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前臂旋转的生物力学:旋前圆肌的力量与效率。

Biomechanics of forearm rotation: force and efficiency of pronator teres.

作者信息

Ibáñez-Gimeno Pere, Galtés Ignasi, Jordana Xavier, Malgosa Assumpció, Manyosa Joan

机构信息

Unitat d'Antropologia Biològica, Departament de Biologia Animal, Biologia Vegetal i Ecologia, Universitat Autònoma de Barcelona, Bellaterra, Barcelona, Catalonia, Spain.

Centre de Patologia Forense de Collserola, Institut de Medicina Legal de Catalunya, Montcada i Reixach, Barcelona, Catalonia, Spain ; Unitat de Medicina Legal i Forense, Departament de Psiquiatria i de Medicina Legal, Universitat Autònoma de Barcelona, Bellaterra, Barcelona, Catalonia, Spain.

出版信息

PLoS One. 2014 Feb 28;9(2):e90319. doi: 10.1371/journal.pone.0090319. eCollection 2014.

Abstract

Biomechanical models are useful to assess the effect of muscular forces on bone structure. Using skeletal remains, we analyze pronator teres rotational efficiency and its force components throughout the entire flexion-extension and pronation-supination ranges by means of a new biomechanical model and 3D imaging techniques, and we explore the relationship between these parameters and skeletal structure. The results show that maximal efficiency is the highest in full elbow flexion and is close to forearm neutral position for each elbow angle. The vertical component of pronator teres force is the highest among all components and is greater in pronation and elbow extension. The radial component becomes negative in pronation and reaches lower values as the elbow flexes. Both components could enhance radial curvature, especially in pronation. The model also enables to calculate efficiency and force components simulating changes in osteometric parameters. An increase of radial curvature improves efficiency and displaces the position where the radial component becomes negative towards the end of pronation. A more proximal location of pronator teres radial enthesis and a larger humeral medial epicondyle increase efficiency and displace the position where this component becomes negative towards forearm neutral position, which enhances radial curvature. Efficiency is also affected by medial epicondylar orientation and carrying angle. Moreover, reaching an object and bringing it close to the face in a close-to-neutral position improve efficiency and entail an equilibrium between the forces affecting the elbow joint stability. When the upper-limb skeleton is used in positions of low efficiency, implying unbalanced force components, it undergoes plastic changes, which improve these parameters. These findings are useful for studies on ergonomics and orthopaedics, and the model could also be applied to fossil primates in order to infer their locomotor form. Moreover, activity patterns in human ancient populations could be deduced from parameters reported here.

摘要

生物力学模型有助于评估肌肉力量对骨骼结构的影响。利用骨骼遗骸,我们通过一种新的生物力学模型和3D成像技术,分析了旋前圆肌在整个屈伸和旋前-旋后范围内的旋转效率及其力的组成部分,并探讨了这些参数与骨骼结构之间的关系。结果表明,最大效率在肘关节完全屈曲时最高,并且在每个肘关节角度下都接近前臂中立位。旋前圆肌力量的垂直分量在所有分量中是最高的,并且在旋前和肘关节伸展时更大。在旋前时,桡侧分量变为负值,并且随着肘关节屈曲达到更低的值。这两个分量都可以增强桡骨曲率,尤其是在旋前时。该模型还能够计算模拟骨测量参数变化时的效率和力的组成部分。桡骨曲率的增加会提高效率,并将桡侧分量变为负值的位置向旋前结束时移动。旋前圆肌桡侧附着点更靠近近端以及肱骨内侧髁更大,会提高效率,并将该分量变为负值的位置向前臂中立位移动,从而增强桡骨曲率。效率还受到内侧髁的方向和提携角的影响。此外,在接近中立位的位置伸手拿取物体并将其靠近面部会提高效率,并使影响肘关节稳定性的力之间达到平衡。当上肢骨骼处于低效率位置时,意味着力的组成部分不平衡,它会发生塑性变化,从而改善这些参数。这些发现对于人体工程学和骨科研究很有用,并且该模型还可以应用于灵长类化石,以推断它们的运动形式。此外,人类古代群体的活动模式可以从此处报告的参数中推导出来。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ec18/3938685/1b02fc73c1b0/pone.0090319.g001.jpg

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