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17 pages, 3362 KB  
Article
Agro-Morphological and Cytogenetic Characterization of Hibiscus Genetic Resources: Implications for Germplasm Conservation and Interspecific Breeding
by Yaqoob Sultan, Deen Mohammad Deepo, Ki-Byung Lim and Eglė Norkevičienė
Plants 2026, 15(11), 1633; https://doi.org/10.3390/plants15111633 - 26 May 2026
Viewed by 1087
Abstract
Plant genetic resources are vital for crop improvement, ecological resilience, and agrobiodiversity conservation, making their characterization through morphological and cytogenetic methods essential for breeding and germplasm management. This study comparatively analyzed two herbaceous cultivars Hibiscus moscheutos cv. ‘Carousel Jolly Heart’ and cv. ‘Carousel [...] Read more.
Plant genetic resources are vital for crop improvement, ecological resilience, and agrobiodiversity conservation, making their characterization through morphological and cytogenetic methods essential for breeding and germplasm management. This study comparatively analyzed two herbaceous cultivars Hibiscus moscheutos cv. ‘Carousel Jolly Heart’ and cv. ‘Carousel Pink Passion’ and two woody cultivars, Hibiscus syriacus cv. ‘Sukim’ and cv. ‘Freedom’, to assess interspecific diversity and hybridization potential. Morphological assessments revealed notable differences in flower size and leaf shape between species, with ‘Carousel Pink Passion’ exhibiting the largest flower diameter (16.70 cm) and ‘Freedom’ exhibiting the smallest (10.20 cm). Chromosome analysis confirmed diploidy (2n = 38) in H. moscheutos and polyploidy (2n = 84) in H. syriacus, highlighting a fundamental genomic distinction between the two species. Fluorescence in situ hybridization (FISH) consistently identified two 5S rDNA loci across all cultivars; however, species-specific variation in 18S rDNA loci was detected with four loci in H. syriacus and six in H. moscheutos, suggesting divergent rDNA evolution and distinct genomic organization in the two species. Flow cytometry confirmed significant differences in nuclear DNA content corresponding to ploidy levels: ‘Carousel Jolly Heart’ and ‘Carousel Pink Passion’ measured 2.06 pg and 2.05 pg, respectively, while ‘Sukim’ and ‘Freedom’ measured 4.18 pg and 4.27 pg, respectively. Full article
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17 pages, 9520 KB  
Article
Two Optimized Methods for Efficient, Stable and Transient Transformation of Broccoli (Brassica oleracea Var. Italica)
by Alberto Coronado-Martín, Alejandro Atarés, Rosa Porcel, Lynne Yenush and José M. Mulet
Plants 2026, 15(6), 978; https://doi.org/10.3390/plants15060978 - 22 Mar 2026
Cited by 1 | Viewed by 2307
Abstract
Broccoli (Brassica oleracea var. italica) is an important crop valued for its nutritional and health-promoting properties, yet its biotechnological improvement is limited by low effectivity and genotype-dependent transformation protocols. The absence of reliable transient expression systems further constrains functional genomics and genome-editing [...] Read more.
