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动态相似性与最大奔跑速度的特殊异速生长关系

Dynamic similarity and the peculiar allometry of maximum running speed.

作者信息

Labonte David, Bishop Peter J, Dick Taylor J M, Clemente Christofer J

机构信息

Department of Bioengineering, Imperial College London, London, UK.

Museum of Comparative Zoology, Harvard University, Cambridge, MA, USA.

出版信息

Nat Commun. 2024 Mar 11;15(1):2181. doi: 10.1038/s41467-024-46269-w.

Abstract

Animal performance fundamentally influences behaviour, ecology, and evolution. It typically varies monotonously with size. A notable exception is maximum running speed; the fastest animals are of intermediate size. Here we show that this peculiar allometry results from the competition between two musculoskeletal constraints: the kinetic energy capacity, which dominates in small animals, and the work capacity, which reigns supreme in large animals. The ratio of both capacities defines the physiological similarity index Γ, a dimensionless number akin to the Reynolds number in fluid mechanics. The scaling of Γ indicates a transition from a dominance of muscle forces to a dominance of inertial forces as animals grow in size; its magnitude defines conditions of "dynamic similarity" that enable comparison and estimates of locomotor performance across extant and extinct animals; and the physical parameters that define it highlight opportunities for adaptations in musculoskeletal "design" that depart from the eternal null hypothesis of geometric similarity. The physiological similarity index challenges the Froude number as prevailing dynamic similarity condition, reveals that the differential growth of muscle and weight forces central to classic scaling theory is of secondary importance for the majority of terrestrial animals, and suggests avenues for comparative analyses of locomotor systems.

摘要

动物的运动能力从根本上影响着行为、生态和进化。它通常随体型单调变化。一个显著的例外是最大奔跑速度;最快的动物体型处于中等。在此我们表明,这种奇特的异速生长现象源于两种肌肉骨骼限制因素之间的竞争:动能容量,在小型动物中占主导;以及做功能力,在大型动物中占主导。这两种能力的比值定义了生理相似性指数Γ,这是一个无量纲数,类似于流体力学中的雷诺数。Γ的标度表明,随着动物体型的增大,从肌肉力量占主导过渡到惯性力量占主导;其大小定义了“动态相似性”条件,使得能够对现存和已灭绝动物的运动表现进行比较和估计;并且定义它的物理参数突出了肌肉骨骼“设计”中背离几何相似性这一永恒零假设的适应机会。生理相似性指数对作为主要动态相似性条件的弗劳德数提出了挑战,揭示出经典标度理论中肌肉力量和体重力量的差异增长对大多数陆生动物来说是次要的,并为运动系统的比较分析指明了方向。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2d98/10928110/afc00feb9a0d/41467_2024_46269_Fig1_HTML.jpg

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