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首页> 外文期刊>Brain Sciences >Body-Machine Interfaces after Spinal Cord Injury: Rehabilitation and Brain Plasticity
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Body-Machine Interfaces after Spinal Cord Injury: Rehabilitation and Brain Plasticity

机译:脊髓损伤后的机体界面:康复和脑可塑性

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摘要

The purpose of this study was to identify rehabilitative effects and changes in white matter microstructure in people with high-level spinal cord injury following bilateral upper-extremity motor skill training. Five subjects with high-level (C5–C6) spinal cord injury (SCI) performed five visuo-spatial motor training tasks over 12 sessions (2–3 sessions per week). Subjects controlled a two-dimensional cursor with bilateral simultaneous movements of the shoulders using a non-invasive inertial measurement unit-based body-machine interface. Subjects’ upper-body ability was evaluated before the start, in the middle and a day after the completion of training. MR imaging data were acquired before the start and within two days of the completion of training. Subjects learned to use upper-body movements that survived the injury to control the body-machine interface and improved their performance with practice. Motor training increased Manual Muscle Test scores and the isometric force of subjects’ shoulders and upper arms. Moreover, motor training increased fractional anisotropy (FA) values in the cingulum of the left hemisphere by 6.02% on average, indicating localized white matter microstructure changes induced by activity-dependent modulation of axon diameter, myelin thickness or axon number. This body-machine interface may serve as a platform to develop a new generation of assistive-rehabilitative devices that promote the use of, and that re-strengthen, the motor and sensory functions that survived the injury.
机译:这项研究的目的是确定双侧上肢运动技能训练对高水平脊髓损伤患者的康复效果和白质微结构的变化。五名患有严重(C5-C6)脊髓损伤(SCI)的受试者在12节(每周2-3节)中进行了五次视觉空间运动训练任务。受试者使用基于非侵入性惯性测量单元的身体-机器界面控制肩部双向同时运动的二维光标。在训练开始之前,训练结束后的中间和一天评估受试者的上身能力。在开始之前以及训练结束后的两天内获取MR成像数据。受试者学会了使用在受伤中幸存下来的上身运动来控制人机界面,并通过练习提高其性能。运动训练增加了人工肌肉测验的分数以及受试者肩膀和上臂的等距力量。此外,运动训练可使左半球扣带平均分数各向异性(FA)值平均增加6.02%,这表明由轴突直径,髓鞘厚度或轴突数目的活性依赖性调节引起的局部白质微结构变化。该机体界面可以用作开发新一代辅助康复设备的平台,这些设备可以促进使用和增强在损伤中幸存的运动和感觉功能。

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