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Optogenetically stimulating intact rat corticospinal tract post-stroke restores motor control through regionalized functional circuit formation

机译:通过光遗传学刺激完整的大鼠皮质脊髓束中风后通过局部功能性电路形成恢复运动控制

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摘要

Current neuromodulatory strategies to enhance motor recovery after stroke often target large brain areas non-specifically and without sufficient understanding of their interaction with internal repair mechanisms. Here we developed a novel therapeutic approach by specifically activating corticospinal circuitry using optogenetics after large strokes in rats. Similar to a neuronal growth-promoting immunotherapy, optogenetic stimulation together with intense, scheduled rehabilitation leads to the restoration of lost movement patterns rather than induced compensatory actions, as revealed by a computer vision-based automatic behavior analysis. Optogenetically activated corticospinal neurons promote axonal sprouting from the intact to the denervated cervical hemi-cord. Conversely, optogenetically silencing subsets of corticospinal neurons in recovered animals, results in mistargeting of the restored grasping function, thus identifying the reestablishment of specific and anatomically localized cortical microcircuits. These results provide a conceptual framework to improve established clinical techniques such as transcranial magnetic or transcranial direct current stimulation in stroke patients.
机译:当前增强脑卒中后运动恢复的神经调节策略通常针对性地针对大脑区域,并且对它们与内部修复机制的相互作用缺乏足够的了解。在这里,我们开发了一种新的治疗方法,通过在大鼠大中风后使用光遗传学特异性激活皮质脊髓回路。与基于神经元的生长免疫疗法相似,通过基于计算机视觉的自动行为分析可以发现,光遗传学刺激与有计划的剧烈康复一起可以恢复失去的运动方式,而不是引起补偿作用。光遗传学激活的皮质脊髓神经元可促进轴突从完整到失神经的颈半绳的萌芽。相反,在恢复的动物中,通过光遗传学沉默皮质脊髓神经元的子集会导致恢复的抓握功能定位不正确,从而确定了特定的和解剖学定位的皮质微电路的重建。这些结果为改善中风患者经颅磁或经颅直流电刺激等已建立的临床技术提供了概念框架。

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