Reyes Alexander, Laine Christopher M, Kutch Jason J, Valero-Cuevas Francisco J
Brain-Body Dynamics Lab, Department of Biomedical Engineering, University of Southern CaliforniaLos Angeles, CA, USA.
Applied Mathematical Physiology Lab, Division of Biokinesiology and Physical Therapy, University of Southern CaliforniaLos Angeles, CA, USA.
Front Comput Neurosci. 2017 Apr 4;11:17. doi: 10.3389/fncom.2017.00017. eCollection 2017.
During force production, hand muscle activity is known to be coherent with activity in primary motor cortex, specifically in the beta-band (15-30 Hz) frequency range. It is not clear, however, if this coherence reflects the control strategy selected by the nervous system for a given task, or if it instead reflects an intrinsic property of cortico-spinal communication. Here, we measured corticomuscular and intermuscular coherence between muscles of index finger and thumb while a two-finger pinch grip of identical net force was applied to objects which were either stable (allowing synergistic activation of finger muscles) or unstable (requiring individuated finger control). We found that beta-band corticomuscular coherence with the first (FDI) and (APB) muscles, as well as their beta-band coherence with each other, was significantly reduced when individuated control of the thumb and index finger was required. We interpret these findings to show that beta-band coherence is reflective of a synergistic control strategy in which the cortex binds task-related motor neurons into functional units.
在力量产生过程中,已知手部肌肉活动与初级运动皮层的活动具有相关性,特别是在β波段(15 - 30赫兹)频率范围内。然而,尚不清楚这种相关性是反映了神经系统为特定任务选择的控制策略,还是反映了皮质 - 脊髓通信的固有属性。在此,我们测量了食指和拇指肌肉之间的皮质肌肉和肌间相关性,同时对稳定(允许手指肌肉协同激活)或不稳定(需要单独控制手指)的物体施加相同净力的双指捏握。我们发现,当需要单独控制拇指和食指时,与第一背侧骨间肌(FDI)和拇短展肌(APB)的β波段皮质肌肉相关性,以及它们彼此之间的β波段相关性均显著降低。我们对这些发现的解释是,β波段相关性反映了一种协同控制策略,其中皮层将与任务相关的运动神经元绑定到功能单元中。