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Laigle, A.

Publications and source records attributed to Laigle, A..

2 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↗

The expansion and diversification of epigenetic regulatory networks underpins major transitions in the evolution of land plants

Epigenetic silencing is essential for regulating gene expression and cellular diversity in eukaryotes. While DNA and H3K9 methylation silence transposable elements (TEs), H3K27me3 marks deposited by the Polycomb repressive complex 2 (PRC2) silence varying proportions of TEs and genes across different lineages. Despite the major development role epigenetic silencing plays in multicellular eukaryotes, little is known about how epigenetic regulatory networks were shaped over evolutionary time. Here, we analyse epigenomes from diverse species across the green lineage to infer the chronological epigenetic recruitment of genes during land plant evolution. We first reveal the nature of plant heterochromatin in the unicellular chlorophyte microalga Chlorella sorokiniana and identify several genes marked with H3K27me3, highlighting the deep origin of PRC2-regulated genes in the green lineage. By incorporating genomic phylostratigraphy, we show how genes of differing evolutionary age occupy distinct epigenetic states in plants. While young genes tend to be silenced by H3K9 methylation, genes that emerged in land plants are preferentially marked with H3K27me3, some of which form part of a common network of PRC2-repressed genes across distantly-related species. Finally, we analyse the potential recruitment of PRC2 to plant H3K27me3 domains and identify conserved DNA-binding sites of ancient transcription factor (TF) families known to interact with PRC2. Our findings shed light on the conservation and potential origin of epigenetic regulatory networks in the green lineage, while also providing insight into the evolutionary dynamics and molecular triggers that underlie the adaptation and elaboration of epigenetic regulation, laying the groundwork for its future consideration in other eukaryotic lineages.

evolutionary biology↗