Department of Ecology & Evolutionary Biology, Tulane University, 6823 St Charles Avenue, Lindy Boggs Building Room 400, New Orleans, LA 70118-5698, USA.
J Exp Biol. 2024 Mar 1;227(5). doi: 10.1242/jeb.245645. Epub 2024 Feb 29.
The effects of climate change are often body size dependent. One contributing factor could be size-dependent thermal tolerance (SDTT), the propensity for heat and cold tolerance to vary with body size among species and among individuals within species. SDTT is hypothesized to be caused by size differences in the temperature dependence of underlying physiological processes that operate at the cellular and organ/system level (physiological SDTT). However, temperature-dependent physiology need not change with body size for SDTT to be observed. SDTT can also arise because of physical differences that affect the relative body temperature dynamics of large and small organisms (physical SDTT). In this Commentary, I outline how physical SDTT occurs, its mechanistic differences from physiological SDTT, and how physical and physiological SDTT make different predictions about organismal responses to thermal variation. I then describe how physical SDTT can influence the outcome of thermal tolerance experiments, present an experimental framework for disentangling physical and physiological SDTT, and provide examples of tests for physiological SDTT that control for physical effects using data from Anolis lizards. Finally, I discuss how physical SDTT can affect organisms in natural environments and influence their vulnerability to anthropogenic warming. Differentiating between physiological and physical SDTT is important because it has implications for how we design and interpret thermal tolerance experiments and our fundamental understanding of thermal ecology and thermal adaptation.
气候变化的影响往往与体型有关。一个促成因素可能是体型依赖的热耐受性(SDTT),即在物种之间和物种内个体之间,耐热性和耐寒性随体型变化的倾向。SDTT 假设是由在细胞和器官/系统水平上运作的基础生理过程的温度依赖性的大小差异引起的(生理 SDTT)。然而,即使生理温度依赖性不随体型变化,也可能观察到 SDTT。SDTT 也可能是由于影响大、小生物体相对体温动态的物理差异而产生的(物理 SDTT)。在本评论中,我概述了物理 SDTT 是如何发生的,它与生理 SDTT 的机制差异,以及物理和生理 SDTT 如何对生物体对热变化的反应做出不同的预测。然后,我描述了物理 SDTT 如何影响热耐受性实验的结果,提出了一个用于区分物理和生理 SDTT 的实验框架,并提供了使用来自变色蜥蜴的数据控制物理效应的生理 SDTT 测试的示例。最后,我讨论了物理 SDTT 如何影响自然环境中的生物体,并影响它们对人为变暖的脆弱性。区分生理和物理 SDTT 很重要,因为它关系到我们如何设计和解释热耐受性实验,以及我们对热生态学和热适应性的基本理解。