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Rapid limb-specific modulation of vestibular contributions to ankle muscle activity during locomotion

机译:运动过程中前肢对脚踝肌肉活动的快速肢体特异性调节

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摘要

During walking, the vestibular influence on locomotor activity is phase-dependent and modulated in both limbs with changes in velocity. It is unclear, however, whether this bilateral modulation is due to a coordinated mechanism between both limbs or instead through limb-specific processes that remain masked by the symmetric nature of locomotion. Here, human subjects walked on a split-belt treadmill with one belt moving at 0.4 m s−1 and the other moving at 0.8 m s−1 while exposed to an electrical vestibular stimulus. Muscle activity was recorded bilaterally around the ankles of each limb and used to compare vestibulo-muscular coupling between velocity-matched and unmatched tied-belt walking. In general, response magnitudes decreased by ∼20–50% and occurred ∼13–20% earlier in the stride cycle at the higher belt velocity. This velocity-dependent modulation of vestibular-evoked muscle activity was retained during split-belt walking and was similar within each limb to velocity-matched tied-belt walking. These results demonstrate that the vestibular influence on ankle muscles during locomotion can be adapted independently to each limb. Furthermore, modulation of vestibular-evoked muscle responses occurred rapidly (∼13–34 strides) after onset of split-belt walking. This rapid adaptation contrasted the prolonged adaptation in step length symmetry (∼128 strides) as well as EMG magnitude and timing (∼40–100 and ∼20–80 strides, respectively). These results suggest that vestibular influence on ankle muscle control is adjusted rapidly in sensorimotor control loops as opposed to longer-term error correction mechanisms commonly associated split-belt adaptation. Rapid limb-specific sensorimotor feedback adaptation may be advantageous for asymmetric overground locomotion, such as navigating irregular terrain or turning.
机译:在行走过程中,前庭对运动活动的影响是相位依赖性的,并且随着速度的变化在两肢中受到调节。然而,不清楚这种双边调节是由于两个肢体之间的协调机制,还是由于运动的对称性所掩盖的特定于肢体的过程。在这里,人类受试者在皮带式跑步机上行走,一条皮带在暴露于电前庭刺激下以0.4 m s-1的速度运动,另一条以0.8 m s-1的速度运动。记录每条脚踝周围的双侧肌肉活动,并用于比较速度匹配和不匹配的绑带行走之间的前庭肌肉耦合。通常,在较高的皮带速度下,步幅循环中的响应幅度下降了约20–50%,发生的时间约为13–20%。这种速度依赖性的前庭诱发的肌肉活动调节在劈开带行走过程中得以保留,并且在每个肢体中与速度匹配的绑带行走相似。这些结果表明,运动过程中前庭对踝部肌肉的影响可以独立地适应每个肢体。此外,分裂带行走开始后,前庭诱发的肌肉反应的调节迅速发生(约13–34步)。这种快速的适应性与步长对称性(〜128步幅),EMG幅度和时机(分别为〜40-100和〜20-80步幅)的长期适应形成了对比。这些结果表明,前庭对脚踝肌肉控制的影响在感觉运动控制环路中迅速调整,这与通常与分裂带适应相关的长期误差校正机制相反。快速的特定于肢体的感觉运动反馈适应对于非对称的地面运动(例如在不规则的地形上导航或转​​弯)可能是有利的。

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