Understanding gait alterations: trunk flexion and its effects on walking neuromechanics.

IF 2.8 2区 生物学 Q2 BIOLOGY Journal of Experimental Biology Pub Date : 2024-10-01 Epub Date: 2024-10-11 DOI:10.1242/jeb.249307
M Núñez-Lisboa, K Echeverría, P A Willems, Y Ivanenko, F Lacquaniti, A H Dewolf
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Abstract

Evolutionary and functional adaptations of morphology and postural tone of the spine and trunk are intrinsically shaped by the field of gravity in which humans move. Gravity also significantly impacts the timing and levels of neuromuscular activation, particularly in foot-support interactions. During step-to-step transitions, the centre of mass velocity must be redirected from downwards to upwards. When walking upright, this redirection is initiated by the trailing leg, propelling the body forward and upward before foot contact of the leading leg, defined as an anticipated transition. In this study, we investigated the neuromechanical adjustments when walking with a bent posture. Twenty adults walked on an instrumented treadmill at 4 km h-1 under normal (upright) conditions and with varying degrees of anterior trunk flexion (10, 20, 30 and 40 deg). We recorded lower-limb kinematics, ground reaction forces under each foot, and the electromyography activity of five lower-limb muscles. Our findings indicate that with increasing trunk flexion, there is a lack of these anticipatory step-to-step transitions, and the leading limb performs the redirection after the ground collision. Surprisingly, attenuating distal extensor muscle activity at the end of stance is one of the main impacts of trunk flexion. Our observations may help us to understand the physiological mechanisms and biomechanical regulations underlying our tendency towards an upright posture, as well as possible motor control disturbances in some diseases associated with trunk orientation problems.

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了解步态改变:躯干弯曲及其对行走神经力学的影响。
人类运动时所处的重力场从本质上塑造了脊柱和躯干的形态和姿势张力的进化和功能适应性。重力还对神经肌肉激活的时间和水平产生重大影响,尤其是在脚部支撑相互作用时。在步与步之间的转换过程中,质心速度必须从向下转向向上。直立行走时,这种重定向由后腿启动,在前腿触地前推动身体向前向上,这被定义为预期的转换。在这项研究中,我们研究了弯曲姿势行走时的神经机械调整。20 名成年人在正常(直立)条件下,以 4 km/h 的速度在带仪器的跑步机上行走,并保持不同程度的躯干前屈(10、20、30 和 40°)。我们记录了下肢运动学、每只脚下的地面反作用力以及五块下肢肌肉的肌电图活动。我们的研究结果表明,随着躯干弯曲度的增加,缺乏这些预期的步间转换,前肢在地面碰撞后进行重新定向。令人惊讶的是,在站立结束时远端伸肌活动减弱是躯干弯曲的主要影响之一。我们的观察结果可能有助于理解我们倾向于直立姿势的生理机制和生物力学调节,以及与躯干定向问题相关的某些疾病中可能存在的运动控制紊乱。
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来源期刊
CiteScore
5.50
自引率
10.70%
发文量
494
审稿时长
1 months
期刊介绍: Journal of Experimental Biology is the leading primary research journal in comparative physiology and publishes papers on the form and function of living organisms at all levels of biological organisation, from the molecular and subcellular to the integrated whole animal.
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