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Kolesnikova, U. K.

Publications and source records attributed to Kolesnikova, U. K..

2 recordsLinked to original sources

Diploid origins, adaptation to polyploidy, and the beginning of rediploidization in allotetraploid Arabidopsis suecica

Polyploidization, followed by genome downsizing, is a recurrent evolutionary cycle that dramatically reshapes genome structure. Newly formed polyploids must quickly adjust their cell division machinery to maintain stable chromosome inheritance, while long-term stabilization involves rediploidization, returning the genome to a diploid-like state. Here, we investigate the origin and early genome evolution of Arabidopsis suecica, a hybrid polyploid derived from A. thaliana and A. arenosa Leveraging a recent genome assembly for A. suecica along with population level whole-genome resequencing of all three species, we identify the closest progenitors to A. suecica and use this knowledge to examine genes under positive selection and to assess compensatory dynamics between homeologs carrying loss-of-function mutations. Our findings show that both parental species were diploid, including the paternal A. arenosa progenitor. We identify evidence for de novo adaptation to allopolyploidy within the A. arenosa sub-genome of A. suecica, including genes involved in homolog pairing and recombination. Although relaxed purifying selection is evident, likely due to the genome-wide redundancy, we observe functional compensation between homeologous gene pairs in A. suecica: when one copy loses function, the other maintains it Together, these findings revise the origin of A. suecica and identify early genome stabilization mechanisms, including evidence for meiotic adaptation and mutational buffering through homeologous gene compensation.

genomics↗

Multiple polyploidizations in Arabidopsis lyrata stabilized by long-range adaptive introgression across Eurasia

Abundance of polyploidy varies across lineages, evolutionary time and geography, suggesting both genetics and environment play a role in polyploid persistence. Arabidopsis lyrata appears to be the most polyploidy-rich species-complex in the Arabidopsis genus, with multiple origins of autotetraploidy. This is revealed by genomic data from over 400 samples across Eurasia. We found over 30 previously undescribed autotetraploid populations in Siberia with a minimum of two separate origins, independent of those previously reported in Central Europe. The establishment of Siberian tetraploids is mediated by meiotic adaptation at the same genes as in European tetraploid A. lyrata and Arabidopsis arenosa, despite high divergence and geographical separation. Haplotype analysis based on synthetic long-read assemblies supports the long-range introgression of adaptive alleles from the tetraploid interspecific pool of European A. lyrata and A. arenosa to tetraploid Siberian A. lyrata. Once evolved, adaptation to polyploidy promotes the establishment of new polyploid lineages through adaptive inter- and intraspecific introgression.

genomics↗