involved in IRD-Induced AKI (Acute Kidney Injury) Phenotype Attenuation and Inflammation Resolution</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/1/5">doi: 10.3390/dna5010005</a></p>
	<p>Authors:
		Dhouha Daassi
		</p>
	<p>In this research, we induced acute kidney injury (AKI) by ischemia-reperfusion injury (IRI), one of its main causes. Then, we assessed kidney dysfunction by CRE (creatinine)/BUN (serum blood urea nitrogen) levels and histological analysis. Surprisingly, kidney macrophages, initially not expressing MafB and c-Maf, expressed both of them 48 h after bilateral ischemia renal disease (double IRD; dIRD), supporting their possible roles in the disease. We speculated that the M2 macrophages involved in AKI repair might be the source of MafB and c-Maf after injury and that these two transcription factors could have a significant role in the disease. Considering that IL-4/IL-13-induced M2a is the main contributor to AKI recovery and that MafB is upregulated under the effect of these two cytokines combined, we chose to focus on MafB analysis and aimed to examine its potential role in IRD. Previous studies have not examined the role of MafB in ischemic renal disease (IRD). In this study, we demonstrated a significant loss of brush borders, accumulation of intraluminal debris, and extensive damage to the anatomical structure of the MafBf/f::Lys-Cre mice kidneys compared to their littermates, MafBf/f, which are considered as a negative control in the entire paper. This was marked by the enlarged tubules, a significant decrease in mature macrophages (F4/80+ cells), and, therefore, worsening of the disease in the absence of MafB and delay/failure of the early signs of ischemia recovery. Importantly, these MafB cKO mice presented higher mortality, caused by the abrogation of the intraluminal debris clearance, and died after 48 h from IRD, suggesting the involvement of MafB in the signaling pathway of this pathology. Therefore, we found evidence that MafB attenuates IRD.</p>
	]]></content:encoded>

	<dc:title>MafB Transcription Factor Involved in IRD-Induced AKI (Acute Kidney Injury) Phenotype Attenuation and Inflammation Resolution</dc:title>
			<dc:creator>Dhouha Daassi</dc:creator>
		<dc:identifier>doi: 10.3390/dna5010005</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-01-17</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-01-17</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>1</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>5</prism:startingPage>
		<prism:doi>10.3390/dna5010005</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/1/5</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/1/4">

