随着气候变异性的增加,尾蛙种群中 CTmax 的可塑性增强。

IF 3.8 1区 生物学 Q1 BIOLOGY
Amanda S Cicchino, Cameron K Ghalambor, Brenna R Forester, Jason D Dunham, W Chris Funk
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引用次数: 0

摘要

气候的时空变异预计会推动热生理特征的进化,使其能够在更广泛的温度范围内发挥性能(即气候变异假说,CVH)。然而,空间热变异可能会为外温动物提供行为选择偏好温度的机会,从而调节这种关系(即博格特效应)。这些对热生理特征的拮抗作用可能解释了为什么尽管在更大的地理尺度上物种间对 CVH 的支持度很高,但物种内对 CVH 的支持度却参差不齐。在这里,我们检验了 CVH 与沿海尾蛙(Ascaphus truei)种群生理热上限(临界热上限-CTmax)可塑性的关系。我们的目标种群栖息在空间均一的环境中,从而减少了行为体温调节的潜在干扰效应。我们发现,经历过较大时间热变异的种群在 CTmax 上表现出更大的可塑性,这支持了 CVH。有趣的是,我们只发现了一个存在空间温度变异的地点,而该地点的蝌蚪表现出的可塑性比预期的要大,这表明行为体温调节的机会可能会减少对CVH的支持。总之,我们的研究结果证明了气候变异在形成种群间热可塑性方面的作用,并为了解空间均质热景观中CVH的影响提供了一个基线。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Greater plasticity in CTmax with increased climate variability among populations of tailed frogs.

Temporally variable climates are expected to drive the evolution of thermal physiological traits that enable performance across a wider range of temperatures (i.e. climate variability hypothesis, CVH). Spatial thermal variability, however, may mediate this relationship by providing ectotherms with the opportunity to behaviourally select preferred temperatures (i.e. the Bogert effect). These antagonistic forces on thermal physiological traits may explain the mixed support for the CVH within species despite strong support among species at larger geographical scales. Here, we test the CVH as it relates to plasticity in physiological upper thermal limits (critical thermal maximum-CTmax) among populations of coastal tailed frogs (Ascaphus truei). We targeted populations that inhabit spatially homogeneous environments, reducing the potentially confounding effects of behavioural thermoregulation. We found that populations experiencing greater temporal thermal variability exhibited greater plasticity in CTmax, supporting the CVH. Interestingly, we identified only one site with spatial temperature variability and tadpoles from this site demonstrated greater plasticity than expected, suggesting the opportunity for behavioural thermoregulation can reduce support for the CVH. Overall, our results demonstrate one role of climate variability in shaping thermal plasticity among populations and provide a baseline understanding of the impact of the CVH in spatially homogeneous thermal landscapes.

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来源期刊
CiteScore
7.90
自引率
4.30%
发文量
502
审稿时长
1 months
期刊介绍: Proceedings B is the Royal Society’s flagship biological research journal, accepting original articles and reviews of outstanding scientific importance and broad general interest. The main criteria for acceptance are that a study is novel, and has general significance to biologists. Articles published cover a wide range of areas within the biological sciences, many have relevance to organisms and the environments in which they live. The scope includes, but is not limited to, ecology, evolution, behavior, health and disease epidemiology, neuroscience and cognition, behavioral genetics, development, biomechanics, paleontology, comparative biology, molecular ecology and evolution, and global change biology.
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