Di Santo Valentina
Division of Functional Morphology, Department of Zoology, Stockholm University, Svante Arrhenius väg 18B, 11419, Stockholm, Sweden.
Integr Comp Biol. 2022 Jun 27;62(3):711-20. doi: 10.1093/icb/icac095.
Ecological physiologists and biomechanists have been broadly investigating swimming performance in a diversity of fishes, however the connection between form, function and energetics of locomotion has been rarely evaluated in the same system and under climate change scenarios. In this perspective I argue that working within the framework of 'EcoPhysioMechanics', i.e., integrating energetics and biomechanics tools, to measure locomotor performance and behavior under different abiotic factors, improves our understanding of the mechanisms, limits and costs of movement. To demonstrate how ecophysiomechanics can be applied to locomotor studies, I outline how linking biomechanics and physiology allows us to understand how fishes may modulate their movement to achieve high speeds or reduce the costs of locomotion. I also discuss how the framework is necessary to quantify swimming capacity under climate change scenarios. Finally, I discuss current dearth of integrative studies and gaps in empirical datasets that are necessary to understand fish swimming under changing environments.
生态生理学家和生物力学家广泛研究了多种鱼类的游泳性能,然而,在同一系统和气候变化情景下,运动的形态、功能和能量学之间的联系却很少得到评估。从这个角度来看,我认为在“生态生理力学”框架内开展工作,即整合能量学和生物力学工具,来测量不同非生物因素下的运动性能和行为,能增进我们对运动机制、限制因素和成本的理解。为了说明生态生理力学如何应用于运动研究,我概述了将生物力学和生理学联系起来如何使我们理解鱼类如何调节其运动以实现高速或降低运动成本。我还讨论了该框架对于量化气候变化情景下游泳能力的必要性。最后,我讨论了当前综合研究的不足以及实证数据集的差距,这些对于理解变化环境下鱼类的游泳是必不可少的。