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Excitability Changes in Intracortical Neural Circuits Induced by Differentially Controlled Walking Patterns

机译:差异控制的步行模式引起的皮质内神经回路兴奋性变化

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摘要

Our previous single-pulse transcranial magnetic stimulation (TMS) study revealed that excitability in the motor cortex can be altered by conscious control of walking relative to less conscious normal walking. However, substantial elements and underlying mechanisms for inducing walking-related cortical plasticity are still unknown. Hence, in this study we aimed to examine the characteristics of electromyographic (EMG) recordings obtained during different walking conditions, namely, symmetrical walking (SW), asymmetrical walking 1 (AW1), and asymmetrical walking 2 (AW2), with left to right stance duration ratios of 1:1, 1:2, and 2:1, respectively. Furthermore, we investigated the influence of three types of walking control on subsequent changes in the intracortical neural circuits. Prior to each type of 7-min walking task, EMG analyses of the left tibialis anterior (TA) and soleus (SOL) muscles during walking were performed following approximately 3 min of preparative walking. Paired-pulse TMS was used to measure short-interval intracortical inhibition (SICI) and intracortical facilitation (ICF) in the left TA and SOL at baseline, immediately after the 7-min walking task, and 30 min post-task. EMG activity in the TA was significantly increased during AW1 and AW2 compared to during SW, whereas a significant difference in EMG activity of the SOL was observed only between AW1 and AW2. As for intracortical excitability, there was a significant alteration in SICI in the TA between SW and AW1, but not between SW and AW2. For the same amount of walking exercise, we found that the different methods used to control walking patterns induced different excitability changes in SICI. Our research shows that activation patterns associated with controlled leg muscles can alter post-exercise excitability in intracortical circuits. Therefore, how leg muscles are activated in a clinical setting could influence the outcome of walking in patients with stroke.
机译:我们先前的单脉冲经颅磁刺激(TMS)研究表明,相对于较无意识的正常行走,有意识的行走控制可改变运动皮层的兴奋性。然而,诱导步行相关的皮质可塑性的实质性元素和潜在机制仍然未知。因此,在这项研究中,我们旨在检查在不同步行条件下获得的肌电图(EMG)记录的特征,即对称步行(SW),不对称步行1(AW1)和不对称步行2(AW2),从左到右姿势持续时间比率分别为1:1、1:2和2:1。此外,我们调查了三种类型的步行控制对皮层内神经回路的后续变化的影响。在每种类型的7分钟步行任务之前,准备步行约3分钟后,对步行过程中左胫骨前(TA)和比目鱼(SOL)肌肉进行EMG分析。配对脉冲TMS用于在基线时,步行7分钟后和术后30分钟后立即测量左侧TA和SOL的短间隔皮质内抑制(SICI)和皮质内促进(ICF)。与SW期间相比,TA在AW1和AW2中的EMG活性显着增加,而仅在AW1和AW2之间观察到SOL的EMG活性显着差异。至于皮层内兴奋性,SW和AW1之间的TA中SICI有显着变化,而SW和AW2之间没有。对于相同数量的步行锻炼,我们发现用于控制步行模式的不同方法会导致SICI的兴奋性变化不同。我们的研究表明,与受控腿部肌肉相关的激活模式可以改变运动后皮质内回路的兴奋性。因此,在临床环境中腿部肌肉的激活方式可能会影响中风患者的行走结果。

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