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Search Results (452)

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Keywords = copy number variation (CNV)

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17 pages, 810 KB  
Article
Next-Generation Sequencing Refines Diagnosis and Expands Precision Medicine Opportunities in Soft Tissue Sarcomas
by Francine Tesser-Gamba, Thais Biude Mendes, Fernanda Teresa Lima, Simone de Campos Vieira Abib, Eliana Maria Monteiro Caran and Silvia Regina Caminada de Toledo
Int. J. Mol. Sci. 2026, 27(16), 7201; https://doi.org/10.3390/ijms27167201 - 12 Aug 2026
Viewed by 180
Abstract
Soft tissue sarcomas (STSs) are a heterogeneous group of rare mesenchymal malignancies with overlapping morphological and immunohistochemical features, often making definitive diagnosis challenging. Recent advances in next-generation sequencing (NGS) have enabled the identification of recurrent molecular alterations that contribute to tumor classification, prognostic [...] Read more.
Soft tissue sarcomas (STSs) are a heterogeneous group of rare mesenchymal malignancies with overlapping morphological and immunohistochemical features, often making definitive diagnosis challenging. Recent advances in next-generation sequencing (NGS) have enabled the identification of recurrent molecular alterations that contribute to tumor classification, prognostic stratification, and precision oncology approaches. This retrospective study aimed to evaluate the diagnostic and clinical impact of molecular profiling in pediatric soft tissue sarcomas using the Oncomine Childhood Cancer Research Assay (OCCRA) panel. Fifty-five frozen tumor samples representing 24 distinct soft tissue sarcoma subtypes were obtained from the Pediatric Oncology Institute -IOP/GRAACC/UNIFESP Biobank (B-053). Molecular analysis was performed using NGS to identify gene fusions, single nucleotide variants (SNVs), copy number variations (CNVs), and insertions/deletions (InDels). Clinically relevant molecular alterations were identified in 70% (37/55) of cases, including 18 fusion transcripts, 13 SNVs, 8 CNVs, and 6 InDels. Recurrent and diagnostically relevant alterations included BCOR::CCNB3, ASPSCR1::TFE3, NFR1::BRAF, FUS::DDIT3, EML4::NTRK3, ETV6::NTRK3, CIC::DUX4, NAB2::STAT6 and SS18::SSX1/2 fusions, as well as amplifications involving PDGFRA, FGFR1, GLI1, CDK4, ERBB3, and KIT. Pathogenic variants affecting genes involved in tumor suppression and chromatin remodeling, including TP53, NF1, DICER1, SMARCA4, PTEN, and PIK3CA, were also detected. Importantly, molecular profiling had significant diagnostic impact in several histologically ambiguous tumors, enabling molecular reclassification and refinement of previously inconclusive or inaccurate pathological diagnoses. In multiple cases, NGS transformed descriptive histopathological interpretations into genetically defined sarcoma entities, including NTRK-rearranged spindle cell neoplasms, CIC-rearranged sarcomas, synovial sarcoma, low-grade fibromyxoid sarcoma, and clear cell sarcoma. Furthermore, the identification of actionable alterations highlighted potential opportunities for targeted therapies and precision medicine approaches. Our findings demonstrate that comprehensive molecular profiling significantly enhances diagnostic accuracy in pediatric soft tissue sarcomas, particularly in morphologically challenging cases. The integration of NGS into routine sarcoma diagnostics enables biologically informed tumor classification and supports personalized therapeutic strategies. Full article
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11 pages, 449 KB  
Communication
Association of MAX Copy Number Variation with Morphometric Traits in Chinese Cattle
by Shiyi Lv, Boyu Li, Suyun Fan, Xiangnan Wang, Nan Liu, Xiukai Cao, Ping Qian and Jie Cheng
Animals 2026, 16(15), 2406; https://doi.org/10.3390/ani16152406 - 4 Aug 2026
Viewed by 247
Abstract
Copy number variation (CNV) is a major class of genomic structural variation that can shape economically important traits by altering gene dosage and gene expression. MAX (MYC-associated factor X), a core component of the MYC-MAX-MXD1 transcriptional regulatory [...] Read more.
