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Perez-Collazos, E.

Publications and source records attributed to Perez-Collazos, E..

2 recordsLinked to original sources

Genomics and adaptive divergence of the allopolyploid grass Brachypodium hybridum in a pangenotypic framework

Natural allopolyploids with multiple origins are powerful systems for analyzing genome evolution; however, population-level whole-genome studies of wild-type recurrent polyploids remain scarce. We investigated the origins and evolutionary dynamics of the allotetraploid grass Brachypodium hybridum and its diploid progenitors (B. distachyon, B. stacei) by combining whole-genome sequencing of 307 accessions from across the circum-Mediterranean region with phylogenomics, population genomics, and comparative subgenomic analyses. Nuclear and plastome phylogenies reveal three independent allopolyploidization events: an ancient Iberian origin (~1.78 Ma) and two more recent origins in the western (~0.56 Ma) and eastern (~0.24 Ma) Mediterranean. Each subgenome (D and S) evolved independently with minimal recombination. All B. hybridum lineages carry higher deleterious loads than their diploid progenitors, and the Ancient lineage carries a disproportionately heavy burden, particularly in the S subgenome. Population structure identifies three genetic groups; while the Ancient lineage remained isolated, recent western and eastern lineages exchanged migrants in the eastern Mediterranean contact zone. Brachypodium hybridum exemplifies how recurrent allopolyploidization, minimal subgenomic recombination, and environmental filtering generate and maintain genetic diversity, establishing it as a model for polyploid evolution and ecological adaptation in grasses worldwide.

plant biology↗

A Palearctic divide, niche conservatism and host-fungal endophyte interactions shaped the phylogeography of the grass Brachypodium sylvaticum

Brachypodium sylvaticum is a perennial woodland grass selected as model species for perenniality, which is widely distributed across the Palearctic. This plant forms a symbiosis with the endophytic fungus Epichloe sylvatica. We integrate whole-genome phylogenomics, plastome analysis, environmental niche modeling (ENM), and coevolutionary analyses to investigate the diversification of B. sylvaticum and its fungal symbiont. Using 94 representative individuals spanning Eurasia and North Africa, we recovered two deeply divergent sister lineages (Eastern and Western Palearctic), with cytonuclear discordances suggesting historical plastid capture events in the western group. Admixture analysis revealed four genetic clusters, including signatures of secondary contact and hybridization in the Western lineage. Filtered ITS sequences of E. sylvatica recovered from holobiont genome skimming reads enabled phylogenetic reconstruction, revealing two fungal clades that broadly mirror their hosts evolutionary history in the West. PACo and ParaFit analyses supported partial co-divergence between hosts and endophytes. ENM projections identified climatically stable glacial refugia for both B. sylvaticum main lineages during the Last Glacial Maximum and asymmetric postglacial expansion, with moderate niche shifts in the West and stronger turnover in the East. Evidence of niche overlap and similarity indicated niche conservatism among clades, suggesting that geographic isolation, rather than adaptive divergence, was the primary driver of lineage splitting. IBD and IBE patterns significantly influenced divergences in the Western, but not the Eastern, group, highlighting contrasting demographic and ecological dynamics. Our results provide the first evidence of coevolutionary and ecological structuring in B. sylvaticum-E. sylvatica holobionts across their Western native range.

plant biology↗