Rocchi Lorenzo, Suppa Antonio, Leodori Giorgio, Celletti Claudia, Camerota Filippo, Rothwell John, Berardelli Alfredo
Department of Clinical and Movement Neurosciences, UCL Queen Square Institute of Neurology, University College London, London, United Kingdom.
Department of Human Neurosciences, Sapienza University of Rome, Rome, Italy.
Front Neurol. 2018 Nov 2;9:935. doi: 10.3389/fneur.2018.00935. eCollection 2018.
The spinal cord spinal cord has in the past been considered a hardwired system which responds to inputs in a stereotyped way. A growing body of data have instead demonstrated its ability to retain information and modify its effector capabilities, showing activity-dependent plasticity. Whereas, plasticity in the spinal cord is well documented after different forms of physical exercise, whether exogenous stimulation can induce similar changes is still a matter of debate. This issue is both of scientific and clinical relevance, since at least one form of stimulation, i.e., focal muscle vibration (fMV), is currently used as a treatment for spasticity. The aim of the present study was to assess whether fMV can induce plasticity at the SC level when applied to different muscles of the upper limb. Changes in different electrophysiological measures, such as H-reflex testing homonymous and heteronymous pathways, reciprocal inhibition and somatosensory evoked potentials were used as outcomes. We found that fMV was able to induce long-term depression-like plasticity in specific spinal cord circuits depending on the muscle vibrated. These findings helped understand the basic mechanisms underlying the effects of fMV and might help to develop more advanced stimulation protocols.
脊髓过去被认为是一个硬连线系统,以固定的方式对输入做出反应。然而,越来越多的数据表明它有能力保留信息并改变其效应器功能,表现出活动依赖性可塑性。虽然不同形式的体育锻炼后脊髓可塑性已有充分记录,但外源性刺激是否能诱导类似变化仍存在争议。这个问题具有科学和临床相关性,因为目前至少有一种刺激形式,即局部肌肉振动(fMV),被用作治疗痉挛的方法。本研究的目的是评估当fMV应用于上肢不同肌肉时,是否能在脊髓水平诱导可塑性。使用不同的电生理测量变化作为结果,如H反射测试同名和异名通路、交互抑制和体感诱发电位。我们发现,根据振动的肌肉不同,fMV能够在特定脊髓回路中诱导长期抑郁样可塑性。这些发现有助于理解fMV作用的基本机制,并可能有助于开发更先进的刺激方案。