	<title>DNA, Vol. 5, Pages 4: Outcomes of Broader Genomic Profiling in Metastatic Colorectal Cancer: A Portuguese Cohort Study</title>
	<link>https://www.mdpi.com/2673-8856/5/1/4</link>
	<description>Background: Colorectal cancer (CRC) is the third most diagnosed cancer globally and the second leading cause of cancer-related deaths. Despite advancements, metastatic CRC (mCRC) has a five-year survival rate below 20%. Next-generation sequencing (NGS) is recommended nowadays to guide mCRC treatment; however, its clinical utility when compared with traditional molecular testing in mCRC is debated due to limited survival improvement and cost-effectiveness concerns. Methods: This retrospective study included mCRC patients (&amp;amp;ge;18 years) treated at a single oncology centre who underwent NGS during treatment planning. Tumour samples were analysed using either a 52-gene Oncomine&amp;amp;trade; Focus Assay or a 500+-gene Oncomine&amp;amp;trade; Comprehensive Assay Plus. Variants were classified by clinical significance (ESMO ESCAT) and potential benefit (ESMO-MCBS and OncoKBTM). The Mann&amp;amp;ndash;Whitney and Chi square tests were used to compare characteristics of different groups, with significance at p &amp;amp;lt; 0.05. Results: Eighty-six metastatic colorectal cancer (mCRC) patients were analysed, all being MMR proficient. Most cases (73.3%) underwent sequencing at diagnosis of metastatic disease, using primary tumour samples (74.4%) and a focused NGS assay (75.6%). A total of 206 somatic variants were detected in 86.0% of patients, 31.1% of which were classified as clinically significant, predominantly KRAS mutations (76.6%), with G12D and G12V variants as the most frequent. Among 33.7% RAS/BRAF wild-type patients, 65.5% received anti-EGFR therapies. Eleven patients (12.8%) had other actionable variants which were ESCAT level I-II, including four identified as TMB-high, four KRAS G12C, two BRAF V600E, and one HER2 amplification. Four received therapies classified as OncoKbTM level 1&amp;amp;ndash;2 and ESMO-MCBS score 4, leading to disease control in three cases. Conclusions: NGS enables the detection of rare variants, supports personalised treatments, and expands therapeutic options. As new drugs emerge and genomic data integration improves, NGS is poised to enhance real-world mCRC management.</description>
	<pubDate>2025-01-14</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 4: Outcomes of Broader Genomic Profiling in Metastatic Colorectal Cancer: A Portuguese Cohort Study</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/1/4">doi: 10.3390/dna5010004</a></p>
	<p>Authors:
		Ricardo Roque
		Rita Santos
		Luís Guilherme Santos
		Rita Coelho
		Isabel Fernandes
		Gonçalo Cunha
		Marta Gonçalves
		Teresa Fraga
		Judy Paulo
		Nuno Bonito
		</p>
	<p>Background: Colorectal cancer (CRC) is the third most diagnosed cancer globally and the second leading cause of cancer-related deaths. Despite advancements, metastatic CRC (mCRC) has a five-year survival rate below 20%. Next-generation sequencing (NGS) is recommended nowadays to guide mCRC treatment; however, its clinical utility when compared with traditional molecular testing in mCRC is debated due to limited survival improvement and cost-effectiveness concerns. Methods: This retrospective study included mCRC patients (&amp;amp;ge;18 years) treated at a single oncology centre who underwent NGS during treatment planning. Tumour samples were analysed using either a 52-gene Oncomine&amp;amp;trade; Focus Assay or a 500+-gene Oncomine&amp;amp;trade; Comprehensive Assay Plus. Variants were classified by clinical significance (ESMO ESCAT) and potential benefit (ESMO-MCBS and OncoKBTM). The Mann&amp;amp;ndash;Whitney and Chi square tests were used to compare characteristics of different groups, with significance at p &amp;amp;lt; 0.05. Results: Eighty-six metastatic colorectal cancer (mCRC) patients were analysed, all being MMR proficient. Most cases (73.3%) underwent sequencing at diagnosis of metastatic disease, using primary tumour samples (74.4%) and a focused NGS assay (75.6%). A total of 206 somatic variants were detected in 86.0% of patients, 31.1% of which were classified as clinically significant, predominantly KRAS mutations (76.6%), with G12D and G12V variants as the most frequent. Among 33.7% RAS/BRAF wild-type patients, 65.5% received anti-EGFR therapies. Eleven patients (12.8%) had other actionable variants which were ESCAT level I-II, including four identified as TMB-high, four KRAS G12C, two BRAF V600E, and one HER2 amplification. Four received therapies classified as OncoKbTM level 1&amp;amp;ndash;2 and ESMO-MCBS score 4, leading to disease control in three cases. Conclusions: NGS enables the detection of rare variants, supports personalised treatments, and expands therapeutic options. As new drugs emerge and genomic data integration improves, NGS is poised to enhance real-world mCRC management.</p>
	]]></content:encoded>

	<dc:title>Outcomes of Broader Genomic Profiling in Metastatic Colorectal Cancer: A Portuguese Cohort Study</dc:title>
			<dc:creator>Ricardo Roque</dc:creator>
			<dc:creator>Rita Santos</dc:creator>
			<dc:creator>Luís Guilherme Santos</dc:creator>
			<dc:creator>Rita Coelho</dc:creator>
			<dc:creator>Isabel Fernandes</dc:creator>
			<dc:creator>Gonçalo Cunha</dc:creator>
			<dc:creator>Marta Gonçalves</dc:creator>
			<dc:creator>Teresa Fraga</dc:creator>
			<dc:creator>Judy Paulo</dc:creator>
			<dc:creator>Nuno Bonito</dc:creator>
		<dc:identifier>doi: 10.3390/dna5010004</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-01-14</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-01-14</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>1</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>4</prism:startingPage>
		<prism:doi>10.3390/dna5010004</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/1/4</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/1/3">

