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沿气候梯度的可塑性演变及对气候变化的适应性响应。

Evolution of plasticity and adaptive responses to climate change along climate gradients.

作者信息

Kingsolver Joel G, Buckley Lauren B

机构信息

Department of Biology, University of North Carolina, Chapel Hill, NC 27599, USA

Department of Biology, University of Washington, Seattle, WA 98195, USA.

出版信息

Proc Biol Sci. 2017 Aug 16;284(1860). doi: 10.1098/rspb.2017.0386.

Abstract

The relative contributions of phenotypic plasticity and adaptive evolution to the responses of species to recent and future climate change are poorly understood. We combine recent (1960-2010) climate and phenotypic data with microclimate, heat balance, demographic and evolutionary models to address this issue for a montane butterfly, , along an elevational gradient. Our focal phenotype, wing solar absorptivity, responds plastically to developmental (pupal) temperatures and plays a central role in thermoregulatory adaptation in adults. Here, we show that both the phenotypic and adaptive consequences of plasticity vary with elevation. Seasonal changes in weather generate seasonal variation in phenotypic selection on mean and plasticity of absorptivity, especially at lower elevations. In response to climate change in the past 60 years, our models predict evolutionary declines in mean absorptivity (but little change in plasticity) at high elevations, and evolutionary increases in plasticity (but little change in mean) at low elevation. The importance of plasticity depends on the magnitude of seasonal variation in climate relative to interannual variation. Our results suggest that selection and evolution of both trait means and plasticity can contribute to adaptive response to climate change in this system. They also illustrate how plasticity can facilitate rather than retard adaptive evolutionary responses to directional climate change in seasonal environments.

摘要

表型可塑性和适应性进化对物种应对近期及未来气候变化的相对贡献仍知之甚少。我们将近期(1960 - 2010年)的气候和表型数据与小气候、热平衡、种群统计学和进化模型相结合,以解决一种山地蝴蝶沿着海拔梯度对这一问题的响应。我们关注的表型——翅太阳能吸收率,对发育(蛹期)温度有可塑性响应,并在成虫的体温调节适应中起核心作用。在这里,我们表明可塑性的表型和适应性后果都随海拔而变化。天气的季节性变化导致对吸收率均值和可塑性的表型选择出现季节性变化,尤其是在较低海拔地区。针对过去60年的气候变化,我们的模型预测高海拔地区平均吸收率会出现进化性下降(但可塑性变化不大),而低海拔地区可塑性会出现进化性增加(但均值变化不大)。可塑性的重要性取决于气候季节性变化相对于年际变化的幅度。我们的结果表明,性状均值和可塑性的选择与进化都有助于该系统对气候变化的适应性响应。它们还说明了可塑性如何促进而非阻碍季节性环境中对定向气候变化的适应性进化响应。

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