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温度依赖性生长和裂变率可塑性驱动克隆海葵身体大小的季节性和地理变化。

Temperature-Dependent Growth and Fission Rate Plasticity Drive Seasonal and Geographic Changes in Body Size in a Clonal Sea Anemone.

作者信息

Ryan Will H

出版信息

Am Nat. 2018 Feb;191(2):210-219. doi: 10.1086/695496. Epub 2017 Dec 19.

Abstract

The temperature-size rule is a commonly observed pattern where adult body size is negatively correlated with developmental temperature. In part, this may occur as a consequence of allometric scaling, where changes in the ratio of surface area to mass limit oxygen diffusion as body size increases. As oxygen demand increases with temperature, a smaller body should be favored as temperature increases. For clonal animals, small changes in growth and/or fission rate can rapidly alter the average body size of clonal descendants. Here I test the hypothesis that the clonal sea anemone Diadumene lineata is able to track an optimal body size through seasonal temperature changes using fission rate plasticity. Individuals from three regions (Florida, Georgia, and Massachusetts) across the species' latitudinal range were grown in a year-long reciprocal common garden experiment mimicking seasonal temperature changes at three sites. Average body size was found to be smaller and fission rates higher in warmer conditions, consistent with the temperature-size rule pattern. However, seasonal size and fission patterns reflect a complex interaction between region-specific thermal reaction norms and the local temperature regime. These details provide insight into both the range of conditions required for oxygen limitation to contribute to a negative correlation between body size and temperature and the role that fission rate plasticity can play in tracking a rapidly changing optimal phenotype.

摘要

温度-体型规则是一种常见的模式,即成年个体的体型与发育温度呈负相关。部分原因可能是异速生长缩放,随着体型增大,表面积与质量的比例变化会限制氧气扩散。由于氧气需求随温度升高而增加,随着温度升高,较小的体型更具优势。对于克隆动物而言,生长和/或分裂速率的微小变化会迅速改变克隆后代的平均体型。在此,我检验了这样一个假设:克隆海葵直丝海葵(Diadumene lineata)能够通过利用分裂速率可塑性,在季节性温度变化中追踪最佳体型。在一项为期一年的相互移栽共同园实验中,模拟了三个地点的季节性温度变化,培育了来自该物种纬度范围内三个地区(佛罗里达州、佐治亚州和马萨诸塞州)的个体。结果发现,在温暖条件下,平均体型较小,分裂速率较高,这与温度-体型规则模式一致。然而,季节性的体型和分裂模式反映了特定区域的热反应规范与当地温度状况之间的复杂相互作用。这些细节有助于深入了解氧气限制导致体型与温度呈负相关所需的条件范围,以及分裂速率可塑性在追踪快速变化的最佳表型中所起的作用。

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