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The G matrix under fluctuating correlational mutation and selection

机译:变动相关突变和选择下的G矩阵

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Theoretical quantitative genetics provides a framework for reconstructing past selection and predicting future patterns of phenotypic differentiation. However, the usefulness of the equations of quantitative genetics for evolutionary inference relies on the evolutionary stability of the additive genetic variance-covariance matrix (G matrix). A fruitful new approach for exploring the evolutionary dynamics of G involves the use of individual-based computer simulations. Previous studies have focused on the evolution of the eigenstructure of G. An alternative approach employed in this paper uses the multivariate response-to-selection equation to evaluate the stability of G. In this approach, I measure similarity by the correlation between response-to-selection vectors due to random selection gradients. I analyze the dynamics of G under several conditions of correlational mutation and selection. As found in a previous study, the eigenstructure of G is stabilized by correlational mutation and selection. However, over broad conditions, instability of G did not result in a decreased consistency of the response to selection. I also analyze the stability of G when the correlation coefficients of correlational mutation and selection and the effective population size change through time. To my knowledge, no prior study has used computer simulations to investigate the stability of G when correlational mutation and selection fluctuate. Under these conditions, the eigenstructure of G is unstable under some simulation conditions. Different results are obtained if G matrix stability is assessed by eigenanalysis or by the response to random selection gradients. In this case, the response to selection is most consistent when certain aspects of the eigenstructure of G are least stable and vice versa.
机译:理论定量遗传学为重建过去的选择和预测未来的表型分化模式提供了一个框架。但是,定量遗传方程对于进化推理的有用性取决于加性遗传方差-协方差矩阵(G矩阵)的进化稳定性。探索G进化动力学的一种富有成果的新方法涉及使用基于个体的计算机模拟。先前的研究集中于G的本征结构的演化。本文采用的另一种方法是使用多元响应选择方程式来评估G的稳定性。在这种方法中,我通过响应与响应之间的相关性来衡量相似性。选择向量归因于随机选择梯度。我分析了在相关突变和选择的几种条件下G的动力学。正如先前的研究发现,G的本征结构通过相关突变和选择得以稳定。但是,在宽泛的条件下,G的不稳定性不会导致选择反应的一致性下降。我还分析了当相关突变和选择的相关系数和有效种群数量随时间变化时,G的稳定性。据我所知,当相关突变和选择发生波动时,以前没有研究使用计算机模拟来研究G的稳定性。在这些条件下,G的本征结构在某些模拟条件下是不稳定的。如果通过特征分析或通过对随机选择梯度的响应来评估G基质的稳定性,则会获得不同的结果。在这种情况下,当G的本征结构的某些方面最不稳定时,对选择的响应最一致,反之亦然。

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