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Adaptation of muscle coordination to altered task mechanics during steady-state cycling.

机译:在稳态骑行过程中,肌肉协调适应变化的任务机制。

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The objective of this work was to increase our understanding of how motor patterns are produced during movement tasks by quantifying adaptations in muscle coordination in response to altered task mechanics. We used pedaling as our movement paradigm because it is a constrained cyclical movement that allows for a controlled investigation of test conditions such as movement speed and effort. Altered task mechanics were introduced using an elliptical chainring. The kinematics of the crank were changed from a relatively constant angular velocity using a circular chainring to a widely varying angular velocity using an elliptical chainring. Kinetic, kinematic and muscle activity data were collected from eight competitive cyclists using three different chainrings--one circular and two different orientations of an elliptical chainring. We tested the hypotheses that muscle coordination patterns (EMG timing and magnitude), specifically the regions of active muscle force production, would shift towards regions in the crank cycle in which the crank angular velocity, and hence muscle contraction speeds, were favorable to produce muscle power as defined by the skeletal muscle power-velocity relationship. The results showed that our hypothesis with regards to timing was not supported. Although there were statistically significant shifts in muscle timing, the shifts were minor in absolute terms and appeared to be the result of the muscles accounting for the activation dynamics associated with muscle force development (i.e. the delay in muscle force rise and decay). But, significant changes in the magnitude of muscle EMG during regions of slow crank angular velocity for the tibialis anterior and rectus femoris were observed. Thus, the nervous system used adaptations to the muscle EMG magnitude, rather than the timing, to adapt to the altered task mechanics. The results also suggested that cyclists might work on the descending limb of the power-velocity relationship when pedaling at 90 rpm and sub-maximal power output. This finding might have important implications for preferred pedaling rate selection.
机译:这项工作的目的是通过量化响应于变化的任务机制的肌肉协调适应性,来加深我们对运动任务过程中运动模式产生方式的理解。我们将踩踏作为运动范例,因为它是受约束的周期性运动,可以对运动速度和力量等测试条件进行可控的研究。使用椭圆链环引入了改变的任务机制。曲柄的运动从使用圆盘链轮的相对恒定的角速度更改为使用椭圆盘链轮的广泛变化的角速度。运动,运动和肌肉活动数据是使用三种不同的链环从一个八名竞技自行车运动员那里收集的-一个圆环和一个椭圆链环的两个不同方向。我们测试了以下假设:肌肉协调模式(EMG时机和幅度),特别是活跃的肌肉力量产生区域,将朝曲柄周期中曲柄角速度以及因此肌肉收缩速度有利于产生肌肉的区域移动由骨骼肌力量-速度关系定义的力量。结果表明,我们关于时机的假设不受支持。尽管在肌肉运动时机上有统计上的显着变化,但从绝对意义上讲,这些变化很小,似乎是由于肌肉考虑到了与肌肉力量发展有关的激活动力学(即肌肉力量上升和衰减的延迟)的结果。但是,观察到胫骨前和股直肌在缓慢的曲柄角速度区域内肌肉肌电图的大小发生了显着变化。因此,神经系统使用的是对肌肉EMG大小的适应,而不是时间,以适应变化的任务机制。结果还表明,骑自行车的人在以90 rpm的速度踩踏和次最大功率输出时,可能会在功率-速度关系的下降肢上工作。这一发现可能对首选踩踏率的选择具有重要意义。

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