Broccoli (Brassica oleracea var. italica) is an important crop valued for its nutritional and health-promoting properties, yet its biotechnological improvement is limited by low effectivity and genotype-dependent transformation protocols. The absence of reliable transient expression systems further constrains functional genomics and genome-editing applications. Here, we optimized regeneration and transformation protocols for different broccoli genotypes. Endoreduplication patterns in young tissues were analyzed by flow cytometry to identify suitable explants, and combinations of plant growth regulators were tested to develop an efficient organogenic medium. Stable transformation was achieved via Agrobacterium tumefaciens using nptII and eGFP markers. Cotyledons and hypocotyls up to day 7 showed similar endoreduplication patterns, with abundant 2n cells, but hypocotyls exhibited higher regeneration capacity. The optimized medium supported efficient organogenesis while maintaining diploidy. Transformation efficiency reached 10.4% in ‘S1’ and 2.8% in ‘Naxos’, highlighting genotype dependence. In parallel, a transient expression system was established using cotyledon-derived protoplasts and electroporation-mediated DNA delivery. GFP expression was confirmed through fluorescence microscopy, confocal imaging, and Western blotting. These protocols provide a robust toolkit for broccoli genetic manipulation, facilitating molecular biology studies in the native plant, functional genomics and genome-editing strategies, including CRISPR-based approaches. Full article
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20 pages, 1439 KB  
Review
Roles of Mutation, Ploidy, and Recombination in Adaptive Evolution in Two Divergent Model Yeasts
by Megan Hitchcock and Jianping Xu
Genes 2026, 17(2), 204; https://doi.org/10.3390/genes17020204 - 8 Feb 2026
Cited by 1 | Viewed by 1279
Abstract
Genetic variation underlies the capacity of populations to adapt, yet what drives how this variation is generated and maintained in natural populations remains poorly understood. Fundamental processes such as mutation, ploidy, and recombination are known to shape genetic variation and adaptive potential but [...] Read more.
Genetic variation underlies the capacity of populations to adapt, yet what drives how this variation is generated and maintained in natural populations remains poorly understood. Fundamental processes such as mutation, ploidy, and recombination are known to shape genetic variation and adaptive potential but are typically studied in isolation and under controlled laboratory conditions. How these processes act together under varying environmental conditions to structure genetic variation across complex natural populations remains unresolved. In yeasts, these processes are dependent on reproductive mode, ploidy shifts, and environmental stressors, which jointly shape genomic stability and adaptive potential. Here, we review our current knowledge on the roles of mutation, ploidy, and recombination in adaptation in the model yeasts Saccharomyces cerevisiae and the human pathogenic Cryptococcus. We highlight heterogeneity in mutation rates, recombination, and ploidy states across strains, environments, and populations, challenging the assumption that these parameters are uniform. We argue that fluctuating environments, increasingly driven by climate change, are likely to intensify interactions among these processes to impact evolution in ways that remain difficult to predict. Integrating population genomics with ecologically realistic frameworks will be essential for understanding natural evolutionary dynamics and anticipating fungal adaptation and disease emergence. Full article
(This article belongs to the Special Issue Feature Papers in Microbial Genetics and Genomics)
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21 pages, 8812 KB  
Article
Calcium Homeostasis Is Involved in the Modulation of Gene Expression by MSL2 in Imbalanced Genomes
by Ruixue Wang, Shuai Zhang, Haizhu Qi, Liuqing Wang, Youjun Wang and Lin Sun
Cells 2024, 13(22), 1923; https://doi.org/10.3390/cells13221923 - 20 Nov 2024
Viewed by 1870
Abstract
Aneuploidy is highly detrimental to organisms due to genomic imbalance. However, the influence of parental unbalanced genome conditions on gene expression of their offspring remains unclear, particularly in animals. To further explore the molecular regulatory mechanisms, we firstly analyzed the expression patterns of [...] Read more.
