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髌骨:垂直跳跃过程中协调性的一个力学决定因素。

The patella: A mechanical determinant of coordination during vertical jumping.

作者信息

Cleather Daniel John

机构信息

School of Sport, Health and Applied Sciences, St. Mary's University, Waldegrave Road, Twickenham TW1 4SX, UK.

出版信息

J Theor Biol. 2018 Jun 7;446:205-211. doi: 10.1016/j.jtbi.2018.03.013. Epub 2018 Mar 14.

Abstract

The patella is traditionally understood to be a "joint spacer" that increases the moment arm of the patellar tendon. This characterisation is unsatisfactory as it fails to explain the more interesting characteristics of the patella: 1) that the changing pivot point of the patella causes the ratio of quadriceps to patellar tendon force to almost double as the knee flexes; 2) that the patellar tendon exerts an anteriorly directed force on the tibia when the knee is extended but this switches to a posterior draw as the knee flexes; and 3) that the presence of the patella allows the quadriceps to exert different moments on the femur and tibia. Here, I use a simple, model of the geometry of the knee to calculate the changes in the effective moment arms of the quadriceps on the femur and tibia as the knee extends during vertical jumping. These effective moment arms are then contrasted with the actual changes in moments seen during a vertical jump. This analysis demonstrates that the changing geometry of the knee alone can explain 93% (p < 0.05) of the variance in the characteristic femoral to tibial pattern of moment production during jumping - suggesting that the mechanics of the patella have a crucial influence on the coordination of jumping. These results lend support to the contention that mechanical considerations play a pivotal role in the control of movement by creating a stronger imperative towards a particular movement solution than might be suggested by the large degree of redundancy in the neuromuscular system. This idea is consistent with dynamic systems theories of motor control, i.e. the mechanical structure of the musculoskeletal system itself is important in the organisation of movement (so called mechanical intelligence).

摘要

传统上认为髌骨是一个“关节间隔物”,可增加髌腱的力臂。这种描述并不令人满意,因为它未能解释髌骨更有趣的特征:1)髌骨不断变化的枢轴点会导致膝关节屈曲时股四头肌与髌腱力的比值几乎翻倍;2)膝关节伸展时髌腱对胫骨施加向前的力,但随着膝关节屈曲,该力会转变为向后的拉力;3)髌骨的存在使股四头肌能够对股骨和胫骨施加不同的力矩。在此,我使用一个简单的膝关节几何模型来计算垂直跳跃过程中膝关节伸展时股四头肌在股骨和胫骨上的有效力臂变化。然后将这些有效力臂与垂直跳跃过程中实际的力矩变化进行对比。该分析表明,仅膝关节几何形状的变化就能解释跳跃过程中股骨与胫骨特征性力矩产生模式差异的93%(p < 0.05)——这表明髌骨的力学特性对跳跃的协调性具有关键影响。这些结果支持了这样一种观点,即机械因素在运动控制中起着关键作用,通过产生比神经肌肉系统中大量冗余所暗示的更强的对特定运动解决方案的驱动力。这一观点与运动控制的动态系统理论一致,即肌肉骨骼系统本身的机械结构在运动组织中很重要(即所谓的机械智能)。

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