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Restoration of upper limb movement via artificial corticospinal and musculospinal connections in a monkey with spinal cord injury

机译:通过患有脊髓损伤的猴子中的人造皮质脊髓和肌肉脊柱连接来恢复上肢运动

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摘要

Functional loss of limb control in individuals with spinal cord injury or stroke can be caused by interruption of corticospinal pathways, although the neural circuits located above and below the lesion remain functional. An artificial neural connection that bridges the lost pathway and connects cortical to spinal circuits has potential to ameliorate the functional loss. We investigated the effects of introducing novel artificial neural connections in a paretic monkey that had a unilateral spinal cord lesion at the C2 level. The first application bridged the impaired spinal lesion. This allowed the monkey to drive the spinal stimulation through volitionally controlled power of high-gamma activity in either the premotor or motor cortex, and thereby to acquire a force-matching target. The second application created an artificial recurrent connection from a paretic agonist muscle to a spinal site, allowing muscle-controlled spinal stimulation to boost on-going activity in the muscle. These results suggest that artificial neural connections can compensate for interrupted descending pathways and promote volitional control of upper limb movement after damage of descending pathways such as spinal cord injury or stroke.
机译:尽管位于病变上方和下方的神经回路仍保持功能正常,但皮质脊髓通道中断可能会导致脊髓损伤或中风患者肢体控制功能丧失。桥接丢失的通路并将皮质与脊髓回路连接的人工神经连接具有改善功能丧失的潜力。我们调查了在具有C2水平单侧脊髓病变的paretic猴子中引入新型人工神经连接的效果。第一次应用弥合了受损的脊柱病变。这允许猴子通过在运动前或运动皮层中的高伽马活动的自愿控制动力来驱动脊柱刺激,从而获得力匹配目标。第二个应用程序创建了一个从周期性激动剂肌肉到脊柱部位的人工循环连接,从而允许肌肉控制的脊柱刺激来增强肌肉的持续活动。这些结果表明,人工神经连接可以补偿中断的下行通道,并在下行通道受损(例如脊髓损伤或中风)后促进上肢运动的意志控制。

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