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在等长任务中,单个运动单位的控制和训练受到共同输入信号的限制。

The control and training of single motor units in isometric tasks are constrained by a common input signal.

机构信息

Department of Bioengineering, Imperial College London, London, United Kingdom.

Department of Clinical and Movement Disorders, Institute of Neurology, University College London, London, United Kingdom.

出版信息

Elife. 2022 Jun 7;11:e72871. doi: 10.7554/eLife.72871.

Abstract

Recent developments in neural interfaces enable the real-time and non-invasive tracking of motor neuron spiking activity. Such novel interfaces could provide a promising basis for human motor augmentation by extracting potentially high-dimensional control signals directly from the human nervous system. However, it is unclear how flexibly humans can control the activity of individual motor neurons to effectively increase the number of degrees of freedom available to coordinate multiple effectors simultaneously. Here, we provided human subjects (N = 7) with real-time feedback on the discharge patterns of pairs of motor units (MUs) innervating a single muscle (tibialis anterior) and encouraged them to independently control the MUs by tracking targets in a 2D space. Subjects learned control strategies to achieve the target-tracking task for various combinations of MUs. These strategies rarely corresponded to a volitional control of independent input signals to individual MUs during the onset of neural activity. Conversely, MU activation was consistent with a common input to the MU pair, while individual activation of the MUs in the pair was predominantly achieved by alterations in de-recruitment order that could be explained by history-dependent changes in motor neuron excitability. These results suggest that flexible MU recruitment based on independent synaptic inputs to single MUs is unlikely, although de-recruitment might reflect varying inputs or modulations in the neuron's intrinsic excitability.

摘要

神经接口的最新发展使实时、非侵入性的运动神经元尖峰活动追踪成为可能。这种新型接口可以通过直接从人体神经系统中提取潜在的高维控制信号,为人体运动增强提供有前途的基础。然而,目前尚不清楚人类可以多么灵活地控制单个运动神经元的活动,以有效地增加协调多个效应器同时可用的自由度的数量。在这里,我们为 7 名受试者提供了实时反馈,以了解一对支配单个肌肉(胫骨前肌)的运动单位 (MU) 的放电模式,并鼓励他们通过在 2D 空间中跟踪目标来独立控制 MU。受试者学习了控制策略,以实现各种 MU 组合的目标跟踪任务。这些策略很少对应于神经活动开始时对单个 MU 的独立输入信号的自主控制。相反,MU 的激活与 MU 对的共同输入一致,而 MU 对中单个 MU 的激活主要通过重新募集顺序的改变来实现,这可以通过运动神经元兴奋性的依赖于历史的变化来解释。这些结果表明,基于对单个 MU 的独立突触输入的灵活 MU 募集是不太可能的,尽管重新募集可能反映了神经元内在兴奋性的不同输入或调制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b3b2/9208758/00c25ea11180/elife-72871-fig1.jpg

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