Copy number variation (CNV) is a major class of genomic structural variation that can shape economically important traits by altering gene dosage and gene expression. MAX (MYC-associated factor X), a core component of the MYC-MAX-MXD1 transcriptional regulatory network, is critically involved in cell proliferation, differentiation, and development. However, the relationship between MAX CNVs and morphometric traits in cattle remains largely unknown. Here, we genotyped MAX CNVs by quantitative real-time PCR (qPCR) in 572 Chinese cattle from five breeds, including Qinchuan (QC), Ji’an (JA), Jinnan (JN), Nanyang (NY), and Xianan (XN) cattle, and evaluated the association of MAX CNVs with morphometric traits. MAX CNVs exhibited distinct breed-specific distribution patterns: the gain type predominated in QC, the loss type predominated in JN, NY, and XN, whereas JA showed a relatively balanced distribution across the three CNV types. Based on raw p values, MAX CNVs showed a nominal association with chest girth in JN cattle and nominal associations with chest girth and hucklebone width in NY cattle (p < 0.05). Individuals with the medium type showed higher least-squares means for the nominally associated traits than those with the loss or gain types. MAX CNVs explained 5.9% of the phenotypic variance in chest girth in JN cattle and 13.6% and 12.2% of the phenotypic variance in chest girth and hucklebone width in NY cattle, respectively. These results suggest that MAX CNVs may represent a breed-specific candidate locus related to morphometric traits in Chinese cattle. However, because no formal multiple-testing correction was applied and this study did not include independent population validation or functional validation, further studies are needed before considering any potential application in marker-assisted selection. Full article
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14 pages, 1199 KB  
Article
Droplet Digital PCR Assessment of MDM2 Amplification in Liposarcoma Diagnosis and Prognosis: A French Single-Center Cohort Study
by Amira Amri, Aurélie Haffner, Fréderic Fina, Romain Appay, Florence Duffaud, Sébastien Salas, Jean-Camille Mattéi, Alexandre Rochwerger, Christophe Chagnaud, Rémi Fernandez, André Maues de Paula, Pierre-Alexandre Just, Ilyes Hamouda, Shani Diai, Chelsea Anjuly Neda, Patrice Roll, Elise Kaspi, Catherine Gallardo, Anne Barlier, Corinne Bouvier, Diane Frankel and Nicolas Macagnoadd Show full author list remove Hide full author list
Int. J. Mol. Sci. 2026, 27(15), 6932; https://doi.org/10.3390/ijms27156932 - 2 Aug 2026
Viewed by 273
Abstract
Amplification of MDM2 is the molecular hallmark of atypical lipomatous tumor/well-differentiated liposarcoma (ALT/WDL) and dedifferentiated liposarcoma (DDL). While fluorescence in situ hybridization (FISH) is widely used for diagnosis, the diagnostic and prognostic value of droplet digital PCR (ddPCR) remains poorly defined. We retrospectively [...] Read more.
Amplification of MDM2 is the molecular hallmark of atypical lipomatous tumor/well-differentiated liposarcoma (ALT/WDL) and dedifferentiated liposarcoma (DDL). While fluorescence in situ hybridization (FISH) is widely used for diagnosis, the diagnostic and prognostic value of droplet digital PCR (ddPCR) remains poorly defined. We retrospectively analyzed 341 primary adipocytic tumors, including 85 liposarcomas (22 DDL), using ddPCR to quantify MDM2 copy number variation (CNV). Diagnostic performance was compared with FISH, and associations with clinicopathological variables and outcomes were evaluated using non-parametric tests, ROC analysis, survival analysis, and Firth’s penalized Cox models. Comparison with FISH confirmed the diagnostic utility of ddPCR for detecting MDM2 amplification, while quantitative CNV assessment provided additional prognostic information. CNV values were significantly higher in deep-seated and dedifferentiated tumors and were strongly associated with local recurrence. ROC analysis identified a threshold of 16.85 copies predicting both dedifferentiation and recurrence (AUC 0.982 and 0.942, respectively). Patients with CNV ≥ 16.85 copies had significantly shorter recurrence-free and overall survival. In multivariable analysis, high CNV remained an independent predictor of recurrence (HR 36.6, 95% CI 4.0–4914.2). These findings support ddPCR as a robust method for MDM2 assessment and suggest that quantitative MDM2 copy number may improve both diagnosis and risk stratification in liposarcoma. Full article
(This article belongs to the Section Molecular Oncology)
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20 pages, 6118 KB  
Article
HPV16 E7-Associated SERPINB3 Suppression and MYC-Related Epithelial Plasticity in Head and Neck Squamous Cell Carcinoma
by Zengchen Liu, Siwei Zhang, Tianyang Liu, Yanjing Li, Rui Li, Huan Liu, Dongcun Wang, Yunyan Tang, Heng Ma, Yuting Zhang, Lanlan Wei and Ming Chu
Cancers 2026, 18(15), 2420; https://doi.org/10.3390/cancers18152420 - 27 Jul 2026
Viewed by 1237
Abstract
Background: Human papillomavirus (HPV) infection defines a distinct subtype of head and neck squamous cell carcinoma (HNSCC). Although HPV-positive (HPV+) HNSCC generally shows better overall survival than HPV-negative (HPV−) disease, it is frequently associated with cervical lymph node metastasis. However, the epithelial cell [...] Read more.
