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Sudbrack, V.

Publications and source records attributed to Sudbrack, V..

2 recordsLinked to original sources

The evolution of tandem repeat sequences under partial selfing and different modes of selection

Tandem repeat sequences (TRs) occur when short DNA motifs are repeated head-to-tail along chromosomes and are a major source of genetic variation. Population genetics models of TR evolution have focused on large, randomly mating, haploid populations. Yet many organisms reproduce partially through self-fertilisation ("selfing"), which increases homozygosity and thus may alter the evolutionary processes shaping TRs. Here we use mathematical modelling and simulations to study the evolution of homologous TRs in partially selfing, diploid populations under four different selective regimes that may be relevant to TRs: (i) additive purifying selection, (ii) truncation-like purifying selection, (iii) selection against heterozygotes due to misalignment costs, and (iv) stabilising selection favouring an intermediate TR length. We show that selfing influences TR evolution primarily by increasing homozygosity, with two main consequences: (1) it enhances the variation produced by unequal recombination within individuals, and (2) it increases variation between individuals. Consequently, selection against TR expansions becomes more effective under partial selfing across all modes of selection considered, resulting in shorter TRs and lower genetic load, despite higher genetic drift. Overall, our results suggest that mating systems and inbreeding are important factors shaping variation in TRs.

evolutionary biology↗

Tempo of hard and soft sweeps in subdivided populations

The rate at which beneficial alleles fix in a population depends on the probability of and time to fixation of such alleles. Both of these quantities can be significantly impacted by population subdivision and limited gene flow. Here, we investigate how limited dispersal influences the rate of fixation of beneficial de novo mutations, as well as fixation time from standing genetic variation. We investigate this for a population structured according to the island model of dispersal allowing us to use the diffusion approximation, which we complement with simulations. We find that fixation may take on average fewer generations under limited dispersal than under panmixia when selection is moderate. This is especially the case if adaptation occurs from de novo recessive mutations, and dispersal is not too limited (such that approximately FST < 0.2). The reason is that mildly limited dispersal leads to only a moderate increase in effective population size (which slows down fixation), but is sufficient to cause a relative excess of homozygosity due to inbreeding, thereby exposing rare recessive alleles to selection (which accelerates fixation). We also explore the effect of meta-population dynamics through local extinction followed by recolonization, finding that such dynamics always accelerate fixation from standing genetic variation, while de novo mutations show faster fixation interspersed with longer waiting times. Finally, we discuss the implications of our results for the detection of sweeps, suggesting that limited dispersal mitigates the expected differences between the genetic signatures of sweeps involving recessive and dominant alleles.

evolutionary biology↗