Changing environments and genetic variation: natural variation in inbreeding does not compromise short-term physiological responses

James Buckley, Rónán Daly, C. Cobbold, Karl E. V. Burgess, B. Mable
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引用次数: 7

Abstract

Selfing plant lineages are surprisingly widespread and successful in a broad range of environments, despite showing reduced genetic diversity, which is predicted to reduce their long-term evolutionary potential. However, appropriate short-term plastic responses to new environmental conditions might not require high levels of standing genetic variation. In this study, we tested whether mating system variation among populations, and associated changes in genetic variability, affected short-term responses to environmental challenges. We compared relative fitness and metabolome profiles of naturally outbreeding (genetically diverse) and inbreeding (genetically depauperate) populations of a perennial plant, Arabidopsis lyrata, under constant growth chamber conditions and an outdoor common garden environment outside its native range. We found no effect of inbreeding on survival, flowering phenology or short-term physiological responses. Specifically, naturally occurring inbreeding had no significant effects on the plasticity of metabolome profiles, using either multivariate approaches or analysis of variation in individual metabolites, with inbreeding populations showing similar physiological responses to outbreeding populations over time in both growing environments. We conclude that low genetic diversity in naturally inbred populations may not always compromise fitness or short-term physiological capacity to respond to environmental change, which could help to explain the global success of selfing mating strategies.
变化的环境和遗传变异:近亲繁殖的自然变异不会损害短期的生理反应
尽管遗传多样性降低,但自交植物谱系在广泛的环境中惊人地广泛和成功,这被预测会降低它们的长期进化潜力。然而,对新环境条件的适当的短期可塑性反应可能不需要高水平的常备遗传变异。在这项研究中,我们测试了种群间交配制度的变化以及相关的遗传变异是否会影响对环境挑战的短期反应。本研究比较了多年生植物拟南芥(Arabidopsis lyrata)在恒定生长室条件下和室外普通花园环境下自然远交(遗传多样性)和近交(遗传退化)种群的相对适应度和代谢组学特征。我们没有发现近亲繁殖对存活、开花物候或短期生理反应有影响。具体而言,通过多变量方法或个体代谢物变异分析,自然发生的近亲繁殖对代谢组谱的可塑性没有显著影响,随着时间的推移,在两种生长环境中,近亲繁殖群体表现出与近亲繁殖群体相似的生理反应。我们的结论是,自然近交种群的低遗传多样性可能并不总是损害适应性或短期生理能力,以应对环境变化,这有助于解释自交交配策略在全球范围内的成功。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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