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交配系统对开花植物序列多态性模式的影响。

Impact of mating systems on patterns of sequence polymorphism in flowering plants.

作者信息

Glémin Sylvain, Bazin Eric, Charlesworth Deborah

机构信息

UMR 5171 Génome, Populations, Interactions, Adaptation, Université Montpellier II, 34095 Montpellier, France.

出版信息

Proc Biol Sci. 2006 Dec 7;273(1604):3011-9. doi: 10.1098/rspb.2006.3657.

Abstract

A fundamental challenge in population genetics and molecular evolution is to understand the forces shaping the patterns of genetic diversity within and among species. Among them, mating systems are thought to have important influences on molecular diversity and genome evolution. Selfing is expected to reduce effective population size, Ne, and effective recombination rates, directly leading to reduced polymorphism and increased linkage disequilibrium compared with outcrossing. Increased isolation between populations also results directly from selfing or indirectly from evolutionary changes, such as small flowers and low pollen output, leading to greater differentiation of molecular markers than under outcrossing. The lower effective recombination rate increases the likelihood of hitch-hiking, further reducing within-deme diversity of selfers and thus increasing their genetic differentiation. There are also indirect effects on molecular evolutionary processes. Low Ne reduces the efficacy of selection; in selfers, selection should thus be less efficient in removing deleterious mutations. The rarity of heterozygous sites in selfers leads to infrequent action of biased conversion towards GC, which tends to increase sequences' GC content in the most highly recombining genome regions of outcrossers. To test these predictions in plants, we used a newly developed sequence polymorphism database to investigate the effects of mating system differences on sequence polymorphism and genome evolution in a wide set of plant species. We also took into account other life-history traits, including life form (whether annual or perennial herbs, and woody perennial) and the modes of pollination and seed dispersal, which are known to affect enzyme and DNA marker polymorphism. We show that among various life-history traits, mating systems have the greatest influence on patterns of polymorphism.

摘要

群体遗传学和分子进化中的一个基本挑战是理解塑造物种内部和物种间遗传多样性模式的各种力量。其中,交配系统被认为对分子多样性和基因组进化具有重要影响。与异交相比,自交预计会减小有效种群大小Ne和有效重组率,直接导致多态性降低和连锁不平衡增加。种群间隔离的增加也直接源于自交,或间接源于进化变化,如小花和低花粉产量,导致分子标记的分化程度高于异交情况。较低的有效重组率增加了搭便车效应的可能性,进一步降低了自交物种群体内的多样性,从而增加了它们的遗传分化。自交对分子进化过程也有间接影响。低Ne降低了选择的有效性;因此,在自交物种中,选择在去除有害突变方面的效率应该较低。自交物种中杂合位点的稀少导致向GC的偏向性转换很少发生,而在异交物种中,这种转换往往会增加高度重组的基因组区域中序列的GC含量。为了在植物中检验这些预测,我们使用了一个新开发的序列多态性数据库,来研究交配系统差异对一系列植物物种的序列多态性和基因组进化的影响。我们还考虑了其他生活史特征,包括生活型(一年生或多年生草本植物,以及多年生木本植物)以及授粉和种子传播方式,已知这些特征会影响酶和DNA标记的多态性。我们表明,在各种生活史特征中,交配系统对多态性模式的影响最大。

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