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在向躯干施加不同水平的外部向前力时,躯干肌肉激活情况及相关腰椎关节剪切力。

Trunk muscle activation and associated lumbar spine joint shear forces under different levels of external forward force applied to the trunk.

作者信息

Kingma Idsart, Staudenmann Didier, van Dieën Jaap H

机构信息

Institute for Fundamental and Clinical Human Movement Sciences, Faculty of Human Movement Sciences, Vrije Universiteit, Van der Boechorststraat 9, 1081 BT Amsterdam, The Netherlands.

出版信息

J Electromyogr Kinesiol. 2007 Feb;17(1):14-24. doi: 10.1016/j.jelekin.2005.12.001. Epub 2006 Mar 13.

Abstract

High anterior intervertebral shear loads could cause low back injuries and therefore the neuromuscular system may actively counteract these forces. This study investigated whether, under constant moment loading relative to L3L4, an increased externally applied forward force on the trunk results in a shift in muscle activation towards the use of muscles with more backward directed lines of action, thereby reducing the increase in total joint shear force. Twelve participants isometrically resisted forward forces, applied at several locations on the trunk, while moments were held constant relative to L3L4. Surface EMG and lumbar curvature were measured, and an EMG-driven muscle model was used to calculate compression and shear forces at all lumbar intervertebral joints. Larger externally applied forward forces resulted in a flattening of the lumbar lordosis and a slightly more backward directed muscle force. Furthermore, the overall muscle activation increased. At the T12L1 to L3L4 joint, resulting joint shear forces remained small (less than 200N) because the average muscle force pulled backward relative to those joints. However, at the L5S1 joint the average muscle force pulled the trunk forward so that the increase in muscle force with increasing externally applied forward force caused a further rise in shear force (by 102.1N, SD=104.0N), resulting in a joint shear force of 1080.1N (SD=150.4N) at 50Nm moment loading. It is concluded that the response of the neuromuscular system to shear force challenges tends to increase rather than reduce the shear loading at the lumbar joint that is subjected to the highest shear forces.

摘要

较高的椎间前侧剪切负荷可能导致腰部损伤,因此神经肌肉系统可能会主动抵消这些力量。本研究调查了在相对于L3L4的恒定力矩负荷下,躯干上额外施加的向前力增加是否会导致肌肉激活向作用线更向后的肌肉转移,从而减少总关节剪切力的增加。12名参与者在躯干的几个位置等长抵抗向前的力,同时相对于L3L4保持力矩恒定。测量了表面肌电图和腰椎曲度,并使用肌电图驱动的肌肉模型计算所有腰椎椎间关节的压缩力和剪切力。额外施加的向前力越大,腰椎前凸越平坦,肌肉力的方向也略微更向后。此外,整体肌肉激活增加。在T12L1至L3L4关节处,由于平均肌肉力相对于这些关节向后牵拉,导致的关节剪切力仍然较小(小于200N)。然而,在L5S1关节处,平均肌肉力将躯干向前牵拉,因此随着额外施加的向前力增加,肌肉力的增加导致剪切力进一步上升(增加102.1N,标准差=104.0N),在50Nm力矩负荷下导致关节剪切力达到1080.1N(标准差=150.4N)。得出的结论是,神经肌肉系统对剪切力挑战的反应往往会增加而不是减少承受最高剪切力的腰椎关节处的剪切负荷。

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