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Million years old recombination suppression and balancing selection in a region linked to the mating-type locus in the invasive chestnut blight fungal pathogen Cryphonectria parasitica

Hartmann, F. E.; Rodriguez de la Vega, R. C.; Rougemont, Q.; Demene, A.; Badet, T.; Croll, D.; Labat, A.; Prospero, S.; Snirc, A.; Stauber, L.; Dutech, C.; Giraud, T.

2024-03-30 evolutionary biology
10.1101/2024.03.29.587348 bioRxiv
Show abstract

Recombination suppression can evolve in sex or mating-type chromosomes, or in autosomal supergenes, with different haplotypes being maintained by balancing selection. In the invasive chestnut blight fungus Cryphonectria parasitica, a genomic region was suggested to lack recombination and to be partially linked to the mating-type (MAT) locus based on segregation analyses. Using hundreds of available C. parasitica genomes and generating new high-quality genome assemblies, we show that a ca. 1.2 Mb genomic region proximal to the mating-type locus lacks recombination, with the segregation of two highly differentiated haplotypes in balanced proportions in invasive populations. High-quality genome assemblies further revealed an inversion in one of the haplotypes in the invaded range. The two haplotypes were estimated to have diverged 1.5 million years ago, and each harboured specific genes, some of which likely belonging to Starship elements, that are large mobile elements, mobilized by tyrosine recombinases, able to move accessory genes, and involved in adaptation in multiple fungi. The MAT-proximal region carried genes upregulated under virus infection or vegetative incompatibility reaction. In the native range, the MAT-proximal region also appeared to have a different evolutionary history than the rest of the genome. In all continents, the MAT-Proximal region was enriched in non-synonymous substitutions, in gene presence/absence polymorphism, in tyrosine recombinases and in transposable elements. This study thus sheds light on a case of a large non-recombining region partially linked to a mating compatibility locus, with likely balancing selection maintaining differentiated haplotypes, possibly involved in adaptation in a devastating tree pathogen.

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