	<title>DNA, Vol. 5, Pages 3: Targeting Thyroid Hormone Receptor Interacting Protein (TRIP13) for Cancer Therapy: A Promising Approach</title>
	<link>https://www.mdpi.com/2673-8856/5/1/3</link>
	<description>TRIP13 is a member of the large AAA+ ATPase protein superfamily that plays a crucial role in the precise segregation of chromosomes during mitosis. The abnormal function of TRIP13 has diverse functions, including mitotic processes, DNA repair pathways, and spindle assembly checkpoints, which may contribute to chromosomal instability (CIN). Emerging evidence suggests that the overexpression of TRIP13, observed in many cancers, plays a significant role in drug resistance, autophagy, and immune invasion. Recently, significant advances have been made in identifying TRIP13-associated signaling pathways that have been implicated in cancer progression. Several small molecules that specifically inhibit TRIP13 function and reduce cancer cell growth have been developed. Combination treatments, including TRIP13 inhibitors and other anticancer drugs, have shown promising results. While these findings are promising, TRIP13 inhibitors are awaiting clinical trials. This review discusses recent progress in understanding the oncogenic function of TRIP13 and its possible therapeutic targets, which could be exploited as an attractive option for cancer management.</description>
	<pubDate>2025-01-06</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 3: Targeting Thyroid Hormone Receptor Interacting Protein (TRIP13) for Cancer Therapy: A Promising Approach</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/1/3">doi: 10.3390/dna5010003</a></p>
	<p>Authors:
		Surya P. Singh
		Krishnendu Goswami
		Gopal Pathuri
		Chinthalapally V. Rao
		Venkateshwar Madka
		</p>
	<p>TRIP13 is a member of the large AAA+ ATPase protein superfamily that plays a crucial role in the precise segregation of chromosomes during mitosis. The abnormal function of TRIP13 has diverse functions, including mitotic processes, DNA repair pathways, and spindle assembly checkpoints, which may contribute to chromosomal instability (CIN). Emerging evidence suggests that the overexpression of TRIP13, observed in many cancers, plays a significant role in drug resistance, autophagy, and immune invasion. Recently, significant advances have been made in identifying TRIP13-associated signaling pathways that have been implicated in cancer progression. Several small molecules that specifically inhibit TRIP13 function and reduce cancer cell growth have been developed. Combination treatments, including TRIP13 inhibitors and other anticancer drugs, have shown promising results. While these findings are promising, TRIP13 inhibitors are awaiting clinical trials. This review discusses recent progress in understanding the oncogenic function of TRIP13 and its possible therapeutic targets, which could be exploited as an attractive option for cancer management.</p>
	]]></content:encoded>

	<dc:title>Targeting Thyroid Hormone Receptor Interacting Protein (TRIP13) for Cancer Therapy: A Promising Approach</dc:title>
			<dc:creator>Surya P. Singh</dc:creator>
			<dc:creator>Krishnendu Goswami</dc:creator>
			<dc:creator>Gopal Pathuri</dc:creator>
			<dc:creator>Chinthalapally V. Rao</dc:creator>
			<dc:creator>Venkateshwar Madka</dc:creator>
		<dc:identifier>doi: 10.3390/dna5010003</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-01-06</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-01-06</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>1</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>3</prism:startingPage>
		<prism:doi>10.3390/dna5010003</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/1/3</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/1/2">

