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Predicting evolutionary potential: A numerical test of evolvability measures

机译:预测进化潜力:再生能力测量的数值试验

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Despite sophisticated mathematical models, the theory of microevolution is mostly treated as a qualitative rather than a quantitative tool. Numerical measures of selection, constraints, and evolutionary potential are often too loosely connected to theory to provide operational predictions of the response to selection. In this paper, we study the ability of a set of operational measures of evolvability and constraint to predict short-term selection responses generated by individual-based simulations. We focus on the effects of selective constraints under which the response in one trait is impeded by stabilizing selection on other traits. The conditional evolvability is a measure of evolutionary potential explicitly developed for this situation.We show that the conditional evolvability successfully predicts rates of evolution in an equilibrium situation, and further that these equilibria are reached with characteristic times that are inversely proportional to the fitness load generated by the constraining characters. Overall, we find that evolvabilities and conditional evolvabilities bracket responses to selection, and that they together can be used to quantify evolutionary potential on time scales where the G-matrix remains relatively constant.
机译:尽管数学模型复杂,但微型震动理论主要被视为定性而不是定量工具。选择,约束和进化潜力的数值测量通常太松散地连接到理论,以提供对选择响应的操作预测。在本文中,我们研究了一系列的进化和约束的操作措施,以预测基于个别的模拟产生的短期选择响应。我们专注于选择性约束的影响,通过稳定在其他特征上的选择来阻碍一个特征的反应。条件的进化性是针对这种情况明确开发的进化潜力的量度。我们表明,条件的进化成功地预测了平衡情况的演变率,并且进一步达到与产生的健身载荷成反比的特征时间达到这些均衡。通过约束字符。总的来说,我们发现进化和条件进化率支架响应选择,并且它们在一起可用于量化G族矩阵仍然相对恒定的时间尺度的进化电位。

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