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有偏基因转换限制了. 的适应。

Biased Gene Conversion Constrains Adaptation in .

机构信息

Department of Plant and Microbial Biology, University of Minnesota, St. Paul, Minnesota 55108

Department of Plant and Microbial Biology, University of Minnesota, St. Paul, Minnesota 55108.

出版信息

Genetics. 2020 Jul;215(3):831-846. doi: 10.1534/genetics.120.303335. Epub 2020 May 15.

Abstract

Reduction of fitness due to deleterious mutations imposes a limit to adaptive evolution. By characterizing features that influence this genetic load we may better understand constraints on responses to both natural and human-mediated selection. Here, using whole-genome, transcriptome, and methylome data from >600 individuals, we set out to identify important features influencing selective constraint. Our analyses reveal that multiple factors underlie the accumulation of maladaptive mutations, including gene expression level, gene network connectivity, and gene-body methylation. We then focus on a feature with major effect, nucleotide composition. The ancestral derived status of segregating alleles suggests that GC-biased gene conversion, a recombination-associated process that increases the frequency of G and C nucleotides regardless of their fitness effects, shapes sequence patterns in Through estimation of mutational effects, we present evidence that biased gene conversion hinders the purging of deleterious mutations and contributes to a genome-wide signal of decreased efficacy of selection. By comparing these results to two outcrossing relatives, and , we find that protein evolution in is as strongly affected by biased gene conversion as in the outcrossing species. Last, we perform simulations to show that natural levels of outcrossing in are sufficient to facilitate biased gene conversion despite increased homozygosity due to selfing. Together, our results show that even predominantly selfing taxa are susceptible to biased gene conversion, suggesting that it may constitute an important constraint to adaptation among plant species.

摘要

有害突变导致适应性进化受限。通过描述影响这种遗传负荷的特征,我们可以更好地理解自然选择和人为选择的限制。在这里,我们使用来自 >600 个人的全基因组、转录组和甲基组数据,旨在确定影响选择约束的重要特征。我们的分析表明,多种因素导致了适应性突变的积累,包括基因表达水平、基因网络连接性和基因体甲基化。然后,我们将重点放在一个具有重大影响的特征上,即核苷酸组成。分离等位基因的祖先衍生状态表明,GC 偏向性基因转换是一种与重组相关的过程,它会增加 G 和 C 核苷酸的频率,而不管它们的适应度效应如何,从而塑造了 中的序列模式。通过估计突变效应,我们提供了证据表明,偏向性基因转换阻碍了有害突变的清除,并导致选择有效性的全基因组信号降低。通过将这些结果与两个异交亲属 和 进行比较,我们发现,偏向性基因转换对 的蛋白质进化的影响与异交物种一样强烈。最后,我们进行模拟表明,尽管自交导致了更高的纯合性,但 中的自然异交水平足以促进偏向性基因转换。总之,我们的结果表明,即使是主要自交的类群也容易受到偏向性基因转换的影响,这表明它可能是植物物种适应的一个重要限制。

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