Background: Human papillomavirus (HPV) infection defines a distinct subtype of head and neck squamous cell carcinoma (HNSCC). Although HPV-positive (HPV+) HNSCC generally shows better overall survival than HPV-negative (HPV−) disease, it is frequently associated with cervical lymph node metastasis. However, the epithelial cell states and viral gene-associated mechanisms underlying HPV−related metastatic progression remain incompletely understood. This study aimed to identify metastasis-associated epithelial subpopulations in HPV+ HNSCC and explore the potential role of HPV16 E7 in regulating metastatic programs. Methods: Public single-cell RNA-sequencing datasets from paired primary and metastatic HNSCC samples were integrated and analyzed to characterize malignant epithelial subpopulations. Copy number variation (CNV) inference, clustering, pathway enrichment, stemness scoring, and trajectory analysis were performed to define metastasis-associated epithelial states. TCGA transcriptomic data and tissue-based validation were used to support candidate gene screening. In vitro functional assays were performed using SERPINB3-knockdown and HPV16 early gene-overexpressing CAL27 cell models. Results: Single-cell analysis identified stem-like metastatic epithelial subpopulations in HPV+ and HPV− HNSCC. In HPV+ metastatic lesions, an ALDH2+/LAMB3+ epithelial subpopulation showed elevated epithelial–mesenchymal transition activity and stem-like features. SERPINB3 displayed a dynamic expression pattern during HPV+ metastatic progression. Functional assays showed that SERPINB3 knockdown enhanced CAL27 cell migration and invasion and was associated with activation of MYC- and epithelial–mesenchymal transition-related transcriptional programs. Among HPV16 early genes, E5, E6, E6*, and E7 showed different degrees of SERPINB3 suppression, while E7-expressing cells exhibited distinct transcriptional alterations associated with epithelial plasticity and metastatic-related programs. Conclusions: This study identifies a stem-like metastatic epithelial state in HPV-associated HNSCC and suggests a potential HPV16 early gene-SERPINB3-MYC-related regulatory mechanism involved in metastatic epithelial plasticity. Full article
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14 pages, 6420 KB  
Case Report
Intrafamilial Variability in NRXN1-Associated Neurodevelopmental Disorders: Clinical and Genetic Insights from a Family Case Study with Literature Review
by Nikolina Kastratovic, Marina Gazdic Jankovic, Marina Miletic Kovacevic, Sandra Nikolic, Dragica Pavlovic, Dijana Perovic, Vladimir Janjic and Biljana Ljujic
Int. J. Mol. Sci. 2026, 27(14), 6241; https://doi.org/10.3390/ijms27146241 - 13 Jul 2026
Viewed by 460
Abstract
The neurexin1 gene (NRXN1) encodes a presynaptic adhesion molecule that plays a critical role in synapse formation, maintenance, and function. Copy-number variants (CNVs) affecting the NRXN1 locus, including submicroscopic deletions, represent rare variant acting as a predisposition for neurodevelopmental disorders, such [...] Read more.
The neurexin1 gene (NRXN1) encodes a presynaptic adhesion molecule that plays a critical role in synapse formation, maintenance, and function. Copy-number variants (CNVs) affecting the NRXN1 locus, including submicroscopic deletions, represent rare variant acting as a predisposition for neurodevelopmental disorders, such as Pitt–Hopkins-like syndrome type 2 (MIM #614325) and susceptibility to schizophrenia (MIM #621407). Variations in NRXN1 gene are associated with marked clinical heterogeneity. We present a familial case involving two male siblings (aged 6 and 5 years) and their 28-year-old mother, all exhibiting variable neurodevelopmental phenotypes. Both children demonstrated disharmonic developmental profiles characterized by impaired communication, speech largely intelligible only to their parents, and behaviors consistent with autism spectrum disorder, including reduced eye contact. Mother represents a carrier with only subtle, nonspecific behavioral traits, further supporting the concept of incomplete penetrance and variable expressivity associated with this genetic alteration. Genetic analysis identified a 317 kb NRXN1 deletion shared by all affected family members, accompanied by significant intrafamilial phenotypic variability, suggesting the contribution of additional genetic and/or modifying factors. These findings support the concept that NRXN1 deletions alone do not determine clinical outcome but rather act within a broader genetic and biological context. The marked intrafamilial phenotypic variability and incomplete penetrance observed in this family is compatible with a multiple-hit model, whereby NRXN1 deletions act as susceptibility factors whose phenotypic consequences are shaped by additional genetic and modifying influences. However, the genetic mechanisms underlying the observed phenotypic variability warrant further investigation. Full article
(This article belongs to the Special Issue Molecular Investigations in Neurodevelopmental Disorders: 2nd Edition)
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19 pages, 12521 KB  
Article
Cytoplasmic Claudin 6 Expression and Copy Number Variations as a Prognosticator of Survival and Relapse in Ovarian Cancer Patients
by Mourad Assidi, Sahar Hakamy, Mohammad A. Jafri, Fatima Al-Thubaity, Jaudah Al-Maghrabi, Abdulmajeed F. Alrefaei, Sultan F. Kadasah, Taoufik Nedjadi, Safia A. Messaoudi, Peter N. Pushparaj, Adeel Chaudhary, Abdelbaset Buhmeida and Muhammad Abu-Elmagd
J. Mol. Pathol. 2026, 7(3), 26; https://doi.org/10.3390/jmp7030026 - 8 Jul 2026
Viewed by 570
Abstract
Background: Tight junctions are major components of apical junction complexes and are crucial for the maintenance of cell polarity, healthy tissue architecture, adhesion, and permeability. These junctions include the claudin family of transmembrane proteins, which act as paracellular barriers to regulate selective permeability. [...] Read more.