Aneuploidy is highly detrimental to organisms due to genomic imbalance. However, the influence of parental unbalanced genome conditions on gene expression of their offspring remains unclear, particularly in animals. To further explore the molecular regulatory mechanisms, we firstly analyzed the expression patterns of aneuploid Drosophila offspring from different parents with unbalanced genomes via reciprocal crosses and studied the potential functions of male-specific lethal 2 (MSL2) in this process. The results showed that the ectopic expression of MSL2 in aneuploidy resulted in gene expression patterns closer to those of diploidy, including MSL2 target genes, maternal genes, mitochondrial genes, and transposable elements. In addition, it was also found that ERp60, the key target gene of MSL2, played a crucial role in regulating endoplasmic reticulum (ER) Ca2+ homeostasis through its interaction with the STIM1 protein. When it was overexpressed, ER Ca2+ levels and the survival of aneuploid females were significantly increased. Furthermore, we observed upregulated ER Ca2+ levels identified in aneuploid brains, which suggested that Ca2+ homeostasis may be involved in the regulation mediated by MSL2 in aneuploid genomes. Full article
(This article belongs to the Section Cell Signaling)
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14 pages, 801 KB  
Article
Management of High-Risk Neuroblastoma with Soft-Tissue-Only Disease in the Era of Anti-GD2 Immunotherapy
by Maite Gorostegui, Juan Pablo Muñoz, Sara Perez-Jaume, Margarida Simao-Rafael, Cristina Larrosa, Moira Garraus, Noelia Salvador, Cinzia Lavarino, Lucas Krauel, Salvador Mañe, Alicia Castañeda and Jaume Mora
Cancers 2024, 16(9), 1735; https://doi.org/10.3390/cancers16091735 - 29 Apr 2024
Cited by 5 | Viewed by 3566
Abstract
Neuroblastoma presents with two patterns of disease: locoregional or systemic. The poor prognostic risk factors of locoregional neuroblastoma (LR-NB) include age, MYCN or MDM2-CDK4 amplification, 11q, histology, diploidy with ALK or TERT mutations, and ATRX aberrations. Anti-GD2 immunotherapy has significantly improved the outcome [...] Read more.
Neuroblastoma presents with two patterns of disease: locoregional or systemic. The poor prognostic risk factors of locoregional neuroblastoma (LR-NB) include age, MYCN or MDM2-CDK4 amplification, 11q, histology, diploidy with ALK or TERT mutations, and ATRX aberrations. Anti-GD2 immunotherapy has significantly improved the outcome of high-risk (HR) NB and is mostly effective against osteomedullary minimal residual disease (MRD), but less so against soft tissue disease. The question is whether adding anti-GD2 monoclonal antibodies (mAbs) benefits patients with HR-NB compounded by only soft tissue. We reviewed 31 patients treated at SJD for HR-NB with no osteomedullary involvement at diagnosis. All tumors had molecular genetic features of HR-NB. The outcome after first-line treatment showed 25 (80.6%) patients achieving CR. Thirteen patients remain in continued CR, median follow-up 3.9 years. We analyzed whether adding anti-GD2 immunotherapy to first-line treatment had any prognostic significance. The EFS analysis using Cox models showed a HR of 0.20, p = 0.0054, and an 80% decrease in the risk of relapse in patients treated with anti-GD2 immunotherapy in the first line. Neither EFS nor OS were significantly different by CR status after first-line treatment. In conclusion, adding treatment with anti-GD2 mAbs at the stage of MRD helps prevent relapse that unequivocally portends poor survival. Full article
(This article belongs to the Section Pediatric Oncology)
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17 pages, 2021 KB  
Perspective
Harnessing the Genetic Basis of Sorghum Biomass-Related Traits to Facilitate Bioenergy Applications
by Lin Yang, Qin Zhou, Xuan Sheng, Xiangqian Chen, Yuqing Hua, Shuang Lin, Qiyun Luo, Boju Yu, Ti Shao, Yixiao Wu, Junli Chang, Yin Li and Min Tu
Int. J. Mol. Sci. 2023, 24(19), 14549; https://doi.org/10.3390/ijms241914549 - 26 Sep 2023
Cited by 13 | Viewed by 4072
Abstract
The extensive use of fossil fuels and global climate change have raised ever-increasing attention to sustainable development, global food security and the replacement of fossil fuels by renewable energy. Several C4 monocot grasses have excellent photosynthetic ability, stress tolerance and may rapidly produce [...] Read more.
