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视觉旋转对稳态步态中头部方向和质心控制的影响。

Impact of visual rotations on heading direction and center of mass control during steady-state gait.

机构信息

Department of Research, Sint Maartenskliniek, Nijmegen, The Netherlands.

Department of Sensorimotor Neuroscience, Donders Institute for Brain, Cognition and Behaviour, Radboud University, Nijmegen, The Netherlands.

出版信息

J Neurophysiol. 2024 Jun 1;131(6):1260-1270. doi: 10.1152/jn.00304.2023. Epub 2024 May 15.

Abstract

Visual information is essential to navigate the environment and maintain postural stability during gait. Visual field rotations alter the perceived heading direction, resulting in gait trajectory deviations, known as visual coupling. It is unclear how center of mass (CoM) control relative to a continuously changing base of support (BoS) is adapted to facilitate visual coupling. This study aimed to characterize mediolateral (ML) balance control during visual coupling in steady-state gait. Sixteen healthy participants walked on an instrumented treadmill, naive to sinusoidal low-frequency (0.1 Hz) rotations of the virtual environment around the vertical axis. Rotations were continuous with ) high or ) low amplitude or were ) periodic with 10-s intervals. Visual coupling was characterized with cross-correlations between CoM trajectory and visual rotations. Balance control was characterized with the ML margin of stability (MoS) and by quantifying foot placement control as the relation between CoM dynamics and lateral foot placement. Visual coupling was strong on a group level (continuous low: 0.88, continuous high: 0.91, periodic: 0.95) and moderate to strong on an individual level. Higher rotation amplitudes induced stronger gait trajectory deviations. The MoS decreased toward the deviation direction and increased at the opposite side. Foot placement control was similar compared with regular gait. Furthermore, pelvis and foot reorientation toward the rotation direction was observed. We concluded that visual coupling was facilitated by reorientating the body and shifting the extrapolated CoM closer to the lateral BoS boundary toward the adjusted heading direction while preserving CoM excursion and foot placement control. Healthy, naive participants were unaware of subtle, low-frequency rotations of the visual field but still coupled their gait trajectory to a rotating virtual environment. In response, participants decreased their margin of stability toward the new heading direction, without changing the center of mass excursion magnitude and foot placement strategy.

摘要

视觉信息对于在环境中导航和保持行走时的姿势稳定至关重要。视场旋转改变了感知的朝向,导致行走轨迹的偏差,这被称为视觉耦合。目前尚不清楚,当支撑基础(BoS)持续变化时,如何调整质心(CoM)控制以适应视觉耦合。本研究旨在描述在稳定步态中视觉耦合时的横向(ML)平衡控制。16 名健康参与者在带有仪器的跑步机上行走,对虚拟环境围绕垂直轴的低频(0.1 Hz)正弦旋转一无所知。旋转是连续的,幅度较高或较低,或者是周期性的,间隔为 10 秒。通过 CoM 轨迹和视觉旋转之间的互相关来描述视觉耦合。通过 ML 稳定性边界(MoS)和量化 CoM 动力学与侧向足置之间的关系来描述平衡控制。在组水平上,视觉耦合很强(连续低:0.88,连续高:0.91,周期性:0.95),在个体水平上为中度到很强。较高的旋转幅度会引起更大的行走轨迹偏差。MoS 朝着偏差方向减小,在相反方向上增加。与常规步态相比,足置控制相似。此外,还观察到骨盆和足部向旋转方向的重新定向。我们得出结论,视觉耦合是通过重新定向身体并将外推 CoM 向调整后的朝向方向靠近侧向 BoS 边界来实现的,同时保持 CoM 偏移和足置控制。健康的、没有经验的参与者没有意识到视觉场的微妙、低频旋转,但仍然将他们的步态轨迹与旋转的虚拟环境耦合。作为响应,参与者将其稳定性边界向新的朝向方向减小,而不改变质心偏移幅度和足置策略。

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