Background: Tight junctions are major components of apical junction complexes and are crucial for the maintenance of cell polarity, healthy tissue architecture, adhesion, and permeability. These junctions include the claudin family of transmembrane proteins, which act as paracellular barriers to regulate selective permeability. Abnormal claudin expression disturbs cell adhesions and is associated with cancer through promoting cell invasion, migration, and metastasis. Claudin 6 (CLDN6) overexpression, in particular, is linked to several types of cancer with malignant phenotypes. The present study aimed to investigate the association between CLDN6 protein expression and its copy number variations (CNVs) with clinicopathological features and survival outcomes of ovarian cancer (OC) patients. Methods: A total of 114 formalin-fixed paraffin-embedded blocks from primary OC patients were used to construct tissue microarray slides. Automated immunostaining was used to assess CLDN6 protein expression levels, and next-generation knowledge discovery platforms were used to further evaluate CLDN6 CNV levels using The Cancer Genome Atlas open-source data. The relationships between CLDN6 CNVs and tumor stage, overall survival, disease-specific survival (DSS), and disease-free survival (DFS) were investigated. Results: This study demonstrated that CLDN6 had a mixed membranous-cytoplasmic expression pattern. The cytoplasmic expression of CLDN6 was significantly associated with tumor stage (p = 0.05), tumor size (p = 0.04), and recurrence (p = 0.05). In Univariate analysis, Kaplan–Meier analysis demonstrated that CLDN6 expression was significantly correlated with DFS (p = 0.01). OC patients with lower cytoplasmic CLDN6 expression levels lived longer and had lower recurrence rates. These findings were further confirmed through CLDN6 CNVs analysis, where OC with lower CLDN6 cytoplasmic expression positively correlated with longer DFS and DSS. No independent prognosticator was found when using Cox-regression multivariate analysis (p > 0.05). Conclusions: These results suggest CLDN6 as an interesting prognosticator to identify OC patients at a higher risk of recurrence in order to provide personalized management, alleviate the burden of this disease on women’s health, and improve their survival outcomes. Full article
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26 pages, 27641 KB  
Article
Pan-Genome Analysis Reveals Evolutionary Dynamics and Functional Divergence of the NAC Gene Family in Soybean
by Nan Wu, Yongqi Feng, Xilin Ning and Dan Yao
Plants 2026, 15(13), 2010; https://doi.org/10.3390/plants15132010 - 29 Jun 2026
Viewed by 697
Abstract
Soybean (Glycine max) is an important model crop for studying plant functional genes, such as the NAC transcription factor (TF) gene family. The NAC transcription factor (TF) family is one of the largest plant-specific TF families and plays critical roles in plant growth, [...] Read more.
Soybean (Glycine max) is an important model crop for studying plant functional genes, such as the NAC transcription factor (TF) gene family. The NAC transcription factor (TF) family is one of the largest plant-specific TF families and plays critical roles in plant growth, development, and stress responses. In this study, we performed a pan-genome-wide analysis of NAC genes using 29 soybean genomes. A total of 5051 NAC genes were identified and clustered into 245 orthologous gene groups (OGGs), including 58 core, 88 soft-core, 32 shell, and 67 cloud groups. Based on phylogenetic relationships, the representative NAC OGGs were assigned to 18 subfamilies, 17 of which contained soybean NAC genes. Gene duplication analysis indicated that whole-genome duplication (WGD)/segmental duplication was the predominant driver of NAC family expansion, accounting for 90.88% of duplication events. Approximately 39.30% of NAC genes carried at least one intact transposable element (TE) within 2 kb upstream or downstream regions. NAC genes with copy number variation (CNV) harbored more nearby TEs than non-CNV genes (1.54 vs. 1.31 TEs per gene), and dispensable NAC genes contained more nearby TEs than core NAC genes (1.59 vs. 1.33 TEs per gene). These results indicate a significant association between local TE abundance and NAC gene CNV or dispensability. Selection pressure analysis showed that dispensable NAC genes had higher Ka, Ks, and Ka/Ks values than core genes, suggesting relatively relaxed evolutionary constraints. Expression profiling across six