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S109 Magnetoencephalographic-based brain–machine interface robotic hand for controlling sensorimotor cortical plasticity and phantom limb pain

机译:S109基于磁性脑力学的脑机接口机器人手用于控制SensorImotor皮质塑性和幻影肢体疼痛

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Objectives Phantom limb pain is neuropathic pain after amputation of a limb and partial or complete deafferentation such as brachial plexus root avulsion. The underlying cause of this pain has been attributed to maladaptive plasticity of the sensorimotor cortex. It has been suggested that experimental reorganization would affect pain, especially if it results in functional restoration. We tested the hypothesis that restoration of hand motor function using a brain–machine interface (BMI) based on magnetoencephalographic (MEG) signals will normalize maladapted cortical representation and relieve pain. Methods This study included 10 phantom limb patients (9 brachial plexus root avulsion and 1 amputee). MEG signals during movements of the phantom hand or intact hand were used to train the decoder inferring movements of each hand. The robotic hand was controlled by the decoder. Patients controlled the robotic hand by moving the phantom hand. The training effects were compared among trainings with the phantom decoder, real hand decoder, and random decoder in a randomized cross-over trial. Results BMI training with the phantom decoder increased the decoding accuracy of phantom hand movements and pain. In contrast, BMI training with the intact hand decoder reduced accuracy and pain. Discussion It was suggested that BMI training to modulate the motor representation of phantom hand controlled pain. The sensorimotor cortical plasticity might induce pain. Conclusions and Significance Phantom limb pain was controlled by BMI training to induce sensorimotor cortical plasticity. ]]>
机译:目标幻影肢体疼痛是肢体截肢后的神经性疼痛和部分或完全脱迹,如臂丛神经撕裂。这种疼痛的潜在原因归因于SensorImotor皮质的适应性可塑性。已经提出实验重组会影响疼痛,特别是如果它导致功能恢复。我们测试了使用基于磁性肺(MEG)信号的脑机接口(BMI)恢复手机功能的假设将使不良皮质表示和缓解疼痛。方法本研究包括10名幻影肢体(9例臂丛神经撕裂和1截肢者)。在幻影手或完整手的运动期间的MEG信号用于训练每只手的解码器推断。机器人手由解码器控制。患者通过移动幻影手控制机器人手。在随机交叉试验中将培训效果与幽灵解码器,真正的手解码器和随机解码器进行了比较。结果BMI培训与幻影解码器增加了幻象手动运动和疼痛的解码精度。相比之下,BMI培训用完整的手解码器降低了准确性和疼痛。讨论有人建议,BMI训练调制幽灵手控制疼痛的电动机表示。 SensorImotor皮质可塑性可能会诱导疼痛。结论和意义幽灵肢体受BMI训练控制的,以诱导感觉电机皮质塑性。 ]]>

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