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哺乳动物减数分裂重组途径的分子进化。

Molecular evolution of the meiotic recombination pathway in mammals.

机构信息

Laboratory of Genetics, University of Wisconsin, Madison, Wisconsin, 53706.

Department of Biological Sciences, Mississippi State University, Mississippi, 39762.

出版信息

Evolution. 2019 Dec;73(12):2368-2389. doi: 10.1111/evo.13850. Epub 2019 Nov 7.

Abstract

Meiotic recombination shapes evolution and helps to ensure proper chromosome segregation in most species that reproduce sexually. Recombination itself evolves, with species showing considerable divergence in the rate of crossing-over. However, the genetic basis of this divergence is poorly understood. Recombination events are produced via a complicated, but increasingly well-described, cellular pathway. We apply a phylogenetic comparative approach to a carefully selected panel of genes involved in the processes leading to crossovers-spanning double-strand break formation, strand invasion, the crossover/non-crossover decision, and resolution-to reconstruct the evolution of the recombination pathway in eutherian mammals and identify components of the pathway likely to contribute to divergence between species. Eleven recombination genes, predominantly involved in the stabilization of homologous pairing and the crossover/non-crossover decision, show evidence of rapid evolution and positive selection across mammals. We highlight TEX11 and associated genes involved in the synaptonemal complex and the early stages of the crossover/non-crossover decision as candidates for the evolution of recombination rate. Evolutionary comparisons to MLH1 count, a surrogate for the number of crossovers, reveal a positive correlation between genome-wide recombination rate and the rate of evolution at TEX11 across the mammalian phylogeny. Our results illustrate the power of viewing the evolution of recombination from a pathway perspective.

摘要

减数分裂重组塑造了进化,并有助于确保大多数有性繁殖的物种正确分离染色体。重组本身也在进化,不同物种之间的交叉重组率存在显著差异。然而,这种差异的遗传基础还知之甚少。重组事件是通过一个复杂但越来越被充分描述的细胞途径产生的。我们应用系统发育比较方法,对涉及导致交叉的一系列基因进行了精心选择,这些基因包括双链断裂的形成、链入侵、交叉/非交叉决定以及解决途径,以重建真兽类哺乳动物中重组途径的进化,并确定可能导致物种间差异的途径成分。11 个重组基因,主要涉及同源配对的稳定和交叉/非交叉决定,在哺乳动物中表现出快速进化和正选择的证据。我们强调参与联会复合体和交叉/非交叉决定早期阶段的 TEX11 及其相关基因是重组率进化的候选基因。与 MLH1 计数的进化比较,MLH1 计数是交叉数的替代物,揭示了整个哺乳动物系统发育中基因组范围内重组率与 TEX11 进化率之间的正相关性。我们的研究结果说明了从途径角度看待重组进化的力量。

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