tissues revealed distinct transcriptional patterns among NAC subfamilies. Structurally conserved subfamilies generally showed broader expression, whereas structurally divergent subfamilies displayed greater expression variability. Regulatory network and Gene Ontology (GO) enrichment analyses suggested that conserved subfamilies were mainly associated with stress responses, while divergent subfamilies were related to cell wall regulation, signal transduction, and ion homeostasis. Further analysis of Wm82 drought RNA-seq data prioritized several putative drought-responsive NAC candidates, including Glyma.16G043200, Glyma.06G248900, Glyma.07G050600, Glyma.12G206900, and Glyma.18G261300. Overall, these findings elucidate the mechanisms of expansion and the functional divergence of the NAC gene family at the soybean pan-genome level, providing a theoretical basis for understanding NAC gene evolution and facilitating future crop improvement. Full article
(This article belongs to the Special Issue Crop Functional Genomics and Biological Breeding—3rd Edition)
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17 pages, 3109 KB  
Article
Analytical Validation and Clinical Implementation of a 1080-Gene Comprehensive Genomic Profiling Assay with Integrated Cloud-Based Analysis for Solid Tumor Molecular Oncology
by Ashutosh Vashisht, Ashis K. Mondal, Vishakha Vashisht, Pankaj K. Ahluwalia, Saloni Andhari, Jaspreet Farmaha, Jana Woodall and Ravindra Kolhe
Biomedicines 2026, 14(7), 1462; https://doi.org/10.3390/biomedicines14071462 - 27 Jun 2026
Viewed by 830
Abstract
Background: Comprehensive genomic profiling (CGP) via next-generation sequencing (NGS) is pivotal for precision oncology, yet many laboratories face challenges with incomplete genomic coverage, complex bioinformatics workflows, and limited integration of key biomarkers. Methods: We evaluated the analytical performance and clinical utility of [...] Read more.
Background: Comprehensive genomic profiling (CGP) via next-generation sequencing (NGS) is pivotal for precision oncology, yet many laboratories face challenges with incomplete genomic coverage, complex bioinformatics workflows, and limited integration of key biomarkers. Methods: We evaluated the analytical performance and clinical utility of a CGP assay using 119 tumor samples representing 18 types of cancer, previously analyzed with an orthogonal NGS panel. Concordance was assessed across 81 genes, covering 176 single-nucleotide variants (SNVs), eight copy number variations (CNVs), four deletions, one duplication, and four gene fusions. Limit of detection (LOD) studies employed AcroMetrix Mutant Hotspot Control and SeraSeq Lung and Brain CNV Mix. Microsatellite instability (MSI) and tumor mutational burden (TMB) were quantified. Inter- and intra-run reproducibility were evaluated to assess precision. Results: The CGP assay demonstrated high analytical performance, with >99% sensitivity, 100% specificity, and complete accuracy for variant detection. LOD studies revealed robust detection of SNVs at ≤5% variant allele frequencies (VAF) and CNVs at three copies. MSI and TMB results were consistent with clinical expectations, showing minimal bias compared to the orthogonal panel. Inter- and intra-run testing confirmed 100% reproducibility, indicating strong assay precision. Post-sequencing variant reporting was streamlined using the iCare platform, enabling direct FASTQ-to-report generation without intermediate bioinformatic steps. Conclusions: These findings support the present assay’s clinical utility in personalized oncology assessment. Full article
(This article belongs to the Special Issue Genome Engineering Technologies for Diseases)
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19 pages, 5521 KB  
Article
Exploration of Regulatory Elements, MicroRNAs, and Copy Number Variation in Urogenital Chlamydia Reinfection in African American Women
by Hemant K. Tiwari, Sandeep Chowdary Vejandla, Ihsan Buker, Mengchen Ding, Vinodh Srinivasasainagendra, Amit Patki, Kanupriya Gupta, Caren Weinhouse and William M. Geisler
Int. J. Mol. Sci. 2026, 27(12), 5410; https://doi.org/10.3390/ijms27125410 - 16 Jun 2026
Viewed by 436
Abstract
Host genetic susceptibility to urogenital Chlamydia trachomatis (Ct) reinfection remains poorly understood. Coding variants identified in prior genome-wide association studies (GWAS) explained only a small fraction of the risk of reinfection. Our goal in this study was to characterize whether more [...] Read more.