The extensive use of fossil fuels and global climate change have raised ever-increasing attention to sustainable development, global food security and the replacement of fossil fuels by renewable energy. Several C4 monocot grasses have excellent photosynthetic ability, stress tolerance and may rapidly produce biomass in marginal lands with low agronomic inputs, thus representing an important source of bioenergy. Among these grasses, Sorghum bicolor has been recognized as not only a promising bioenergy crop but also a research model due to its diploidy, simple genome, genetic diversity and clear orthologous relationship with other grass genomes, allowing sorghum research to be easily translated to other grasses. Although sorghum molecular genetic studies have lagged far behind those of major crops (e.g., rice and maize), recent advances have been made in a number of biomass-related traits to dissect the genetic loci and candidate genes, and to discover the functions of key genes. However, molecular and/or targeted breeding toward biomass-related traits in sorghum have not fully benefited from these pieces of genetic knowledge. Thus, to facilitate the breeding and bioenergy applications of sorghum, this perspective summarizes the bioenergy applications of different types of sorghum and outlines the genetic control of the biomass-related traits, ranging from flowering/maturity, plant height, internode morphological traits and metabolic compositions. In particular, we describe the dynamic changes of carbohydrate metabolism in sorghum internodes and highlight the molecular regulators involved in the different stages of internode carbohydrate metabolism, which affects the bioenergy utilization of sorghum biomass. We argue the way forward is to further enhance our understanding of the genetic mechanisms of these biomass-related traits with new technologies, which will lead to future directions toward tailored designing sorghum biomass traits suitable for different bioenergy applications. Full article
(This article belongs to the Special Issue Functional Genomics of Energy Crops)
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14 pages, 2823 KB  
Article
Prognostic Value of Chromatin Structure Typing in Early-Stage Non-Small Cell Lung Cancer
by Luning Mao, Jianghua Wu, Zhongjie Zhang, Lijun Mao, Yuejin Dong, Zufeng He, Haiyue Wang, Kaiwen Chi, Yumeng Jiang and Dongmei Lin
Cancers 2023, 15(12), 3171; https://doi.org/10.3390/cancers15123171 - 13 Jun 2023
Cited by 4 | Viewed by 2082
Abstract
(1) Background: Chromatin structure typing has been used for prognostic risk stratification among cancer survivors. This study aimed to ascertain the prognostic values of ploidy, nucleotyping, and tumor–stroma ratio (TSR) in predicting disease progression for patients with early-stage non-small cell lung cancer (NSCLC), [...] Read more.
(1) Background: Chromatin structure typing has been used for prognostic risk stratification among cancer survivors. This study aimed to ascertain the prognostic values of ploidy, nucleotyping, and tumor–stroma ratio (TSR) in predicting disease progression for patients with early-stage non-small cell lung cancer (NSCLC), and to explore whether patients with different nucleotyping profiles can benefit from adjuvant chemotherapy. (2) Methods: DNA ploidy, nucleotyping, and TSR were measured by chromatin structure typing analysis (Matrix Analyser, Room4, Kent, UK). Cox proportional hazard regression models were used to assess the relationships of DNA ploidy, nucleotyping, and TSR with a 5-year disease-free survival (DFS). (3) Results: among 154 early-stage NSCLC patients, 102 were non-diploid, 40 had chromatin heterogeneity, and 126 had a low stroma fraction, respectively. Univariable analysis suggested that non-diploidy was associated with a significantly lower 5-year DFS rate. After combining DNA ploidy and nucleotyping for risk stratification and adjusting for potential confounders, the DNA ploidy and nucleotyping (PN) high-risk group and PN medium-risk group had a 4- (95% CI: 1.497–8.754) and 3-fold (95% CI: 1.196–6.380) increase in the risk of disease progression or mortality within 5 years of follow-up, respectively, compared to the PN low-risk group. In PN high-risk patients, adjuvant therapy was associated with a significantly improved 5-year DFS (HR = 0.214, 95% CI: 0.048–0.957, p = 0.027). (4) Conclusions: the non-diploid DNA status and the combination of ploidy and nucleotyping can be useful prognostic indicators to predict long-term outcomes in early-stage NSCLC patients. Additionally, NSCLC patients with non-diploidy and chromatin homogenous status may benefit from adjuvant therapy. Full article
(This article belongs to the Special Issue Prognostic Biomarkers of Lung Cancer)
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15 pages, 1514 KB  
Article
Purkinje Cardiomyocytes of the Adult Ventricular Conduction System Are Highly Diploid but Not Uniquely Regenerative
by Hirofumi Watanabe, Ge Tao, Peiheng Gan, Baylee C. Westbury, Kristie D. Cox, Kelsey Tjen, Ruolan Song, Glenn I. Fishman, Takako Makita and Henry M. Sucov
J. Cardiovasc. Dev. Dis. 2023, 10(4), 161; https://doi.org/10.3390/jcdd10040161 - 7 Apr 2023
Cited by 3 | Viewed by 4288
Abstract
Adult hearts are characterized by inefficient regeneration after injury, thus, the features that support or prevent cardiomyocyte (CM) proliferation are important to clarify. Diploid CMs are a candidate cell type that may have unique proliferative and regenerative competence, but no molecular markers are [...] Read more.
