bioRxiv · 10.1101/2023.04.04.535574
Three-dimensional chromatin organization promotes genome evolution in a fungal plant pathogen
Abstract
The spatial organization of eukaryotic genomes is linked to their biological functions, although it is not clear how this impacts the overall evolution of a genome. Here, we uncover the three-dimensional (3D) genome organization of the phytopathogen Verticillium dahliae, known to possess distinct genomic regions, designated adaptive genomic regions (AGRs), enriched in transposable elements and genes that mediate host infection. Short-range DNA interactions form clear topologically associating domains (TADs) with gene-rich boundaries that show reduced levels of gene expression and reduced genomic variation. Intriguingly, TADs are less clearly structured in AGRs than in the core genome. At a global scale, the genome contains bipartite long-range interactions, particularly enriched for AGRs and more generally containing segmental duplications. Notably, the patterns observed for V. dahliae are also present in other Verticillium species. Thus, our analysis links 3D genome organization to evolutionary features conserved throughout the Verticillium genus.
Source connections
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Torres, D., Kramer, M., Tracanna, V., Lorencini Fiorin, G., Cook, D., Seidl, M. F., Thomma, B.. 2023-04-04. Three-dimensional chromatin organization promotes genome evolution in a fungal plant pathogen. https://doi.org/10.1101/2023.04.04.535574
Cite the original work for its findings. Save a collection to share your selection of sources.