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黑猩猩(Pan troglodytes)骨盆和后肢的三维肌肉骨骼模型。

A three-dimensional musculoskeletal model of the chimpanzee (Pan troglodytes) pelvis and hind limb.

机构信息

Department of Anatomical Sciences, Stony Brook University School of Medicine, Stony Brook, NY 11794, USA.

出版信息

J Exp Biol. 2013 Oct 1;216(Pt 19):3709-23. doi: 10.1242/jeb.079665.

DOI:10.1242/jeb.079665
PMID:24006347
Abstract

Musculoskeletal models have become important tools for studying a range of muscle-driven movements. However, most work has been in modern humans, with few applications in other species. Chimpanzees are facultative bipeds and our closest living relatives, and have provided numerous important insights into our own evolution. A chimpanzee musculoskeletal model would allow integration across a wide range of laboratory-based experimental data, providing new insights into the determinants of their locomotor performance capabilities, as well as the origins and evolution of human bipedalism. Here, we described a detailed three-dimensional (3D) musculoskeletal model of the chimpanzee pelvis and hind limb. The model includes geometric representations of bones and joints, as well as 35 muscle-tendon units that were represented using 44 Hill-type muscle models. Muscle architecture data, such as muscle masses, fascicle lengths and pennation angles, were drawn from literature sources. The model permits calculation of 3D muscle moment arms, muscle-tendon lengths and isometric muscle forces over a wide range of joint positions. Muscle-tendon moment arms predicted by the model were generally in good agreement with tendon-excursion estimates from cadaveric specimens. Sensitivity analyses provided information on the parameters that model predictions are most and least sensitive to, which offers important context for interpreting future results obtained with the model. Comparisons with a similar human musculoskeletal model indicate that chimpanzees are better suited for force production over a larger range of joint positions than humans. This study represents an important step in understanding the integrated function of the neuromusculoskeletal systems in chimpanzee locomotion.

摘要

骨骼肌模型已成为研究一系列肌肉驱动运动的重要工具。然而,大多数工作都是在现代人类中进行的,在其他物种中的应用较少。黑猩猩是兼性两足动物,也是我们现存的近亲,它们为我们自己的进化提供了许多重要的见解。黑猩猩骨骼肌模型将允许整合广泛的基于实验室的实验数据,为其运动表现能力的决定因素以及人类两足行走的起源和进化提供新的见解。在这里,我们描述了一个详细的黑猩猩骨盆和后肢三维(3D)骨骼肌模型。该模型包括骨骼和关节的几何表示,以及 35 个肌-腱单元,这些单元使用 44 个 Hill 型肌肉模型表示。肌肉结构数据,如肌肉质量、肌束长度和羽状角,是从文献来源中提取的。该模型允许在广泛的关节位置计算 3D 肌肉力臂、肌-腱长度和等长肌肉力。该模型预测的肌-腱力臂通常与尸体标本中的腱伸估计值吻合良好。敏感性分析提供了有关模型预测最敏感和最不敏感的参数的信息,这为解释模型未来获得的结果提供了重要的背景。与类似的人类骨骼肌模型的比较表明,黑猩猩在更大范围的关节位置上更适合产生力。这项研究代表了理解黑猩猩运动中神经肌肉骨骼系统综合功能的重要一步。

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