Host genetic susceptibility to urogenital Chlamydia trachomatis (Ct) reinfection remains poorly understood. Coding variants identified in prior genome-wide association studies (GWAS) explained only a small fraction of the risk of reinfection. Our goal in this study was to characterize whether more risk would be captured by sequence variation that traditional GWAS insufficiently captures. Specifically, we evaluated the risk attributable to SNPs present in regulatory, non-coding regions; post-transcriptional regulation by microRNAs (miRNAs) that may depend on sequence variation in either the miRNA or the target mRNA; and copy number variants (CNVs). We analyzed GWAS data from African American women with or without documented urogenital Ct reinfection. Fine mapping and independent association analyses identified 30 unique index single-nucleotide polymorphisms (iSNPs), which were expanded to variants in linkage disequilibrium. Regulatory annotation was performed using HaploReg, RegulomeDB, FORGEdb, rSNPBase, and GTEx. We examined whether genes identified in the Ct reinfection GWAS are targeted by known Ct infection–associated microRNAs using curated databases. Genome-wide CNV calling was conducted using SNP intensity data, followed by stringent quality control and gene-level association testing. Functional annotation prioritized 7 SNPs with strong regulatory evidence, with stringent criteria for regulatory relevance, using HaploReg, RegulomeDB, FORGEdb, and rSNPBase. The strongest signals were observed at the CHIT1 locus, where multiple intronic variants (including rs2486963 and rs2244385) overlapped regulatory chromatin, altered transcription factor binding motifs, and acted as cis-expression quantitative trait loci for CHIT1 in whole blood. Additional regulatory variants were identified near TDRP, ERICH1, and DLGAP1, showing tissue-specific regulatory effects. MicroRNA analysis revealed extensive post-transcriptional targeting of SOCS6 and SULF1, while CHIT1 showed no curated Ct-associated miRNA interactions. CNV analysis identified 5775 high-confidence events, with nominal gene-level associations observed for ATAD3A, CARD14, TMEM240, and ZNF140. These results indicate that a greater fraction of the susceptibility to urogenital Ct reinfection may be driven by genetic variation affecting immune and epithelial pathways rather than protein-coding changes. Full article
(This article belongs to the Special Issue Chlamydia trachomatis Pathogenicity and Disease (Third Edition))
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18 pages, 439 KB  
Article
Analysis of Copy Number and Sequence Variants Linked to Cardiac Development in Children with Syndromic Congenital Heart Defects
by Tatjana Damnjanovic, Nela Maksimovic, Ana Djuranovic Uklein, Brankica Bosankic, Biljana Jekic, Milka Grk, Marija Dusanovic Pjevic, Milica Rasic, Natasa Stojanovski, Milica Pesic, Ivana Novakovic, Goran Cuturilo and Dijana Perović
Cardiogenetics 2026, 16(2), 13; https://doi.org/10.3390/cardiogenetics16020013 - 10 Jun 2026
Viewed by 476
Abstract
Congenital heart defects (CHDs) are the most common congenital anomalies, with identifiable genetic etiologies in approximately 5–30% of affected infants, depending on the clinical presentation and comorbidities. This study included 216 children with CHD, predominantly syndromic, to explore the role of genetic variants [...] Read more.
Congenital heart defects (CHDs) are the most common congenital anomalies, with identifiable genetic etiologies in approximately 5–30% of affected infants, depending on the clinical presentation and comorbidities. This study included 216 children with CHD, predominantly syndromic, to explore the role of genetic variants in their morphological phenotypes. Chromosomal microarray (CMA) and whole-exome sequencing (WES) were performed, revealing clinically significant copy number variations (csCNVs) in 59 (27.3%) patients. The most frequent were 22q11.21 (8/59; 13.6%) and 7q11.23 (5/59; 8.5%) deletions. WES was conducted in 28.0% of cases, achieving a detection rate of 29.5%, primarily identifying variants related to Noonan syndrome. Genetic diagnoses were confirmed in 33.3% of patients, with clinically significant CNVs and SNV/INDELs found exclusively in those with syndromic CHD, leading to a 36.5% diagnosis rate in those patients. The identified variants most frequently affected genes encoding transcription factors (40.4%), followed by genes involved in the RAS signaling pathway and structural proteins (17.0%), and chromatin remodeling proteins (12.8%). Full article
(This article belongs to the Section Molecular & Translational Genetics)
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24 pages, 8377 KB  
Article
Integrated Single-Cell RNA-Seq and Machine Learning to Construct an EMT Infiltration Scoring Model for Prostate Cancer
by Zhipeng Xie, Yingjie Sun, Yuheng Tang, Qi Qi, Jiaxiang Liang, Jiehui Zhang, Wenru Tang and Xuhong Zhou
Int. J. Mol. Sci. 2026, 27(11), 5017; https://doi.org/10.3390/ijms27115017 - 2 Jun 2026
Viewed by 509
Abstract
Prostate cancer (PCa) remains a major global health concern, with a subset of patients progressing to aggressive disease despite advances in diagnosis and treatment. Epithelial–mesenchymal transition (EMT) plays a pivotal role in tumor invasion, metastasis, and immune evasion; however, its cellular heterogeneity and [...] Read more.
