Department of Sport, Health Sciences and Social Work, Oxford Brookes University, Oxford, UK.
Eur J Sport Sci. 2022 Sep;22(9):1364-1373. doi: 10.1080/17461391.2021.1953154. Epub 2021 Jul 25.
The neuromuscular system responds to perturbation and increasing locomotor task difficulty by altering the stability of neuromuscular output signals. The purpose of this study was to determine the effects of two different military load carriage systems on the dynamic stability of gait and muscle activation signals. 14 army office cadets (20 ± 1 years) performed 4-minute treadmill walking trials on level (0%) and uphill (10%) gradients while unloaded, and with 11 kg backpack and 11 kg webbing loads while the activity of 6 leg and trunk muscles and the motion of the centre of mass (COM) were recorded. Loaded and uphill walking decreased stability and increased magnitude of muscle activations compared to loaded and level gradient walking. Backpack loads increased the medio-lateral stability of COM and uphill walking decreased stability of vertical COM motion and increased stride time variability. However, there was no difference between the two load carriage systems for any variable. The reduced stability of muscle activations in loaded and uphill conditions indicates an impaired ability of the neuromuscular control systems to accommodate perturbations in these conditions which may have implications on the operational performance of military personnel. However, improved medio-lateral stability in backpack conditions may indicate that participants were able to compensate for the loads used in this study, despite the decreased vertical stability and increased stride time variability evident in uphill walking. This study did not find differences between load carriage systems however, specific load carriage system effects may be elicited by greater load carriage masses.
神经系统通过改变神经肌肉输出信号的稳定性来响应扰动和增加的运动任务难度。本研究旨在确定两种不同的军用负重系统对步态和肌肉激活信号的动态稳定性的影响。14 名陆军参谋学员(20±1 岁)在水平(0%)和上坡(10%)坡度上进行了 4 分钟的跑步机行走试验,分别在无负载、背负 11kg 背包和 11kg 武装带的情况下,同时记录 6 条腿部和躯干肌肉的活动以及质心(COM)的运动。与水平梯度行走相比,负重和上坡行走降低了稳定性并增加了肌肉激活的幅度。背包负载增加了 COM 的横向稳定性,而上坡行走降低了垂直 COM 运动的稳定性并增加了步幅时间变异性。然而,对于任何变量,两种负载系统之间均无差异。在负重和上坡条件下肌肉激活的稳定性降低表明,神经肌肉控制系统在这些条件下适应扰动的能力受损,这可能对军事人员的作战表现产生影响。然而,在背包条件下横向稳定性的提高可能表明参与者能够补偿本研究中使用的负载,尽管在上坡行走中明显存在垂直稳定性降低和步幅时间变异性增加。本研究未发现负载系统之间的差异,但更大的负载系统可能会引起特定的负载系统效应。