	<title>DNA, Vol. 5, Pages 2: Preliminary Results of Reduced Polymerase Chain Reaction (PCR) Volumes When Analysing Low Template DNA Samples with Globalfiler&amp;trade; and Yfiler&amp;trade; Plus Kits</title>
	<link>https://www.mdpi.com/2673-8856/5/1/2</link>
	<description>Background/Objectives: One of the significant challenges in forensic casework is the analysis of samples with degraded or poorly concentrated genetic material. The utilisation of the GlobalFiler&amp;amp;trade; and Yfiler Plus&amp;amp;trade; kits has unquestionably enhanced the efficacy of genetic profiling in challenging samples, facilitating the analysis of alleles that were previously undetectable with alternative kits. Therefore, the main objective of this work was to verify the efficiency of these kits in analysing forensic samples, progressively reducing the amplification volumes. To further optimise genetic profiling, it was essential not only to assess the behaviour of the alleles but also to prevent allelic loss. Methods: A series of reaction volume reduction studies were conducted, evaluating the performance of genetic profiles in both controlled samples (positive controls) and low template DNA samples (0.01 ng/&amp;amp;micro;L). Results: The results demonstrate that it is effective to obtain complete genetic profiles from the amplification of optimal samples in reduced volumes of 12, 6 or 3 &amp;amp;micro;L with GlobalFiler&amp;amp;trade; and Yfiler&amp;amp;trade; Plus. Conclusions: The limiting factor in obtaining complete genetic profiles is the amount of DNA available, rather than the amplification volume. Furthermore, reducing the amplification volume from DNA extracts of low template DNA samples proportionally increases the number of allelic dropouts.</description>
	<pubDate>2025-01-01</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 2: Preliminary Results of Reduced Polymerase Chain Reaction (PCR) Volumes When Analysing Low Template DNA Samples with Globalfiler&amp;trade; and Yfiler&amp;trade; Plus Kits</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/1/2">doi: 10.3390/dna5010002</a></p>
	<p>Authors:
		Jesús Martínez-Gómez
		Sheila Laso-Izquierdo
		Araceli Vera-Yánez
		José Juan Fernández-Serrano
		Cláudia Gomes
		</p>
	<p>Background/Objectives: One of the significant challenges in forensic casework is the analysis of samples with degraded or poorly concentrated genetic material. The utilisation of the GlobalFiler&amp;amp;trade; and Yfiler Plus&amp;amp;trade; kits has unquestionably enhanced the efficacy of genetic profiling in challenging samples, facilitating the analysis of alleles that were previously undetectable with alternative kits. Therefore, the main objective of this work was to verify the efficiency of these kits in analysing forensic samples, progressively reducing the amplification volumes. To further optimise genetic profiling, it was essential not only to assess the behaviour of the alleles but also to prevent allelic loss. Methods: A series of reaction volume reduction studies were conducted, evaluating the performance of genetic profiles in both controlled samples (positive controls) and low template DNA samples (0.01 ng/&amp;amp;micro;L). Results: The results demonstrate that it is effective to obtain complete genetic profiles from the amplification of optimal samples in reduced volumes of 12, 6 or 3 &amp;amp;micro;L with GlobalFiler&amp;amp;trade; and Yfiler&amp;amp;trade; Plus. Conclusions: The limiting factor in obtaining complete genetic profiles is the amount of DNA available, rather than the amplification volume. Furthermore, reducing the amplification volume from DNA extracts of low template DNA samples proportionally increases the number of allelic dropouts.</p>
	]]></content:encoded>

	<dc:title>Preliminary Results of Reduced Polymerase Chain Reaction (PCR) Volumes When Analysing Low Template DNA Samples with Globalfiler&amp;amp;trade; and Yfiler&amp;amp;trade; Plus Kits</dc:title>
			<dc:creator>Jesús Martínez-Gómez</dc:creator>
			<dc:creator>Sheila Laso-Izquierdo</dc:creator>
			<dc:creator>Araceli Vera-Yánez</dc:creator>
			<dc:creator>José Juan Fernández-Serrano</dc:creator>
			<dc:creator>Cláudia Gomes</dc:creator>
		<dc:identifier>doi: 10.3390/dna5010002</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-01-01</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-01-01</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>1</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>2</prism:startingPage>
		<prism:doi>10.3390/dna5010002</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/1/2</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/5/1/1">