Prostate cancer (PCa) remains a major global health concern, with a subset of patients progressing to aggressive disease despite advances in diagnosis and treatment. Epithelial–mesenchymal transition (EMT) plays a pivotal role in tumor invasion, metastasis, and immune evasion; however, its cellular heterogeneity and clinical relevance in PCa remain incompletely understood. We analyzed single-cell transcriptomic data to characterize EMT dynamics in malignant epithelial cells. Malignant cells were identified based on aberrant copy number variation patterns, and EMT activity was quantified using AUCell. Gene expression profiling and gene set enrichment analysis identified key EMT-associated genes. By integrating bulk transcriptomic data with LASSO regression analysis, we identified five pivotal genes and constructed an EMT infiltration scoring model. The model demonstrated robust predictive performance in an external Gene Expression Omnibus validation cohort and effectively predicted early biochemical recurrence. Further analyses revealed significant associations between EMT scores, clinicopathological features, immune cell infiltration, genomic instability, and tumor immune dysfunction and exclusion scores. Pathway enrichment analysis highlighted distinct molecular characteristics between high- and low-score groups. Additionally, molecular docking using AutoDock identified potential targeted therapeutic agents for key EMT genes. Overall, this study systematically delineates EMT heterogeneity at the single-cell level and establishes a robust EMT infiltration model for prognostic prediction and therapeutic guidance in PCa, providing novel insights for precision risk stratification and individualized treatment strategies. Full article
(This article belongs to the Section Molecular Informatics)
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17 pages, 967 KB  
Review
Copy Number Variant Detection by NIPT: Biological Constraints and the Limits of Prenatal Genomic Inference
by Dorina Merhala, Béla Veszprémi and Réka Anna Vass
Genes 2026, 17(6), 636; https://doi.org/10.3390/genes17060636 - 30 May 2026
Viewed by 589
Abstract
Background: Non-invasive prenatal testing (NIPT) based on analysis of Cell-Free Fetal DNA has transformed screening for common aneuploidies and is increasingly extended to genome-wide detection of copy number variants (CNVs). However, CNV detection remains constrained by analytical limitations and biological signal complexity. Methods: [...] Read more.
Background: Non-invasive prenatal testing (NIPT) based on analysis of Cell-Free Fetal DNA has transformed screening for common aneuploidies and is increasingly extended to genome-wide detection of copy number variants (CNVs). However, CNV detection remains constrained by analytical limitations and biological signal complexity. Methods: This review evaluates the analytical validity, biological constraints, and clinical interpretation challenges of CNV detection by NIPT, framing it as a probabilistic genomic inference rather than a direct measure of fetal copy number. Results: Performance depends on sequencing depth, bin resolution, fetal fraction, guanine–cytosine correction, and reference modeling, leading to variable detection thresholds. The predominantly placental origin of cfDNA introduces discordance through Confined Placental Mosaicism, post-zygotic events, and clonal variation. Maternal CNVs, mosaicism, vanishing twin, and occult malignancy further complicate interpretation and may cause false positives. Clinical validity is heterogeneous, with positive predictive value dependent on CNV size, genomic context, and prevalence. Reporting practices remain inconsistent. Conclusions: CNV detection by NIPT is fundamentally limited by interpretation of a composite maternal–placental signal. Progress requires improved tissue-of-origin discrimination, multi-omic integration, and standardized reporting to ensure responsible clinical implementation. Full article
(This article belongs to the Section Genetic Diagnosis)
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13 pages, 2638 KB  
Article
Identification of the Genetic Characteristics of Copy Number Variation Regions in Diverse Goat Populations
by Wenze Li, Yixin Su, Can Liu, Xiaochun Yan, Qi Lv and Rui Su
Genes 2026, 17(6), 627; https://doi.org/10.3390/genes17060627 - 30 May 2026
Cited by 1 | Viewed by 385
Abstract
Background: Copy number variation (CNV) is an important class of structural variations (SVs) that contribute to phenotypic diversity and environmental adaptation in animals. However, large-scale population-level analyses of CNVs in goats remain limited. This study aimed to comprehensively characterize CNVs and explore their [...] Read more.
