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Effect of Constraint Loading on the Lower Limb Muscle Forces in Weightless Treadmill Exercise

机译:负重跑步机运动中约束负荷对下肢肌肉力量的影响

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摘要

Long exposure to the microgravity will lead to muscle atrophy and bone loss. Treadmill exercise could mitigate the musculoskeletal decline. But muscle atrophy remains inevitable. The constraint loading applied on astronauts could affect the muscle force and its atrophy severity. However, the quantitative correlation between constraint loading mode and muscle forces remains unclear. This study aimed to characterize the influence of constraint loading mode on the lower limb muscle forces in weightless treadmill exercise. The muscle forces in the full gait cycle were calculated with the inverse dynamic model of human musculoskeletal system. The calculated muscle forces at gravity were validated with the EMG data. Muscle forces increased at weightlessness compared with those at the earth's gravity. The increasing percentage from high to low is as follows: biceps femoris, gastrocnemius, soleus, vastus, and rectus femoris, which was in agreement with the muscle atrophy observed in astronauts. The constraint loading mode had an impact on the muscle forces in treadmill exercise and thus could be manipulated to enhance the effect of the muscle training in spaceflight. The findings could provide biomechanical basis for the optimization of treadmill constraint system and training program and improve the countermeasure efficiency in spaceflight.
机译:长时间暴露于微重力下会导致肌肉萎缩和骨质流失。跑步机锻炼可以减轻肌肉骨骼的下降。但是肌肉萎缩仍然是不可避免的。施加在宇航员身上的约束载荷可能会影响肌肉力量及其萎缩程度。但是,约束加载模式和肌肉力量之间的定量关系仍然不清楚。这项研究旨在表征无负重跑步机运动中约束加载模式对下肢肌肉力量的影响。使用人体肌肉骨骼系统的逆动力学模型计算了整个步态周期的肌肉力。计算出的重力肌肉力量已通过EMG数据验证。与地球重力相比,在失重状态下的肌肉力量有所增加。从高到低的增加百分比如下:股二头肌,腓肠肌,比目鱼肌,股大肌和股直肌,这与宇航员观察到的肌肉萎缩相吻合。约束加载模式对跑步机锻炼中的肌肉力量有影响,因此可以进行控制以增强太空飞行中肌肉训练的效果。研究结果可为跑步机约束系统和训练程序的优化提供生物力学基础,并提高航天飞行的对策效率。

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