首页> 外文期刊>Evolution: International Journal of Organic Evolution >Across-environment genetic correlations and the frequency of selective environments shape the evolutionary dynamics of growth rate in impatiens capensis
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Across-environment genetic correlations and the frequency of selective environments shape the evolutionary dynamics of growth rate in impatiens capensis

机译:跨环境遗传相关性和选择性环境的频率决定着凤仙花生长速率的进化动力学。

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Trade-offs can exist within and across environments, and constrain evolutionary trajectories. To examine the effects of competition and resource availability on trade-offs, we grew individuals of recombinant inbred lines of Impatiens capensis in a factorial combination of five densities with two light environments (full light and neutral shade) and used a Bayesian logistic growth analysis to estimate intrinsic growth rates. To estimate across-environment constraints, we developed a variance decomposition approach to principal components analysis, which accounted for sample size, model-fitting, and within-RIL variation prior to eigenanalysis. We detected negative across-environment genetic covariances in intrinsic growth rates, although only under fulllight. To evaluate the potential importance of these covariances, we surveyed natural populations of I. capensis to measure the frequency of different density environments across space and time. We combined our empirical estimates of across-environment genetic variance-covariance matrices and frequency of selective environments with hypothetical (yet realistic) selection gradients to project evolutionary responses in multiple density environments. Selection in common environments can lead to correlated responses to selection in rare environments that oppose and counteract direct selection in those rare environments. Our results highlight the importance of considering both the frequency of selective environments and the across-environment genetic covariances in traits simultaneously.
机译:权衡可以存在于环境内部和环境之间,并限制了进化轨迹。为了检验竞争和资源可用性对权衡的影响,我们以五种密度和两种光照环境(全光照和中性阴影)的因子组合生长了凤仙花重组自交系的个体,并使用贝叶斯逻辑增长分析来估计内在增长率。为了估计跨环境的约束,我们开发了一种用于主成分分析的方差分解方法,该方法考虑了样本量,模型拟合和特征分析之前的RIL内部变化。尽管仅在全光照下,我们在固有增长率中发现了跨环境的遗传协方差。为了评估这些协方差的潜在重要性,我们调查了卡普斯岛自然种群,以测量跨时空不同密度环境的频率。我们将跨环境遗传方差-协方差矩阵和选择性环境的频率的经验估计与假设的(但现实的)选择梯度相结合,以预测多密度环境中的进化响应。在常见环境中进行选择会导致在稀有环境中对选择的相关响应,从而反对并抵消那些稀有环境中的直接选择。我们的结果突出了同时考虑选择性环境的频率和性状中跨环境遗传协方差的重要性。

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