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部分自交情况下数量遗传方差的维持及其对自交进化的影响

Maintenance of Quantitative Genetic Variance Under Partial Self-Fertilization, with Implications for Evolution of Selfing.

作者信息

Lande Russell, Porcher Emmanuelle

机构信息

Department of Life Sciences, Imperial College London, Silwood Park Campus, Ascot, Berkshire SL5 7PY, United Kingdom

Centre d'Ecologie et des Sciences de la Conservation (UMR7204), Sorbonne Universités, MNHN, Centre National de la Recherche Scientifique, UPMC, 75005 Paris, France.

出版信息

Genetics. 2015 Jul;200(3):891-906. doi: 10.1534/genetics.115.176693. Epub 2015 May 11.

Abstract

We analyze two models of the maintenance of quantitative genetic variance in a mixed-mating system of self-fertilization and outcrossing. In both models purely additive genetic variance is maintained by mutation and recombination under stabilizing selection on the phenotype of one or more quantitative characters. The Gaussian allele model (GAM) involves a finite number of unlinked loci in an infinitely large population, with a normal distribution of allelic effects at each locus within lineages selfed for τ consecutive generations since their last outcross. The infinitesimal model for partial selfing (IMS) involves an infinite number of loci in a large but finite population, with a normal distribution of breeding values in lineages of selfing age τ. In both models a stable equilibrium genetic variance exists, the outcrossed equilibrium, nearly equal to that under random mating, for all selfing rates, r, up to critical value, [Formula: see text], the purging threshold, which approximately equals the mean fitness under random mating relative to that under complete selfing. In the GAM a second stable equilibrium, the purged equilibrium, exists for any positive selfing rate, with genetic variance less than or equal to that under pure selfing; as r increases above [Formula: see text] the outcrossed equilibrium collapses sharply to the purged equilibrium genetic variance. In the IMS a single stable equilibrium genetic variance exists at each selfing rate; as r increases above [Formula: see text] the equilibrium genetic variance drops sharply and then declines gradually to that maintained under complete selfing. The implications for evolution of selfing rates, and for adaptive evolution and persistence of predominantly selfing species, provide a theoretical basis for the classical view of Stebbins that predominant selfing constitutes an "evolutionary dead end."

摘要

我们分析了自交和异交混合交配系统中数量遗传方差维持的两种模型。在这两种模型中,在对一个或多个数量性状的表型进行稳定选择的情况下,纯加性遗传方差通过突变和重组得以维持。高斯等位基因模型(GAM)涉及无限大种群中有限数量的不连锁基因座,自上次异交后连续自交τ代的谱系中,每个基因座的等位基因效应呈正态分布。部分自交的无穷小模型(IMS)涉及大但有限种群中的无限多个基因座,自交年龄为τ的谱系中育种值呈正态分布。在这两种模型中,对于所有自交率r,直至临界值[公式:见原文](清除阈值,其近似等于随机交配下的平均适合度相对于完全自交下的平均适合度),都存在一个稳定的平衡遗传方差,即异交平衡,几乎等于随机交配下的平衡遗传方差。在GAM中,对于任何正的自交率,存在第二个稳定平衡,即清除平衡,其遗传方差小于或等于纯自交下的遗传方差;当r增加到高于[公式:见原文]时,异交平衡急剧崩溃至清除平衡遗传方差。在IMS中,每个自交率都存在一个单一的稳定平衡遗传方差;当r增加到高于[公式:见原文]时,平衡遗传方差急剧下降,然后逐渐下降至完全自交下维持的水平。自交率进化的影响,以及主要自交物种的适应性进化和持久性,为斯特宾斯的经典观点提供了理论基础,即主要自交构成“进化死胡同”。

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