Adult hearts are characterized by inefficient regeneration after injury, thus, the features that support or prevent cardiomyocyte (CM) proliferation are important to clarify. Diploid CMs are a candidate cell type that may have unique proliferative and regenerative competence, but no molecular markers are yet known that selectively identify all or subpopulations of diploid CMs. Here, using the conduction system expression marker Cntn2-GFP and the conduction system lineage marker Etv1CreERT2, we demonstrate that Purkinje CMs that comprise the adult ventricular conduction system are disproportionately diploid (33%, vs. 4% of bulk ventricular CMs). These, however, represent only a small proportion (3%) of the total diploid CM population. Using EdU incorporation during the first postnatal week, we demonstrate that bulk diploid CMs found in the later heart enter and complete the cell cycle during the neonatal period. In contrast, a significant fraction of conduction CMs persist as diploid cells from fetal life and avoid neonatal cell cycle activity. Despite their high degree of diploidy, the Purkinje lineage had no enhanced competence to support regeneration after adult heart infarction. Full article
(This article belongs to the Special Issue Cardiac Development, Regeneration and Repair)
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11 pages, 4532 KB  
Article
A Novel System for the Detection of Spontaneous Abortion-Causing Aneuploidy and Its Erroneous Chromosome Origins through the Combination of Low-Pass Copy Number Variation Sequencing and NGS-Based STR Tests
by Caixia Lei, Kai Liao, Yuwei Zhao, Zhoukai Long, Saijuan Zhu, Junping Wu, Min Xiao, Jing Zhou, Shuo Zhang, Lianbin Li, Yijian Zhu, Daru Lu, Jingmin Yang and Xiaoxi Sun
J. Clin. Med. 2023, 12(5), 1809; https://doi.org/10.3390/jcm12051809 - 23 Feb 2023
Cited by 11 | Viewed by 3638
Abstract
During the period of 2018–2020, we first combined reported low-pass whole genome sequencing and NGS-based STR tests for miscarriage samples analysis. Compared with G-banding karyotyping, the system increased the detection rate of chromosomal abnormalities in miscarriage samples to 56.4% in 500 unexplained recurrent [...] Read more.
During the period of 2018–2020, we first combined reported low-pass whole genome sequencing and NGS-based STR tests for miscarriage samples analysis. Compared with G-banding karyotyping, the system increased the detection rate of chromosomal abnormalities in miscarriage samples to 56.4% in 500 unexplained recurrent spontaneous abortions. In this study, a total of 386 STR loci were developed on twenty-two autosomes and two sex chromosomes (X and Y chromosomes), which can help to distinguish triploidy, uniparental diploidy and maternal cell contamination and can trace the parental origin of erroneous chromosomes. It is not possible to accomplish this with existing methods of detection in miscarriage samples. Among the tested aneuploid errors, the most frequently detected error was trisomy (33.4% in total and 59.9% in the error chromosome group). In the trisomy samples, 94.7% extra chromosomes were of maternal origin and 5.31% were of paternal origin. This novel system improves the genetic analysis method of miscarriage samples and provides more reference information for clinical pregnancy guidance. Full article
(This article belongs to the Topic Smart Healthcare: Technologies and Applications)
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15 pages, 1982 KB  
Article
Semen Thresholds of Normality Established by the WHO Do Not Reveal Genome Instability—A Potential Occult Male Factor
by Usha Punjabi, Ilse Goovaerts, Kris Peeters and Diane De Neubourg
Genes 2023, 14(2), 239; https://doi.org/10.3390/genes14020239 - 17 Jan 2023
Cited by 6 | Viewed by 3655
Abstract
Semen parameters are unable to inform on the function or fertilizing capacity of the male gamete. Standardized methods are provided by the WHO but, the lower reference limits have reduced sensitivity to predict chances of conception. Subfertile men may be falsely classified as [...] Read more.
