Torpor energetics are related to the interaction between body mass and climate in bats of the family Vespertilionidae.

IF 2.8 2区 生物学 Q2 BIOLOGY
Journal of Experimental Biology Pub Date : 2024-09-15 Epub Date: 2024-09-20 DOI:10.1242/jeb.246824
Jorge Ayala-Berdon, Kevin I Medina-Bello
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引用次数: 0

Abstract

Torpor is an adaptive strategy allowing heterothermic animals to cope with energy limitations. In birds and mammals, intrinsic and extrinsic factors, such as body mass and ambient temperature, are the main variables influencing torpor use. A theoretical model of the relationship between metabolic rate during torpor and ambient temperature has been proposed. Nevertheless, no empirical attempts have been made to assess the model predictions under different climates. Using open-flow respirometry, we evaluated the ambient temperature at which bats entered torpor and when torpid metabolic rate reached its minimum, the reduction in metabolic rate below basal values, and minimum torpid metabolic rate in 11 bat species of the family Vespertilionidae with different body mass from warm and cold climates. We included data on the minimum torpid metabolic rate of five species we retrieved from the literature. We tested the effects using mixed-effect phylogenetic models. All models showed a significant interaction between body mass and climate. Smaller bats went into torpor and reached minimum torpid metabolic rates at warmer temperatures, showed a higher reduction in the metabolic rate below basal values, and presented lower torpid metabolic rates than larger ones. The slopes of the models were different for bats from different climates. These results are likely explained by differences in body mass and the metabolic rate of bats, which may favor larger bats expressing torpor in colder sites and smaller bats in the warmer ones. Further studies to assess torpor use in bats from different climates are proposed.

蚕蛾科蝙蝠的冬眠能量与体质和气候之间的相互作用有关。
冬眠是异温动物应对能量限制的一种适应策略。在鸟类和哺乳动物中,体重和环境温度等内在和外在因素是影响冬眠的主要变量。Speakman 和 Thomas(2003 年)就冬眠期间的新陈代谢率与环境温度之间的关系提出了一个理论模型。然而,目前还没有在不同气候条件下对模型预测进行实证评估的尝试。利用开流呼吸测定法,我们评估了蝙蝠进入休眠状态和休眠代谢率达到最低时的环境温度、代谢率降至基础值以下的时间,以及来自温暖和寒冷气候条件下不同体重的 11 种吠声科蝙蝠的最低休眠代谢率。我们还纳入了从文献中检索到的 5 个物种的最低骤冷代谢率数据。我们使用混合效应系统发生模型检验了这些效应。所有模型都显示体重与气候之间存在明显的交互作用。与体型较大的蝙蝠相比,体型较小的蝙蝠在温度较高时进入倦怠期并达到最低倦怠代谢率,代谢率低于基础值的程度较高,倦怠代谢率较低。不同气候条件下的蝙蝠的模型斜率不同。这些结果很可能是由于蝙蝠的体重和新陈代谢率的差异造成的,这可能有利于体型较大的蝙蝠在寒冷的地方进行冬眠,而体型较小的蝙蝠在温暖的地方进行冬眠。建议进一步研究不同气候条件下蝙蝠的冬眠情况。
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来源期刊
CiteScore
5.50
自引率
10.70%
发文量
494
审稿时长
1 months
期刊介绍: Journal of Experimental Biology is the leading primary research journal in comparative physiology and publishes papers on the form and function of living organisms at all levels of biological organisation, from the molecular and subcellular to the integrated whole animal.
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