Department of Mechanical Engineering, University of Maryland, College Park, MD, 20742, USA.
School of Mechanical Engineering, Chonnam National University, Gwangju, 61186, South Korea.
Sci Rep. 2021 Jan 8;11(1):203. doi: 10.1038/s41598-020-80420-z.
Motor synergies are neural organizations of a set of redundant motor effectors that interact with one another to compensate for each other's error and ensure the stabilization of a performance variable. Recent studies have demonstrated that central nervous system synergistically coordinates its numerous motor effectors through Bayesian multi-sensory integration. Deficiency in sensory synergy weakens the synergistic interaction between the motor effectors. Here, we scrutinize the neuromechanical mechanism underlying this phenomenon through spectral analysis and modeling. We validate our model-generated results using experimental data reported in the literature collected from participants performing a finger force production task with and without tactile feedback (manipulated through injection of anesthetic in fingers). Spectral analysis reveals that the error compensation feature of synergies occurs only at low frequencies. Modeling suggests that the neurophysiological structures involving short-latency back-coupling loops similar to the well-known Renshaw cells explain the deterioration of synergy due to sensory deprivation.
运动协同作用是一组冗余运动效应器的神经组织,它们相互作用以相互补偿彼此的误差,并确保性能变量的稳定性。最近的研究表明,中枢神经系统通过贝叶斯多感觉整合来协同协调其众多的运动效应器。感觉协同作用的缺失削弱了运动效应器之间的协同相互作用。在这里,我们通过频谱分析和建模来仔细研究这种现象的神经力学机制。我们使用从文献中收集的参与者在有和没有触觉反馈(通过在手指中注射麻醉剂来操纵)的情况下进行手指力产生任务的实验数据来验证我们的模型生成的结果。频谱分析表明,协同作用的误差补偿特征仅在低频下发生。建模表明,涉及类似于众所周知的 Renshaw 细胞的短潜伏期反向耦合环的神经生理结构解释了由于感觉剥夺而导致协同作用的恶化。