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Large Propulsion Demands Increase Locomotor Adaptation at the Expense of Step Length Symmetry

机译:大推进力以步长对称性为代价提高运动适应性

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摘要

There is an interest to identify factors facilitating locomotor adaptation induced by split-belt walking (i.e., legs moving at different speeds) because of its clinical potential. We hypothesized that augmenting braking forces, rather than propulsion forces, experienced at the feet would increase locomotor adaptation during and after split-belt walking. To test this, forces were modulated during split-belt walking with distinct slopes: incline (larger propulsion than braking), decline (larger braking than propulsion), and flat (similar propulsion and braking). Step length asymmetry was compared between groups because it is a clinically relevant measure robustly adapted on split-belt treadmills. Unexpectedly, the group with larger propulsion demands (i.e., the incline group) changed their gait the most during adaptation, reached their final adapted state more quickly, and had larger after-effects when the split-belt perturbation was removed. We also found that subjects who experienced larger disruptions of propulsion forces in early adaptation exhibited greater after-effects, which further highlights the catalytic role of propulsion forces on locomotor adaptation. The relevance of mechanical demands on shaping our movements was also indicated by the steady state split-belt behavior, during which each group recovered their baseline leg orientation to meet leg-specific force demands at the expense of step length symmetry. Notably, the flat group was nearly symmetric, whereas the incline and decline group overshot and undershot step length symmetry, respectively. Taken together, our results indicate that forces propelling the body facilitate gait changes during and after split-belt walking. Therefore, the particular propulsion demands to walk on a split-belt treadmill might explain the gait symmetry improvements in hemiparetic gait following split-belt training.
机译:由于其潜在的临床潜力,人们有兴趣确定促进分裂带行走(即,腿以不同速度运动)引起的运动适应的因素。我们假设在双脚行走过程中和之后,增加脚部的制动力而不是推进力会增加运动适应性。为了测试这一点,在分体式皮带步行过程中以不同的坡度调节了力量:倾斜(推进力大于制动),下坡(制动力大于制动)和平坦(推进力和制动类似)。在两组之间比较了步长不对称性,因为它是一种临床相关的测量方法,可在皮带式跑步机上得到很好的适应。出乎意料的是,具有较大推进力的组(即倾斜组)在适应过程中最大程度地改变了步态,更快速地达到了最终适应状态,并且在去除皮带分裂扰动后具有更大的后效应。我们还发现,在早期适应中经历较大的推进力破坏的受试者表现出更大的后效应,这进一步突出了推进力对运动适应性的催化作用。稳定状态的皮带状态也表明了机械要求与塑造我们的动作的相关性,在此期间,每个组恢复了基线的腿部方向,以牺牲步长对称性为代价来满足腿部特定的力量要求。值得注意的是,扁平组几乎是对称的,而倾斜组和下降组分别是上冲和下冲步长对称。两者合计,我们的研究结果表明,在劈开皮带的过程中和之后,推动身体的力量有助于步态变化。因此,在皮带分裂式跑步机上行走的特殊推进要求可能解释了皮带分裂训练后偏瘫步态的步态对称性改善。

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