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Functional plasticity of the ipsilateral primary sensorimotor cortex in an elite long jumper with below-knee amputation

机译:具有低于膝关节截肢的Elite Long跳线中的IpsilateLim SensicoTor皮层的功能可塑性

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摘要

Functional plasticity of the sensorimotor cortex occurs following motor practice, as well as after limb amputation. However, the joint effect of limb amputation and intensive, long-term motor practice on cortical plasticity remains unclear. Here, we recorded brain activity during unilateral contraction of the hip, knee, and ankle joint muscles from a long jump Paralympic gold medalist with a unilateral below-knee amputation (Amputee Long Jumper, ALJ). He used the amputated leg with a prosthesis for take-off. Under similar conditions to the ALJ, we also recorded brain activity from healthy long jumpers (HLJ) and non-athletes with a below-knee amputation. During a rhythmic isometric contraction of knee extensor muscles with the take-off/prosthetic leg, the ALJ activated not only the contralateral primary sensorimotor cortex (M1/S1), but also the ipsilateral M1/S1. In addition, this ipsilateral M1/S1 activation was significantly greater than that seen in the HLJ. However, we did not find any significant differences between the ALJ and HLJ in M1/S1 activation during knee muscle contraction in the non-take-off/intact leg, nor during hip muscle contraction on either side. Region of interest analysis revealed that the ALJ exhibited a greater difference in M1/S1 activity and activated areas ipsilateral to the movement side between the take-off/prosthetic and non-take-off/intact legs during knee muscle contraction compared with the other two groups. However, difference in activity in M1/S1 contralateral to the movement side did not differ across groups. These results suggest that a combination of below-knee amputation and intensive, prolonged long jump training using a prosthesis (i.e. fine knee joint control) induced an expansion of the functional representation of the take-off/prosthetic leg in the ipsilateral M1/S1 in a muscle-specific manner. These results provide novel insights into the potential for substantial cortical plasticity with an extensive motor rehabilitation program. Keywords: Athlete, Amputee, Motor learning, Rehabilitation, Plasticity, Prosthesis
机译:感觉运动皮层的功能可塑性发生以下马达实践,以及后截肢。然而,截肢和皮质可塑性密集,长期电机实践的共同作用仍不清楚。在这里,我们的髋关节,膝关节的单边收缩期间记录大脑活动,并与单方面膝下截肢(截肢跳远,ALJ)从跳远残奥会金牌得主踝关节肌肉。他用腿锯断与起飞的假体。在相似的条件ALJ,我们也记录了从健康跳远运动员(HLJ)和非运动员的大脑活动与膝下截肢。在膝伸肌与起飞/假腿有节奏的等长收缩,行政法官不仅激活对侧初级感觉皮层(M1 / S1),也同侧M1 / S1。此外,该患侧M1 / S1激活比在HLJ看到显著更大。然而,我们没有发现行政法官和HLJ之间的M1 / S1激活膝盖肌肉收缩时在非起飞/完整腿的任何显著的差异,也没有在两边收缩臀部肌肉。兴趣分析的区域发现该ALJ表现出M1 / S1活性有较大的差异和激活区域膝盖肌肉收缩时同侧起飞/假体和非起飞/完整腿之间的移动侧与其他两个比较组。然而,在活动的运动侧差异M1 / S1对侧没有不同群体不同。这些结果表明,膝下截肢和密集的组合,延长使用的假体(即细膝关节控制)跳远训练诱导起飞/假腿的同侧M1 / S1的功能表示的在膨胀肌肉特异性的方式。这些结果提供了新的见解为实质性的皮层塑性具有广泛的马达康复方案的潜力。关键词:运动员,截肢,电机学,康复,可塑性,假体

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