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首页> 外文期刊>Neuroscience: An International Journal under the Editorial Direction of IBRO >Analysis of the electromyographic activity of human elbow joint muscles during slow linear flexion movements in isotorque conditions.
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Analysis of the electromyographic activity of human elbow joint muscles during slow linear flexion movements in isotorque conditions.

机译:等扭矩条件下缓慢的线性屈曲运动过程中人体肘关节肌肉的肌电活动分析。

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摘要

Electromyograms were recorded by surface electrodes from the mm. biceps brachii (caput longum et breve), brachioradialis and triceps brachii (caput longum) in 10 healthy human subjects during slow linear movements in the elbow joint against a weak extending torque. The test movements were carried out under visual control through combining on a monitor screen a signal from a joint angle sensor with an appropriate command generated by a computer. The movements were fulfilled against a weak constant extending torque (0.5-2.5 Nm) and the extensor muscles were inactive. Surface electromyograms were full-wave rectified, filtered and averaged within sets of 10 identical tests. For the test movements in the range from 20 degrees to 100 degrees (0 degrees corresponds to a completely extended joint in these designations) the dynamic components of the efferent commands to actively contracted muscles frequently had a well-expressed monotonous increase. The electromyography intensity during movement quite often increased exponentially in all three investigated flexors. At the same time, the averaged electromyograms in one or two muscles could contain non-monotonous oscillations, thus showing a well-expressed decrease in the intensity of the efferent inflow within a middle range of a movement phase. The non-monotonous oscillations could occur in some subjects under minimal loads (0.5-0.75 Nm); they usually appeared initially only in one muscle, whereas the frequency of their occurrence was not high. The probability of finding the non-monotonous oscillations in the electromyograms from the muscles under study increased with heightening the extending load. Under the loads of 2.0-2.5 Nm this type of reaction could be found in almost half of all records (for the three muscles in each of the 10 subjects under testing). The presence of noticeable non-monotonous components in the electromyograms of the elbow flexors during their contraction is probably connected to their biomechanical arrangement within the joint. It is known that the arms of the forces generated by elbow flexors are maximal in the middle range of joint angles and decrease with a change in angle in both directions. Thus, we can suppose that non-monotonous decrement components in the electromyograms of the elbow flexors are presumably connected with an obvious necessity for a subject to decrease the excitatory efferent inflow to the muscles in the middle range of the joint angles. The pattern of electromyograms in the flexors acting around the joint was also dependent on a redistribution of activity between agonists. In the subjects showing stable non-monotonous components on the averaged electromyogram records in two agonists, a redistribution of the activity between these muscles has been demonstrated when phases of the electromyogram diminishing in one of them coincided with the appropriate increments in the other.
机译:肌电图由毫米的表面电极记录。二头肌肱二头肌(Caput longum et breve),腕肱肱三头肌和肱三头肌肱三头肌(Caput longum)在弱的延伸扭矩下,在肘关节缓慢的线性运动中处于十个健康的人类受试者中。通过在监视器屏幕上结合来自关节角度传感器的信号和计算机生成的适当命令,在视觉控制下进行测试运动。抵抗恒定的恒定延伸扭矩(0.5-2.5 Nm)即可完成运动,并且伸肌没有活动。表面肌电图经过全波整流,过滤并在10个相同测试的集合内取平均值。对于从20度到100度范围内的测试运动(0度在这些名称中对应于完全伸展的关节),主动收缩肌肉发出的命令的动态成分常常表现出良好的单调增加。在所有三个研究屈肌中,运动过程中的肌电图强度经常呈指数增加。同时,一根或两块肌肉的平均肌电图可能包含非单调的振荡,因此在运动阶段的中间范围内,出射流的强度明显降低。在最小负荷(0.5-0.75 Nm)下,某些对象可能会发生非单调振荡。它们通常最初只出现在一条肌肉中,而它们的出现频率并不高。从研究中的肌肉中发现肌电图中的非单调振荡的可能性随着拉伸负荷的增加而增加。在2.0-2.5 Nm的负载下,几乎所有记录中的一半都可以发现这种类型的反应(对于接受测试的10位受试者中的每位3条肌肉)。肘屈肌收缩期间肌电图中明显的非单调成分可能与它们在关节内的生物力学排列有关。已知由肘屈肌产生的力的臂在关节角度的中间范围内最大,并且随着角度在两个方向上的变化而减小。因此,我们可以推测,肘关节屈肌肌电图中的非单调递减分量显然与受试者在关节角中间范围内减少兴奋性传出的肌肉流入有关。关节周围屈肌中肌电图的模式也取决于激动剂之间活性的重新分布。在两个激动剂的平均肌电图记录中显示稳定的非单调成分的受试者中,当其中之一的肌电图相位减小与另一端的适当增量相吻合时,这些肌肉之间的活动就会重新分布。

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