	<title>DNA, Vol. 5, Pages 1: Generation of Cas9 Knock-In Culex quinquefasciatus Mosquito Cells</title>
	<link>https://www.mdpi.com/2673-8856/5/1/1</link>
	<description>Background/Objectives: Culex species mosquitoes are globally distributed and transmit several pathogens that impact animal and public health, including West Nile virus, Usutu virus, and Plasmodium relictum. Despite their relevance, Culex species are less widely studied than Aedes and Anopheles mosquitoes. To expand the genetic tools used to study Culex mosquitoes, we previously developed an optimized plasmid for transient Cas9 and single-guide RNA (sgRNA) expression in Culex quinquefasciatus cells to generate gene knockouts. Here, we established a monoclonal cell line that consistently expresses Cas9 and can be used for screens to determine gene function or antiviral activity. Methods: We used this system to perform the successful gene editing of seven genes and subsequent testing for potential antiviral effects, using a simple single-guide RNA (sgRNA) transfection and subsequent virus infection. Results: We were able to show antiviral effects for the Cx. quinquefasciatus genes dicer-2, argonaute-2b, vago, piwi5, piwi6a, and cullin4a. In comparison to the RNAi-mediated gene silencing of dicer-2, argonaute-2b, and piwi5, our Cas9/sgRNA approach showed an enhanced ability to detect antiviral effects. Conclusions: We propose that this cell line offers a new tool for studying gene function in Cx. quinquefasciatus mosquitoes that avoids the use of RNAi. This short study also serves as a proof-of-concept for future gene knock-ins in these cells. Our cell line expands the molecular resources available for vector competence research and will support the design of future research strategies to reduce the transmission of mosquito-borne diseases.</description>
	<pubDate>2025-01-01</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 5, Pages 1: Generation of Cas9 Knock-In Culex quinquefasciatus Mosquito Cells</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/5/1/1">doi: 10.3390/dna5010001</a></p>
	<p>Authors:
		Elizabeth Walsh
		Tran Zen B. Torres
		Brian C. Prince
		Claudia Rückert
		</p>
	<p>Background/Objectives: Culex species mosquitoes are globally distributed and transmit several pathogens that impact animal and public health, including West Nile virus, Usutu virus, and Plasmodium relictum. Despite their relevance, Culex species are less widely studied than Aedes and Anopheles mosquitoes. To expand the genetic tools used to study Culex mosquitoes, we previously developed an optimized plasmid for transient Cas9 and single-guide RNA (sgRNA) expression in Culex quinquefasciatus cells to generate gene knockouts. Here, we established a monoclonal cell line that consistently expresses Cas9 and can be used for screens to determine gene function or antiviral activity. Methods: We used this system to perform the successful gene editing of seven genes and subsequent testing for potential antiviral effects, using a simple single-guide RNA (sgRNA) transfection and subsequent virus infection. Results: We were able to show antiviral effects for the Cx. quinquefasciatus genes dicer-2, argonaute-2b, vago, piwi5, piwi6a, and cullin4a. In comparison to the RNAi-mediated gene silencing of dicer-2, argonaute-2b, and piwi5, our Cas9/sgRNA approach showed an enhanced ability to detect antiviral effects. Conclusions: We propose that this cell line offers a new tool for studying gene function in Cx. quinquefasciatus mosquitoes that avoids the use of RNAi. This short study also serves as a proof-of-concept for future gene knock-ins in these cells. Our cell line expands the molecular resources available for vector competence research and will support the design of future research strategies to reduce the transmission of mosquito-borne diseases.</p>
	]]></content:encoded>

	<dc:title>Generation of Cas9 Knock-In Culex quinquefasciatus Mosquito Cells</dc:title>
			<dc:creator>Elizabeth Walsh</dc:creator>
			<dc:creator>Tran Zen B. Torres</dc:creator>
			<dc:creator>Brian C. Prince</dc:creator>
			<dc:creator>Claudia Rückert</dc:creator>
		<dc:identifier>doi: 10.3390/dna5010001</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2025-01-01</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2025-01-01</prism:publicationDate>
	<prism:volume>5</prism:volume>
	<prism:number>1</prism:number>
	<prism:section>Communication</prism:section>
	<prism:startingPage>1</prism:startingPage>
		<prism:doi>10.3390/dna5010001</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/5/1/1</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/4/4/38">