Background: Copy number variation (CNV) is an important class of structural variations (SVs) that contribute to phenotypic diversity and environmental adaptation in animals. However, large-scale population-level analyses of CNVs in goats remain limited. This study aimed to comprehensively characterize CNVs and explore their potential roles in economically important traits in Chinese goat populations. Methods: Whole-genome resequencing data from 151 individuals representing 17 Chinese goat breeds were analyzed. CNV regions (CNVRs) were identified across the genome, followed by gene annotation, functional enrichment analysis, and population differentiation analysis based on VST. Results: A total of 5636 CNVRs were identified from 151 individuals of 17 goat breeds, including 1365 duplication CNVRs, 4241 deletion CNVRs, and 30 both CNVRs. These CNVRs collectively spanned 2.38% of the goat genome. A total of 912 protein-coding genes overlapped with these CNVRs. After Bonferroni correction, GO enrichment analysis showed that these genes were significantly enriched in terms related to transmembrane transport, cell projection, ion binding, and ATP binding. Population differentiation analysis identified several CNVR-associated candidate genes with potential relevance to production or adaptive traits, including ABCC4, APOL3, EXOC3L4, ERG, B4GALT1, and FTH. Conclusions: This study provides a comprehensive CNVR map of Chinese goat populations and offers insights into the genetic basis of economically important traits, contributing to future genetic improvement and breeding strategies in goats. Full article
(This article belongs to the Section Animal Genetics and Genomics)
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18 pages, 1389 KB  
Review
Pangenomics for Agricultural Breeding: Construction Strategies, Evidence Integration, and Translational Constraints
by Jinpeng Shi, Ying Lu, Zhengmei Sheng, Huaijing Liu, Keyu Li, Yuqing Chong, Zhendong Gao, Weidong Deng and Dongwang Wu
Biology 2026, 15(11), 832; https://doi.org/10.3390/biology15110832 - 25 May 2026
Viewed by 741
Abstract
Pangenomics has become an important framework for representing genetic diversity beyond a single linear reference genome. In agricultural species, it improves access to structural variants (SVs), copy number variations (CNVs), presence/absence variations (PAVs), and non-reference regulatory or coding sequences that may contribute to [...] Read more.
Pangenomics has become an important framework for representing genetic diversity beyond a single linear reference genome. In agricultural species, it improves access to structural variants (SVs), copy number variations (CNVs), presence/absence variations (PAVs), and non-reference regulatory or coding sequences that may contribute to domestication, adaptation, and breeding traits. This review summarizes recent progress in long-read sequencing, telomere-to-telomere (T2T) assembly, and graph-based genome analysis, with emphasis on both livestock and crop systems. We first define the conceptual boundary between pangenome representations and reference-based variant catalogs. We then compare three major technical routes: variant integration, reference-guided iterative graph construction, and reference-free graph construction. Their performance is evaluated in terms of accuracy, scalability, coordinate consistency, reference bias, computational demand, annotation transfer, and suitability for downstream breeding questions. We further discuss how pangenome resources support hidden variant discovery, QTL and GWAS interpretation, environmental adaptation analysis, and multi-omics-based candidate prioritization. Importantly, we highlight unresolved limitations, including graph complexity, pipeline-dependent SV calls, incomplete functional annotation, weak cross-study comparability, and the difficulty of distinguishing causal variants from linked or neutral variation. This review therefore treats pangenome studies as connected but non-equivalent evidence: resource-building studies establish representational breadth, method papers define technical feasibility, and trait-focused studies provide varying levels of biological support. Apparent inconsistencies among studies are interpreted as signals of differences in sampling, genome complexity, validation depth, and graph construction strategy rather than as simple disagreements. Full article
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27 pages, 2448 KB  
Review
Effects of Genetic and Environmental Factors on Reproductive Traits, with a Focus on Gestation Length in Sheep: Implications for Molecular Breeding—A Review
by Kassahun Bekana, Peiyao Liu, Geng Liu, Ebadu Areb, Jinpeng Wang, Zhiying Wang, Xianyong Lan and Chuanying Pan
Agriculture 2026, 16(10), 1021; https://doi.org/10.3390/agriculture16101021 - 7 May 2026
Cited by 1 | Viewed by 1284
Abstract
The reproductive traits of sheep are very important characteristics influencing productivity. Among these, gestation length (GL) is an important trait with positive or negative influences on birth weight, lamb survival, lambing intervals, ease of lambing, and the dam’s health. This review evaluates the [...] Read more.
The reproductive traits of sheep are very important characteristics influencing productivity. Among these, gestation length (GL) is an important trait with positive or negative influences on birth weight, lamb survival, lambing intervals, ease of lambing, and the dam’s health. This review evaluates the existing knowledge of genetic and environmental factors influencing reproductive traits, with a focus on GL in sheep, and the potential of this knowledge to inform effective molecular breeding programs. The mean GL for sheep is 147 days, generally ranging from 142 to 152 days. Both extremely long and extremely short GL may have either positive or negative effects on sheep rearing. Variations among breeds and within populations arise from complex interactions between nature and nurture. GL has a moderate level of heritability, indicating that genetic factors contribute to phenotypic variation in this trait. The GL is a result of gene-regulatory pathway interactions, hormonal signaling, placental, and fetal–maternal communication. Three stages of gestation are characterized by distinct patterns of gene expression, hormonal regulation, and physiological functions. Advances in genomic technologies, including whole-genome sequencing (WGS) and genome-wide association studies (GWAS), have enhanced the ability to identify the genetic determinants of GL and facilitate their incorporation into molecular breeding strategies. In addition, the invention of molecular biology in the discovery of single-nucleotide polymorphisms (SNPs), insertion/deletion (InDels), and copy number of variants (CNVs) has created new opportunities to uncover the molecular basis of GL. In general, this review offers a comprehensive framework that identifies genetic and environmental determinants of GL and describes their practical implications for sustainable sheep breeding. Full article
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