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Cornet, C.

Publications and source records attributed to Cornet, C..

4 recordsLinked to original sources

Comparative analyses reveal rapid turnover and emergence of transitory 3D genome architectures in the fungal kingdom

The three-dimensional architecture of genomes plays major roles in biological processes such as gene expression and DNA replication. The architecture of genomes has evolved substantially with distinct 3D genome shapes being identified in different lineages. The factors driving the evolution of genome architectures have primarily been assessed in animals and plants, yet large parts of the tree of life remain poorly explored. Fungi offer excellent models to assess the evolution of 3D genome architecture in a phylogenetic context given rapid genome size changes and chromosomal sequence turnover. Here, we analyzed chromosome conformation data (Hi-C) of 55 fungal species with completely assembled genomes. We identified ten species with Rabl, one species with chromosome territories and ten with a novel, intermediate chromosomal architecture, where centromeres and telomeres are at opposites in the nucleus (Rabl-like) but with a distinct 3D organization. This "bean" shape likely evolved several times independently. The discovery of a genome with a chromosome territories conformation was unexpected, as this was thought to be associated with condensin II subunits in the animal kingdom. We investigated whether 3D conformations correlated with genome size and repeat content using phylogenetic independent contrasts, however we found no genomic feature to be significantly associated with changes in genome architecture. Overall, we report the first large-scale comparison of 3D genome architecture in the fungal kingdom and identify a novel "bean" configuration. SignificanceThree-dimensional genome architecture strongly influences gene regulation, yet little is known about 3D genome architecture in an organismal group that has adapted to nearly all ecosystems on our planet, Fungi. We reconstructed 3D genome architectures from 55 fungal species covering three different phyla and demonstrate that most species do not conform to the existing definitions of 3D architectures. We identified the first case of Chromosome Territories in the Fungal Kingdom and a previously undescribed organization that we label "bean-shaped", and show that some fungal species do not conform to the canonical 3D-architecture categories of the animal and plant kingdoms. The diversity of genome architectures observed in the study could reflect the diverse gene regulatory mechanisms known from Fungi and marks the beginning of mapping out 3D genome organizations in this diverse clade. Further research in this area will uncover the diverse strategies employed by Fungi in light of their rapid adaptation.

evolutionary biology↗

Genomic insights into the karyotypic radiation of a narrow endemic holocentric plant Carex helodes

Holocentric chromosomes allow rapid genome changes through chromosomal rearrangements such as fissions, fusions, inversions or translocations. The plant genus Carex shows one of the highest rates of karyotypic evolution among holocentric organisms. We studied the genomic patterns underlying chromosomal rearrangements in the karyotypic radiation of the narrow endemic species Carex helodes (2n = 68-75). Comparing genome assemblies of C. helodes from the two karyologically distinct extremes of its European distribution, revealed a striking number of eight chromosomal rearrangements including fusions, translocations and inversions. Genomic breakpoints are gene-poor and TE-rich, corroborating findings in other species and suggesting common genomic characteristics that facilitate the evolution and establishment of chromosomal rearrangements. We identified a chromosomal inversion exhibiting patterns of purifying selection and enrichment in functional genes that potentially mediate rearrangement tolerance. Conversely, another inversion displayed elevated sequence divergence and enrichment in response to temperature stress and phosphate limitation, matching key environmental variables that differ between the study localities. The establishment of chromosomal rearrangements along Carex helodes European populations was likely driven by demographic bottlenecks and distinct genomic features at breakpoints. Our findings provide preliminary evidence on the rearrangement role in population differentiation either as reproductive barriers or as genomic islands of differentiation.

genomics↗

Transposable elements underlie chromosomal fusions and fissions in a highly species-rich group of butterflies

Chromosomal fusions and fissions reshape karyotypes, recombination landscapes and patterns of speciation, yet the molecular mechanisms underlying their formation remain poorly understood. Comparing 37 chromosome-level Erebia genomes, a butterfly genus with exceptionally high rates of chromosomal rearrangements, we identify more than 250 fusion and fission events and characterise over one hundred breakpoints. Breakpoints and homologous regions in the most closely related species with the unfused chromosomal state are significantly enriched for repetitive elements, particularly R1-like LINE retrotransposons. This provides evidence for the implication of a specific LINE family in inter-chromosomal rearrangements that promote species diversification. R1-like elements at breakpoints are longer than copies in other genomic regions, consistent with ectopic recombination requiring sufficient sequence length and similarity. However, the burst of rearrangements in the youngest and most species-rich Erebia clade does not coincide with increased R1-like activity, indicating that repeat dynamics does not solely account for the elevated rates of fusion and fission. Indeed, we detect lineage-specific gains and losses of genes involved in DNA repair and chromatin organisation that coincide with this burst, suggesting a genomic context that facilitates chromosomal fusions and fissions. Our findings refine the role of repetitive elements in inter-chromosomal rearrangements, identify a candidate substrate for ectopic recombination in Lepidoptera, and establish a framework for understanding how karyotypic diversity arises.

evolutionary biology↗

Transcriptomic analysis of chronic chikungunya in the Reunionese CHIKGene cohort uncovers a shift in gene expression more than 10 years after infection

AimIn 2005-2006, a chikungunya epidemic of unprecedented magnitude hit Reunion Island, which raised a public health concern through the substantial proportions of long-lasting manifestations. To understand the pathophysiology underlying chronic chikungunya (CC), we designed the CHIKGene cohort study and collected blood samples from 133 subjects diagnosed with CC and from 86 control individuals that had recovered within 3 months, 12-to-15 years after exposure. MethodsWe conducted bulk RNAseq analysis on peripheral blood mononuclear cells to find differentially expressed genes (DEGs), gene set enrichment analysis (GSEA) and gene ontologies to uncover top-level enriched terms associated with DEGs, and weighted gene correlation network analysis (WGCNA) to elucidate underlying cellular processes. ResultsAmong 1549 DEGs, gene expression analysis identified 10 top genes including NR4A2 and TRIM58 (upregulated in CC), IGHG3 and IGHV3-49 (downregulated in CC) linked to immune regulation, OSBP2 (upregulated in CC) and SEMA6B (downregulated in CC) linked to neuronal homeostasis and axon guidance, respectively. GSEA and WGCNA unveiled cellular processes such as "Metabolism of RNA" and "Cell Cycle". ConclusionsThis study uncovers a shift in gene expression of CC subjects. IGHG3 and IGHV3-49 gene shut-offs spotlight the importance of neutralizing antibodies against chikungunya virus in the progression to chronic disease. Human diseases associations highlight connections to rheumatoid arthritis, nervous and cardiac systems. GSEA and WGCNA bounce the hypotheses of a persistent viral reservoir or an increased susceptibility to RNA viral pathogens with new onset infections. Together, our findings might offer potential targets for therapeutic options aimed at alleviating chronic chikungunya.

bioinformatics↗