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复杂的生命周期会影响对环境变化的适应吗?基于基因组的见解用于刻画复杂生命周期中的选择特征。

Does a complex life cycle affect adaptation to environmental change? Genome-informed insights for characterizing selection across complex life cycle.

作者信息

Albecker Molly A, Wilkins Laetitia G E, Krueger-Hadfield Stacy A, Bashevkin Samuel M, Hahn Matthew W, Hare Matthew P, Kindsvater Holly K, Sewell Mary A, Lotterhos Katie E, Reitzel Adam M

机构信息

Department of Biology, Utah State University, Logan, UT 84321, USA.

Max Planck Institute for Marine Microbiology (MPIMM), Celsiusstrasse 1, 28209 Bremen, Germany.

出版信息

Proc Biol Sci. 2021 Dec 8;288(1964):20212122. doi: 10.1098/rspb.2021.2122. Epub 2021 Dec 1.

Abstract

Complex life cycles, in which discrete life stages of the same organism differ in form or function and often occupy different ecological niches, are common in nature. Because stages share the same genome, selective effects on one stage may have cascading consequences through the entire life cycle. Theoretical and empirical studies have not yet generated clear predictions about how life cycle complexity will influence patterns of adaptation in response to rapidly changing environments or tested theoretical predictions for fitness trade-offs (or lack thereof) across life stages. We discuss complex life cycle evolution and outline three hypotheses-ontogenetic decoupling, antagonistic ontogenetic pleiotropy and synergistic ontogenetic pleiotropy-for how selection may operate on organisms with complex life cycles. We suggest a within-generation experimental design that promises significant insight into composite selection across life cycle stages. As part of this design, we conducted simulations to determine the power needed to detect selection across a life cycle using a population genetic framework. This analysis demonstrated that recently published studies reporting within-generation selection were underpowered to detect small allele frequency changes (approx. 0.1). The power analysis indicates challenging but attainable sampling requirements for many systems, though plants and marine invertebrates with high fecundity are excellent systems for exploring how organisms with complex life cycles may adapt to climate change.

摘要

复杂的生命周期在自然界中很常见,即同一生物体的不同生命阶段在形态或功能上存在差异,且通常占据不同的生态位。由于各阶段共享相同的基因组,对一个阶段的选择效应可能会在整个生命周期中产生连锁反应。理论和实证研究尚未就生命周期的复杂性将如何影响生物体在快速变化的环境中的适应模式得出明确预测,也未对整个生命阶段的适应性权衡(或不存在这种权衡)的理论预测进行验证。我们讨论了复杂生命周期的进化,并概述了三个假设——个体发育解耦、拮抗性个体发育多效性和协同性个体发育多效性——来解释选择如何作用于具有复杂生命周期的生物体。我们提出了一种代内实验设计,有望深入了解整个生命周期阶段的复合选择。作为该设计的一部分,我们进行了模拟,以确定使用群体遗传框架检测整个生命周期选择所需的功效。该分析表明,最近发表的关于代内选择的研究在检测小等位基因频率变化(约0.1)方面功效不足。功效分析表明,对于许多系统而言,采样要求具有挑战性但可以实现,不过高繁殖力的植物和海洋无脊椎动物是探索具有复杂生命周期的生物体如何适应气候变化的理想系统。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5c98/8634620/e3da99f98ccb/rspb20212122f01.jpg

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