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Rubtsov, A. S.

Publications and source records attributed to Rubtsov, A. S..

2 recordsLinked to original sources

Evidence for a chromosomal inversion maintaining divergent plumage phenotypes between extensively hybridizing yellowhammers (Emberiza citrinella) and pine buntings (E. leucocephalos)

In an allopatric speciation model, populations of a species become isolated by a geographic barrier and develop reproductive isolation through genetic differentiation. When populations meet in secondary contact, the strength of evolved reproductive barriers determines the extent of hybridization and whether the populations will continue to diverge or merge back together. The yellowhammer (Emberiza citrinella) and pine bunting (E. leucocephalos) are avian sister species that diverged in allopatry during the Pleistocene glaciations. Though they differ greatly in plumage and form distinct genetic clusters in allopatry, these taxa show negligible mitochondrial DNA differentiation and hybridize extensively in sympatry lending uncertainty to the state of reproductive isolation in the system. To assess the strength of reproductive barriers between taxa, we examined genomic differentiation across the yellowhammer and pine bunting system. We found that extensive admixture has occurred in sympatry, indicating that reproductive barriers between taxa are weak. We also identified a putative Z chromosome inversion that underlies plumage variation in the system, with the "pine bunting" inversion form showing dominance over the "yellowhammer" form. Our results suggest that yellowhammers and pine buntings are currently at a crossroads and that evolutionary forces may push this system towards either continued differentiation or population merging. However, even if these taxa merge, recombination suppression between chromosome Z inversion forms may maintain divergent plumage phenotypes within the system. In this way, our findings highlight the important role hybridization plays in increasing the genetic and phenotypic variation as well as the evolvability of a system.

evolutionary biology↗

Mitonuclear co-introgression opposes genetic differentiation between phenotypically divergent songbirds

Comparisons of genomic variation among closely related species often show more differentiation in mitochondrial DNA (mtDNA) and sex chromosomes than in autosomes, a pattern expected due to the differing effective population sizes and evolutionary dynamics of these genomic components. Yet, introgression can cause species pairs to deviate dramatically from general differentiation trends. The yellowhammer (Emberiza citrinella) and the pine bunting (E. leucocephalos) are hybridizing avian sister species that differ greatly in appearance and moderately in nuclear DNA, but that show no mtDNA differentiation. This mitonuclear discordance is best explained by adaptive mtDNA introgression--a process that can select for co-introgression at nuclear genes with mitochondrial functions (mitonuclear genes). To better understand the extent of mitonuclear discordance and characterize nuclear differentiation patterns in this system, we investigated genome-wide differentiation between allopatric yellowhammers and pine buntings and compared it to what was seen previously in mtDNA. We found significant nuclear differentiation that was highly heterogeneous across the genome, with a particularly wide differentiation peak on the sex chromosome Z. We further tested for preferential introgression of mitonuclear genes and found statistical support for this process in yellowhammers. A role for mitonuclear coevolution in this system is supported by a stronger signal of co-introgression in genes coding for subunits of the mitoribosome and electron transport chain complexes. Altogether, our study emphasizes the extreme variation seen in differentiation across genomic components and study systems as well as highlights the ramifications of this variation in species evolution.

evolutionary biology↗