	<title>DNA, Vol. 4, Pages 582-598: Uncovering Key Transcription Factors Driving Chilling Stress Tolerance in Rice Germination</title>
	<link>https://www.mdpi.com/2673-8856/4/4/38</link>
	<description>Background: Rice, one of the main foods in Brazil and the world, is sensitive to chilling (0&amp;amp;ndash;15 &amp;amp;deg;C), especially in the germination and reproductive stages. Chilling causes delayed germination and affects coleoptile elongation at the S3 stage (needlepoint), causing poor plant establishment, stunted growth, and non-vigorous plants, also impacting weed management. Elucidating the mechanisms responsible for resilience under cold conditions helps the development of tolerant cultivars. Transcription factors (TFs) act in stress response signaling, making them indispensable in the tolerance mechanism. Objective: Thus, this study aimed to identify and characterize the expression profile of transcription factors in the response to chilling stress in rice at the germination stage. Methods: To determine the transcriptional profile of 2408 genes belonging to 56 TF families, RNAseq was performed on the shoot tissue of seedlings of Oro (chilling-tolerant) and Tio Taka (chilling-sensitive) genotypes grown under control conditions (25 &amp;amp;deg;C) and chilling stress (13 &amp;amp;deg;C) until the S3 stage. Results: Of the total genes analyzed, 22% showed significant differential expression in the analyzed cultivars. There were 117 genes that showed significant differential expression in the tolerant cultivar, 60 of which were downregulated and 57 upregulated. In the sensitive cultivar, 248 genes had a significant differential expression, of which 98 genes were downregulated and 150 genes were upregulated. A total of 170 genes encoding TFs were commonly and significantly differentially expressed in the tolerant and sensitive genotypes. Conclusions: Here, we revealed potential new targets involved in the regulation of chilling stress in rice at the S3 stage.</description>
	<pubDate>2024-12-16</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 4, Pages 582-598: Uncovering Key Transcription Factors Driving Chilling Stress Tolerance in Rice Germination</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/4/4/38">doi: 10.3390/dna4040038</a></p>
	<p>Authors:
		Vívian Ebeling Viana
		Camila Pegoraro
		Viviane Kopp da Luz
		Antonio Costa de Oliveira
		Luciano Carlos da Maia
		</p>
	<p>Background: Rice, one of the main foods in Brazil and the world, is sensitive to chilling (0&amp;amp;ndash;15 &amp;amp;deg;C), especially in the germination and reproductive stages. Chilling causes delayed germination and affects coleoptile elongation at the S3 stage (needlepoint), causing poor plant establishment, stunted growth, and non-vigorous plants, also impacting weed management. Elucidating the mechanisms responsible for resilience under cold conditions helps the development of tolerant cultivars. Transcription factors (TFs) act in stress response signaling, making them indispensable in the tolerance mechanism. Objective: Thus, this study aimed to identify and characterize the expression profile of transcription factors in the response to chilling stress in rice at the germination stage. Methods: To determine the transcriptional profile of 2408 genes belonging to 56 TF families, RNAseq was performed on the shoot tissue of seedlings of Oro (chilling-tolerant) and Tio Taka (chilling-sensitive) genotypes grown under control conditions (25 &amp;amp;deg;C) and chilling stress (13 &amp;amp;deg;C) until the S3 stage. Results: Of the total genes analyzed, 22% showed significant differential expression in the analyzed cultivars. There were 117 genes that showed significant differential expression in the tolerant cultivar, 60 of which were downregulated and 57 upregulated. In the sensitive cultivar, 248 genes had a significant differential expression, of which 98 genes were downregulated and 150 genes were upregulated. A total of 170 genes encoding TFs were commonly and significantly differentially expressed in the tolerant and sensitive genotypes. Conclusions: Here, we revealed potential new targets involved in the regulation of chilling stress in rice at the S3 stage.</p>
	]]></content:encoded>

	<dc:title>Uncovering Key Transcription Factors Driving Chilling Stress Tolerance in Rice Germination</dc:title>
			<dc:creator>Vívian Ebeling Viana</dc:creator>
			<dc:creator>Camila Pegoraro</dc:creator>
			<dc:creator>Viviane Kopp da Luz</dc:creator>
			<dc:creator>Antonio Costa de Oliveira</dc:creator>
			<dc:creator>Luciano Carlos da Maia</dc:creator>
		<dc:identifier>doi: 10.3390/dna4040038</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2024-12-16</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2024-12-16</prism:publicationDate>
	<prism:volume>4</prism:volume>
	<prism:number>4</prism:number>
	<prism:section>Article</prism:section>
	<prism:startingPage>582</prism:startingPage>
		<prism:doi>10.3390/dna4040038</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/4/4/38</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
        <item rdf:about="https://www.mdpi.com/2673-8856/4/4/37">

