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首页> 外文期刊>The Journal of Neuroscience: The Official Journal of the Society for Neuroscience >Maximal voluntary fingertip force production is not limited by movement speed in combined motion and force tasks.
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Maximal voluntary fingertip force production is not limited by movement speed in combined motion and force tasks.

机译:在组合的运动和力任务中,最大的自愿指尖力产生不受运动速度的限制。

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Numerous studies of limbs and fingers propose that force-velocity properties of muscle limit maximal voluntary force production during anisometric tasks, i.e., when muscles are shortening or lengthening. Although this proposition appears logical, our study on the simultaneous production of fingertip motion and force disagrees with this commonly held notion. We asked eight consenting adults to use their dominant index fingertip to maximize voluntary downward force against a horizontal surface at specific postures (static trials), and also during an anisometric "scratching" task of rhythmically moving the fingertip along a 5.8 +/- 0.5 cm target line. The metronome-timed flexion-extension movement speed varied 36-fold from "slow" (1.0 +/- 0.5 cm/s) to "fast" (35.9 +/- 7.8 cm/s). As expected, maximal downward voluntary force diminished (44.8 +/- 15.6%; p = 0.001) when any motion (slow or fast) was added to the task. Surprisingly, however, a 36-fold increase in speed did not affect this reduction in force magnitude. These remarkable results for such an ordinary task challenge the dominant role often attributed to force-velocity properties of muscle and provide insight into neuromechanical interactions. We propose an explanation that the simultaneous enforcement of mechanical constraints for motion and force reduces the set of feasible motor commands sufficiently so that force-velocity properties cease to be the force-limiting factor. While additional work is necessary to reveal the governing mechanisms, the dramatic influence that the simultaneous enforcement of motion and force constraints has on force output begins to explain the vulnerability of dexterous function to development, aging, and even mild neuromuscular pathology.
机译:大量的四肢和手指研究表明,在等轴测任务期间,即当肌肉缩短或伸长时,肌肉的力速特性会限制最大的自发力产生。尽管这个主张似乎合乎逻辑,但我们对指尖运动和力同时产生的研究与这一普遍持有的观点不同。我们要求八名同意的成年人使用其主导的食指以最大程度地在特定姿势下对水平表面施加自愿向下的力(静态试验),以及在等距的“抓痒”任务中,有规律地沿5.8 +/- 0.5 cm方向移动指尖目标线。节拍器定时的屈伸运动速度从“慢”(1.0 +/- 0.5 cm / s)到“快”(35.9 +/- 7.8 cm / s)变化了36倍。不出所料,当向任务添加任何动作(缓慢或快速)时,最大的向下自愿力量减小了(44.8 +/- 15.6%; p = 0.001)。但是,令人惊讶的是,速度提高了36倍并没有影响力大小的减小。这些出色的结果完成了这项普通任务,挑战了通常归因于肌肉的力速特性的主导作用,并提供了对神经机械相互作用的洞察力。我们提出一个解释,即同时执行运动和力的机械约束会充分减少可行的电动机命令集,以使力速特性不再是力的限制因素。虽然需要进行更多的工作来揭示控制机制,但同时执行运动和施加力约束对力输出产生的巨大影响开始解释了敏捷功能对发育,衰老甚至轻度神经肌肉病理的脆弱性。

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