Semen parameters are unable to inform on the function or fertilizing capacity of the male gamete. Standardized methods are provided by the WHO but, the lower reference limits have reduced sensitivity to predict chances of conception. Subfertile men may be falsely classified as “normal” and a male factor contributing to genome instability may be overlooked. Semen parameters, sperm DNA fragmentation (SDF), sperm chromatin maturity and stability, and sperm aneuploidy were assessed in fertile (F), subfertile normozoospermic (SN) and subfertile non-normozoospermic males (SN-N). Standardized assays employing flow cytometry were used to detect genome instability. Sperm DNA fragmentation did not differ significantly whether the semen samples were from a fertile (F), subfertile normozoospermic (SN) or subfertile non-normozoospermic male (SN-N). Chromatin decondensation was significantly reduced and hyperstability significantly increased in the SN group as compared to the F group. The frequency of diploidy was significantly different in the three study groups with significance between F and SN and between F and SN-N groups. Subfertile men with normal semen parameters are often excluded from extensive genetic testing. Genome instability might be an independent attribute of semen quality detecting problems not seen with semen analysis alone. Full article
(This article belongs to the Special Issue Male Infertility: From Genes to Genomes 2022)
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14 pages, 967 KB  
Review
Placental Mesenchymal Dysplasia and Beckwith–Wiedemann Syndrome
by Hidenobu Soejima, Satoshi Hara, Takashi Ohba and Ken Higashimoto
Cancers 2022, 14(22), 5563; https://doi.org/10.3390/cancers14225563 - 12 Nov 2022
Cited by 17 | Viewed by 5358
Abstract
Placental mesenchymal dysplasia (PMD) is characterized by placentomegaly, aneurysmally dilated chorionic plate vessels, thrombosis of the dilated vessels, and large grapelike vesicles, and is often mistaken for partial or complete hydatidiform mole with a coexisting normal fetus. Androgenetic/biparental mosaicism (ABM) has been found [...] Read more.
Placental mesenchymal dysplasia (PMD) is characterized by placentomegaly, aneurysmally dilated chorionic plate vessels, thrombosis of the dilated vessels, and large grapelike vesicles, and is often mistaken for partial or complete hydatidiform mole with a coexisting normal fetus. Androgenetic/biparental mosaicism (ABM) has been found in many PMD cases. Beckwith–Wiedemann syndrome (BWS) is an imprinting disorder with complex and diverse phenotypes and an increased risk of developing embryonal tumors. There are five major causative alterations: loss of methylation of imprinting control region 2 (KCNQ1OT1:TSS-DMR) (ICR2-LOM), gain of methylation at ICR1 (H19/IGF2:IG-DMR) (ICR1-GOM), paternal uniparental disomy of 11 (pUPD11), loss-of-function variants of the CDKN1C gene, and paternal duplication of 11p15. Additional minor alterations include genetic variants within ICR1, paternal uniparental diploidy/biparental diploidy mosaicism (PUDM, also called ABM), and genetic variants of KCNQ1. ABM (PUDM) is found in both conditions, and approximately 20% of fetuses from PMD cases are BWS and vice versa, suggesting a molecular link. PMD and BWS share some molecular characteristics in some cases, but not in others. These findings raise questions concerning the timing of the occurrence of the molecularly abnormal cells during the postfertilization period and the effects of these abnormalities on cell fates after implantation. Full article
(This article belongs to the Special Issue Beckwith–Wiedemann Spectrum and Cancer)
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18 pages, 2663 KB  
Article
Parthenocarpy and Self-Incompatibility in Mandarins
by Rafael Montalt, María Carmen Vives, Luis Navarro, Patrick Ollitrault and Pablo Aleza
Agronomy 2021, 11(10), 2023; https://doi.org/10.3390/agronomy11102023 - 9 Oct 2021
Cited by 19 | Viewed by 6424
Abstract
Citrus reproductive biology is complex. One of its characteristic features is parthenocarpy that enables seedless fruit production. Citrus parthenocarpy and self-incompatibility knowledge is only partial and sometimes discrepant. Increasing such knowledge is relevant for better managing cultivated varieties and improving the selection of [...] Read more.