	<title>DNA, Vol. 4, Pages 553-581: DNA-Based Technology for Herpesvirus Detection</title>
	<link>https://www.mdpi.com/2673-8856/4/4/37</link>
	<description>The detection of viral DNA is considered crucial in both diagnosis and prognosis. Nowadays, molecular diagnostic approaches represent the most promising tools for the clinical detection of viral infections. This review aims to investigate the most used and promising DNA-based technologies for viral detection, focusing on herpesviruses because of their ability to undergo latent and reactivation cycles, persisting lifelong in the host in association with several diseases. Molecular technologies, such as PCR-based assays, enhance sensitivity and specificity in identifying viral DNA from clinical samples such as blood, cerebrospinal fluid and saliva, indicating PCR and its derivatives as the gold standard methods for herpesvirus detection. In conclusion, this review underscores the need for continuous innovation in diagnostic methodologies to address the complexities of herpesvirus identification in different clinical samples.</description>
	<pubDate>2024-12-13</pubDate>

	<content:encoded><![CDATA[
	<p><b>DNA, Vol. 4, Pages 553-581: DNA-Based Technology for Herpesvirus Detection</b></p>
	<p>DNA <a href="https://www.mdpi.com/2673-8856/4/4/37">doi: 10.3390/dna4040037</a></p>
	<p>Authors:
		Gloria Maini
		Giorgia Cianci
		Matteo Ferraresi
		Valentina Gentili
		Daria Bortolotti
		</p>
	<p>The detection of viral DNA is considered crucial in both diagnosis and prognosis. Nowadays, molecular diagnostic approaches represent the most promising tools for the clinical detection of viral infections. This review aims to investigate the most used and promising DNA-based technologies for viral detection, focusing on herpesviruses because of their ability to undergo latent and reactivation cycles, persisting lifelong in the host in association with several diseases. Molecular technologies, such as PCR-based assays, enhance sensitivity and specificity in identifying viral DNA from clinical samples such as blood, cerebrospinal fluid and saliva, indicating PCR and its derivatives as the gold standard methods for herpesvirus detection. In conclusion, this review underscores the need for continuous innovation in diagnostic methodologies to address the complexities of herpesvirus identification in different clinical samples.</p>
	]]></content:encoded>

	<dc:title>DNA-Based Technology for Herpesvirus Detection</dc:title>
			<dc:creator>Gloria Maini</dc:creator>
			<dc:creator>Giorgia Cianci</dc:creator>
			<dc:creator>Matteo Ferraresi</dc:creator>
			<dc:creator>Valentina Gentili</dc:creator>
			<dc:creator>Daria Bortolotti</dc:creator>
		<dc:identifier>doi: 10.3390/dna4040037</dc:identifier>
	<dc:source>DNA</dc:source>
	<dc:date>2024-12-13</dc:date>

	<prism:publicationName>DNA</prism:publicationName>
	<prism:publicationDate>2024-12-13</prism:publicationDate>
	<prism:volume>4</prism:volume>
	<prism:number>4</prism:number>
	<prism:section>Review</prism:section>
	<prism:startingPage>553</prism:startingPage>
		<prism:doi>10.3390/dna4040037</prism:doi>
	<prism:url>https://www.mdpi.com/2673-8856/4/4/37</prism:url>
	
	<cc:license rdf:resource="CC BY 4.0"/>
</item>
    
<cc:License rdf:about="https://creativecommons.org/licenses/by/4.0/">
	<cc:permits rdf:resource="https://creativecommons.org/ns#Reproduction" />
	<cc:permits rdf:resource="https://creativecommons.org/ns#Distribution" />
	<cc:permits rdf:resource="https://creativecommons.org/ns#DerivativeWorks" />
</cc:License>

</rdf:RDF>
