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Motor cortex electrical stimulation augments sprouting of the corticospinal tract and promotes recovery of motor function

机译:运动皮质电刺激促进皮质脊髓束的萌发并促进运动功能的恢复

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摘要

The corticospinal system—with its direct spinal pathway, the corticospinal tract (CST) – is the primary system for controlling voluntary movement. Our approach to CST repair after injury in mature animals was informed by our finding that activity drives establishment of connections with spinal cord circuits during postnatal development. After incomplete injury in maturity, spared CST circuits sprout, and partially restore lost function. Our approach harnesses activity to augment this injury-dependent CST sprouting and to promote function. Lesion of the medullary pyramid unilaterally eliminates all CST axons from one hemisphere and allows examination of CST sprouting from the unaffected hemisphere. We discovered that 10 days of electrical stimulation of either the spared CST or motor cortex induces CST axon sprouting that partially reconstructs the lost CST. Stimulation also leads to sprouting of the cortical projection to the magnocellular red nucleus, where the rubrospinal tract originates. Coordinated outgrowth of the CST and cortical projections to the red nucleus could support partial re-establishment of motor systems connections to the denervated spinal motor circuits. Stimulation restores skilled motor function in our animal model. Lesioned animals have a persistent forelimb deficit contralateral to pyramidotomy in the horizontal ladder task. Rats that received motor cortex stimulation either after acute or chronic injury showed a significant functional improvement that brought error rate to pre-lesion control levels. Reversible inactivation of the stimulated motor cortex reinstated the impairment demonstrating the importance of the stimulated system to recovery. Motor cortex electrical stimulation is an effective approach to promote spouting of spared CST axons. By optimizing activity-dependent sprouting in animals, we could have an approach that can be translated to the human for evaluation with minimal delay.
机译:皮质脊髓系统(具有直接的脊髓途径,皮质脊髓束(CST))是控制自愿运动的主要系统。我们的发现发现,在产后发育过程中,活性会驱动与脊髓回路的连接,因此我们对成年动物受伤后的CST修复进行了研究。成熟度不完全受伤后,备用的CST电路会发芽,并部分恢复失去的功能。我们的方法利用活动来增强这种依赖于损伤的CST发芽并促进功能。髓质锥体病变单方面消除了一个半球的所有CST轴突,并允许检查未受影响的半球的CST发芽。我们发现,对剩余的CST或运动皮层进行10天的电刺激会诱导CST轴突发芽,从而部分重建丢失的CST。刺激还导致皮层投射发芽到红松神经束起源的大细胞红核。 CST和皮层投影到红色核的协调生长可以支持与失神经的脊柱运动回路的运动系统连接的部分重建。刺激可以在我们的动物模型中恢复熟练的运动功能。患病的动物在水平阶梯手术中与锥体束切开术对侧持续存在前肢缺损。在急性或慢性损伤后接受运动皮层刺激的大鼠均显示出明显的功能改善,使错误率达到了病前控制水平。受刺激的运动皮层的可逆失活恢复了损伤,表明受刺激的系统对恢复的重要性。运动皮层电刺激是促进多余的CST轴突喷出的有效方法。通过优化动物中与活动有关的萌芽,我们可以拥有一种可以最小限度延迟地转化为人类进行评估的方法。

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