Detecting diversifying selection for a trait from within and between-species genotypes and phenotypes.

IF 2.1 3区 生物学 Q3 ECOLOGY Journal of Evolutionary Biology Pub Date : 2024-07-11 DOI:10.1093/jeb/voae084
T Latrille, M Bastian, T Gaboriau, N Salamin
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Abstract

To quantify selection acting on a trait, methods have been developed using either within or between-species variation. However, methods using within-species variation do not integrate the changes at the macroevolutionary scale. Conversely, current methods using between-species variation usually discard within-species variation, thus not accounting for processes at the micro-evolutionary scale. The main goal of this study is to define a neutrality index for a quantitative trait, by combining withinand between-species variation. This neutrality index integrates nucleotide polymorphism and divergence for normalizing trait variation. As such, it does not require estimation of population size nor of time of speciation for normalization. Our index can be used to seek deviation from the null model of neutral evolution, and test for diversifying selection. Applied to brain mass and body mass at the mammalian scale, we show that brain mass is under diversifying selection. Finally, we show that our test is not sensitive to the assumption that population sizes, mutation rates and generation time are constant across the phylogeny, and automatically adjust for it.

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从种群内和种群间的基因型和表型检测性状的多样化选择。
为了量化作用于某一性状的选择,人们开发了使用种内或种间变异的方法。然而,使用种内变异的方法无法整合宏观进化尺度上的变化。相反,目前使用种间变异的方法通常会舍弃种内变异,因此无法考虑微观进化尺度的过程。本研究的主要目标是通过结合种内变异和种间变异,定义定量性状的中性指数。该中性指数综合了核苷酸多态性和分化,对性状变异进行归一化处理。因此,它不需要估计种群数量或物种分化的时间来进行归一化。我们的指数可用于寻找中性进化空模型的偏差,并检验多样化选择。我们将其应用于哺乳动物尺度上的脑质量和身体质量,结果表明脑质量处于多样化选择之下。最后,我们证明了我们的检验方法对整个系统发育过程中种群大小、突变率和世代时间恒定的假设并不敏感,而且可以自动调整。
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来源期刊
Journal of Evolutionary Biology
Journal of Evolutionary Biology 生物-进化生物学
CiteScore
4.20
自引率
4.80%
发文量
152
审稿时长
3-6 weeks
期刊介绍: It covers both micro- and macro-evolution of all types of organisms. The aim of the Journal is to integrate perspectives across molecular and microbial evolution, behaviour, genetics, ecology, life histories, development, palaeontology, systematics and morphology.
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