Citrus reproductive biology is complex. One of its characteristic features is parthenocarpy that enables seedless fruit production. Citrus parthenocarpy and self-incompatibility knowledge is only partial and sometimes discrepant. Increasing such knowledge is relevant for better managing cultivated varieties and improving the selection of parents in breeding strategies to recover seedless varieties such as mandarins. This work develops an efficient protocol to characterize self-incompatibility and different parthenocarpy types based on emasculation, hand self-pollination, and hand cross-pollination. It analyzes fruit setting and seed production coupled with histological pollen performance observations. We analyzed the reproductive behavior of nine mandarin varieties with relevant characteristics as parents for seedless mandarin breeding. ‘Clemenules’ clementine and ‘Moncada’ mandarins were strictly self-incompatible with facultative and vegetative parthenocarpy; ‘Imperial’ mandarin and ‘Ellendale’ tangor displayed no strict self-incompatibility associated with facultative and vegetative parthenocarpy; ‘Fortune’ mandarin was self-incompatible with facultative and stimulative parthenocarpy; ‘Campeona’ and ‘Salteñita’ mandarins were self-compatible with vegetative parthenocarpy; ‘Serafines’ satsuma was associated with male sterility together with facultative and vegetative parthenocarpy; and ‘Monreal’ clementine was self-compatible and nonparthenocarpic. Our protocol can be applied for screening of mandarin germplasm and to characterize new parents. Reproductive behavior knowledge is important for optimizing seedless mandarin breeding programs based on diploidy, triploidy, or induced mutagenesis. Full article
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14 pages, 969 KB  
Article
FISH and Chimps: Insights into Frequency and Distribution of Sperm Aneuploidy in Chimpanzees (Pan troglodytes)
by Charlotte Guyot, Marlène Gandula, Wendy Noordermeer, Céline François-Brazier, Rosemary Moigno, Julien Bessonnat, Sophie Brouillet, Magali Dhellemmes, Marie Bidart, Christophe Arnoult, Véronique Satre, Charles Coutton and Guillaume Martinez
Int. J. Mol. Sci. 2021, 22(19), 10383; https://doi.org/10.3390/ijms221910383 - 27 Sep 2021
Cited by 2 | Viewed by 4009
Abstract
Numerical chromosomal aberrations in sperm are considered to be a major factor in infertility, early pregnancy loss and syndromes with developmental and cognitive disabilities in mammals, including primates. Despite numerous studies in human and farm animals, the incidence and importance of sperm aneuploidies [...] Read more.
