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首页> 外文期刊>Experimental Brain Research >Coupling of upper and lower limb pattern generators during human crawling at different arm/leg speed combinations.
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Coupling of upper and lower limb pattern generators during human crawling at different arm/leg speed combinations.

机译:在人类以不同的手臂/腿部速度组合爬行时,上肢和下肢图形生成器的耦合。

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摘要

A crawling paradigm was performed by healthy adults to examine inter-limb coupling patterns and to understand how central pattern generators (CPGs) for the upper and lower limbs are coordinated. Ten participants performed hands-and-feet crawling on two separate treadmills, one for the upper limbs and another one for the lower limbs, the speed of each of them being changed independently. A 1:1 frequency relationship was often maintained even when the treadmill speed was not matched between the upper and lower limbs. However, relative stance durations in the upper limbs were only affected by changes of the upper limb treadmill speed, suggesting that although absolute times are adjusted, the relative proportions of stances and swing do not adapt to changes in lower limb treadmill speeds. With large differences between treadmill speeds, changes in upper and lower limb coupling ratio tended to occur when the upper limbs stepped at slower speeds than the lower limbs, but more rarely the other way around. These findings are in sharp contrast with those in the cat, where forelimbs always follow the rhythm of the faster moving hindlimbs. However, the fact that an integer frequency ratio is often maintained between the upper and lower limbs supports evidence of coupled CPG control. We speculate that the preference for the upper limb to decrease step frequency at lower speeds in humans may be due to weaker ascending propriospinal connections and/or a larger influence of cortical control on the upper limbs which allows for an overriding of spinal CPG control.
机译:健康的成年人进行了爬行模式研究,以检查肢体间的耦合模式并了解上肢和下肢的中央模式发生器(CPG)是如何协调的。十名参与者在两个单独的跑步机上进行了手脚爬行,一个跑步机用于上肢,另一个跑步机用于下肢,每个跑步机的速度均独立改变。即使跑步机的速度在上肢和下肢之间不匹配时,也经常保持1:1的频率关系。但是,上肢的相对姿势持续时间仅受上肢跑步机速度变化的影响,这表明尽管调整了绝对时间,但姿势和挥杆的相对比例并不适应下肢跑步机速度的变化。在跑步机速度之间存在较大差异的情况下,当上肢以比下肢慢的速度踩踏时,上肢和下肢的耦合率往往会发生变化,反之则很少。这些发现与猫的前肢形成鲜明对比,后者的前肢始终遵循快速移动的后肢的节奏。但是,经常在上肢和下肢之间保持整数频率比的事实支持了耦合CPG控制的证据。我们推测,上肢在人类低速下降低步频的偏好可能是由于较弱的上脊椎连接和/或对上肢的皮质控制影响较大,从而使脊柱CPG控制无效。

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