Mezzarane Rinaldo A, Nakajima Tsuyoshi, Zehr E Paul
Laboratory of Signal Processing and Motor Control, College of Physical Education, University of BrasíliaBrasília, Brazil.
Rehabilitation Neuroscience Laboratory, School of Exercise Science, Physical, and Health Education, University of VictoriaVictoria, BC, Canada.
Front Hum Neurosci. 2017 Jul 5;11:355. doi: 10.3389/fnhum.2017.00355. eCollection 2017.
The modulation of spinal cord excitability during rhythmic limb movement reflects the neuronal coordination underlying actions of the arms and legs. Integration of network activity in the spinal cord can be assessed by reflex variability between the limbs, an approach so far very little studied. The present work addresses this question by eliciting Hoffmann (H-) reflexes in both limbs to assess if common drive onto bilateral pools of motoneurons influence spinal cord excitability simultaneously or with a delay between sides. A cross-covariance (CCV) sequence between reflexes in both arms or legs was evaluated under conditions providing common drive bilaterally through voluntary muscle contraction and/or rhythmic movement of the remote limbs. For H-reflexes in the flexor carpi radialis (FCR) muscle, either contraction of the FCR or leg cycling induced significant reduction in the amplitude of the peak at the zero lag in the CCV sequence, indicating independent variations in spinal excitability between both sides. In contrast, for H-reflexes in the soleus (SO) muscle, arm cycling revealed no reduction in the amplitude of the peak in the CCV sequence at the zero lag. This suggests a more independent control of the arms compared with the legs. These results provide new insights into the organization of human limb control in rhythmic activity and the behavior of bilateral reflex fluctuations under different motor tasks. From a functional standpoint, changes in the co-variability might reflect dynamic adjustments in reflex excitability that are subsumed under more global control features during locomotion.
在有节奏的肢体运动过程中,脊髓兴奋性的调节反映了手臂和腿部动作背后的神经元协调情况。脊髓中网络活动的整合可以通过肢体间的反射变异性来评估,到目前为止,这种方法很少被研究。本研究通过在双侧肢体诱发霍夫曼(H-)反射来解决这个问题,以评估双侧运动神经元池上的共同驱动是否同时或在两侧之间存在延迟地影响脊髓兴奋性。在通过自愿肌肉收缩和/或远端肢体的有节奏运动提供双侧共同驱动的条件下,评估双臂或双腿反射之间的交叉协方差(CCV)序列。对于桡侧腕屈肌(FCR)肌肉的H反射,FCR收缩或腿部循环都会导致CCV序列中零延迟处峰值幅度的显著降低,表明两侧脊髓兴奋性存在独立变化。相比之下,对于比目鱼肌(SO)的H反射,手臂循环并未显示CCV序列中零延迟处峰值幅度的降低。这表明与腿部相比,手臂的控制更加独立。这些结果为有节奏活动中人类肢体控制的组织以及不同运动任务下双侧反射波动的行为提供了新的见解。从功能角度来看,协变的变化可能反映了反射兴奋性的动态调整,这些调整在运动过程中被纳入更全局的控制特征之下。