Numerical chromosomal aberrations in sperm are considered to be a major factor in infertility, early pregnancy loss and syndromes with developmental and cognitive disabilities in mammals, including primates. Despite numerous studies in human and farm animals, the incidence and importance of sperm aneuploidies in non-human primate remains mostly undetermined. Here we investigated the incidence and distribution of sperm aneuploidy in chimpanzees (Pan troglodytes), the species closest to human. We identify evolutionary conserved DNA sequences in human and chimpanzee and selected homologous sub-telomeric regions for all chromosomes to build custom probes and perform sperm-FISH analysis on more than 10,000 sperm nuclei per chromosome. Chimpanzee mean autosomal disomy rate was 0.057 ± 0.02%, gonosomes disomy rate was 0.198% and the total disomy rate was 1.497%. The proportion of X or Y gametes was respectively 49.94% and 50.06% for a ratio of 1.002 and diploidy rate was 0.053%. Our data provide for the first time an overview of aneuploidy in non-human primate sperm and shed new insights into the issues of aneuploidy origins and mechanisms. Full article
(This article belongs to the Special Issue Mammalian Gametes: Molecular Traits Shaping Their Form and Fate)
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22 pages, 4730 KB  
Article
Virulence Traits and Population Genomics of the Black Yeast Aureobasidium melanogenum
by Anja Černoša, Xiaohuan Sun, Cene Gostinčar, Chao Fang, Nina Gunde-Cimerman and Zewei Song
J. Fungi 2021, 7(8), 665; https://doi.org/10.3390/jof7080665 - 16 Aug 2021
Cited by 27 | Viewed by 9580
Abstract
The black yeast-like fungus Aureobasidium melanogenum is an opportunistic human pathogen frequently found indoors. Its traits, potentially linked to pathogenesis, have never been systematically studied. Here, we examine 49 A. melanogenum strains for growth at 37 °C, siderophore production, hemolytic activity, and assimilation [...] Read more.
The black yeast-like fungus Aureobasidium melanogenum is an opportunistic human pathogen frequently found indoors. Its traits, potentially linked to pathogenesis, have never been systematically studied. Here, we examine 49 A. melanogenum strains for growth at 37 °C, siderophore production, hemolytic activity, and assimilation of hydrocarbons and human neurotransmitters and report within-species variability. All but one strain grew at 37 °C. All strains produced siderophores and showed some hemolytic activity. The largest differences between strains were observed in the assimilation of hydrocarbons and human neurotransmitters. We show for the first time that fungi from the order Dothideales can assimilate aromatic hydrocarbons. To explain the background, we sequenced the genomes of all 49 strains and identified genes putatively involved in siderophore production and hemolysis. Genomic analysis revealed a fairly structured population of A.melanogenum, raising the possibility that some phylogenetic lineages have higher virulence potential than others. Population genomics indicated that the species is strictly clonal, although more than half of the genomes were diploid. The existence of relatively heterozygous diploids in an otherwise clonal species is described for only the second time in fungi. The genomic and phenotypic data from this study should help to resolve the non-trivial taxonomy of the genus Aureobasidium and reduce the medical hazards of exploiting the biotechnological potential of other, non-pathogenic species of this genus. Full article
(This article belongs to the Special Issue Ecology and Evolution of Black Fungi)
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15 pages, 1804 KB  
Review
Applications of Genome Editing Technology in Research on Chromosome Aneuploidy Disorders
by Silvia Natsuko Akutsu, Kazumasa Fujita, Keita Tomioka, Tatsuo Miyamoto and Shinya Matsuura
Cells 2020, 9(1), 239; https://doi.org/10.3390/cells9010239 - 17 Jan 2020
Cited by 12 | Viewed by 8627
Abstract
Chromosomal segregation errors in germ cells and early embryonic development underlie aneuploidies, which are numerical chromosomal abnormalities causing fetal absorption, developmental anomalies, and carcinogenesis. It has been considered that human aneuploidy disorders cannot be resolved by radical treatment. However, recent studies have demonstrated [...] Read more.
Chromosomal segregation errors in germ cells and early embryonic development underlie aneuploidies, which are numerical chromosomal abnormalities causing fetal absorption, developmental anomalies, and carcinogenesis. It has been considered that human aneuploidy disorders cannot be resolved by radical treatment. However, recent studies have demonstrated that aneuploidies can be rescued to a normal diploid state using genetic engineering in cultured cells. Here, we summarize a series of studies mainly applying genome editing to eliminate an extra copy of human chromosome 21, the cause of the most common constitutional aneuploidy disorder Down syndrome. We also present findings on induced pluripotent stem cell reprogramming, which has been shown to be one of the most promising technologies for converting aneuploidies into normal diploidy without the risk of genetic alterations such as genome editing-mediated off-target effects. Full article
(This article belongs to the Special Issue Genome Editing Systems, Methods, Techniques and Their Application)
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