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适应性过程的定量遗传研究。

Quantitative genetic study of the adaptive process.

机构信息

Department of Ecology, Evolution and Behavior, University of Minnesota, St Paul, MN, USA.

出版信息

Heredity (Edinb). 2014 Jan;112(1):13-20. doi: 10.1038/hdy.2013.42. Epub 2013 May 29.

DOI:10.1038/hdy.2013.42
PMID:23715015
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3860163/
Abstract

The additive genetic variance with respect to absolute fitness, VA(W), divided by mean absolute fitness, , sets the rate of ongoing adaptation. Fisher's key insight yielding this quantitative prediction of adaptive evolution, known as the Fundamental Theorem of Natural Selection, is well appreciated by evolutionists. Nevertheless, extremely scant information about VA(W) is available for natural populations. Consequently, the capacity for fitness increase via natural selection is unknown. Particularly in the current context of rapid environmental change, which is likely to reduce fitness directly and, consequently, the size and persistence of populations, the urgency of advancing understanding of immediate adaptive capacity is extreme. We here explore reasons for the dearth of empirical information about VA(W), despite its theoretical renown and critical evolutionary role. Of these reasons, we suggest that expectations that VA(W) is negligible, in general, together with severe statistical challenges of estimating it, may largely account for the limited empirical emphasis on it. To develop insight into the dynamics of VA(W) in a changing environment, we have conducted individual-based genetically explicit simulations. We show that, as optimizing selection on a trait changes steadily over generations, VA(W) can grow considerably, supporting more rapid adaptation than would the VA(W) of the base population. We call for direct evaluation of VA(W) and in support of prediction of rates adaptive evolution, and we advocate for the use of aster modeling as a rigorous basis for achieving this goal.

摘要

关于绝对适合度的加性遗传方差(VA(W))除以平均绝对适合度(),可以确定正在进行的适应速度。费希尔(Fisher)提出的这一量化预测适应性进化的关键见解,即自然选择的基本定理,深受进化论者的赞赏。然而,关于 VA(W)的自然种群的信息极为有限。因此,无法确定通过自然选择增加适合度的能力。特别是在当前快速环境变化的背景下,环境变化可能直接降低适合度,进而降低种群的大小和持久性,因此迫切需要提高对当前适应能力的认识。在这里,我们探讨了尽管 VA(W)具有理论声誉和关键进化作用,但关于其经验信息却很少的原因。在这些原因中,我们认为,一般来说,VA(W)可忽略不计的预期,以及估计它的严重统计挑战,可能在很大程度上解释了对其经验研究的重视程度有限。为了深入了解在变化环境中 VA(W)的动态,我们进行了基于个体的遗传明确模拟。我们表明,随着性状的最优选择在几代中稳定变化,VA(W)可以显著增长,从而支持比基础种群的 VA(W)更快的适应。我们呼吁直接评估 VA(W)并支持预测适应性进化的速度,并提倡使用适应度景观模型作为实现这一目标的严格基础。

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