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使用神经假体恢复脑损伤后的功能。

Restoration of function after brain damage using a neural prosthesis.

机构信息

Departments of Molecular and Integrative Physiology and Biostatistics, and Landon Center on Aging, Kansas University Medical Center, Kansas City, KS 66160.

出版信息

Proc Natl Acad Sci U S A. 2013 Dec 24;110(52):21177-82. doi: 10.1073/pnas.1316885110. Epub 2013 Dec 9.

Abstract

Neural interface systems are becoming increasingly more feasible for brain repair strategies. This paper tests the hypothesis that recovery after brain injury can be facilitated by a neural prosthesis serving as a communication link between distant locations in the cerebral cortex. The primary motor area in the cerebral cortex was injured in a rat model of focal brain injury, disrupting communication between motor and somatosensory areas and resulting in impaired reaching and grasping abilities. After implantation of microelectrodes in cerebral cortex, a neural prosthesis discriminated action potentials (spikes) in premotor cortex that triggered electrical stimulation in somatosensory cortex continuously over subsequent weeks. Within 1 wk, while receiving spike-triggered stimulation, rats showed substantially improved reaching and grasping functions that were indistinguishable from prelesion levels by 2 wk. Post hoc analysis of the spikes evoked by the stimulation provides compelling evidence that the neural prosthesis enhanced functional connectivity between the two target areas. This proof-of-concept study demonstrates that neural interface systems can be used effectively to bridge damaged neural pathways functionally and promote recovery after brain injury.

摘要

神经接口系统在脑修复策略方面变得越来越可行。本文检验了这样一个假设,即通过充当大脑皮层中远距离之间的通信链路的神经假体,可以促进脑损伤后的恢复。在大脑局部损伤的大鼠模型中,大脑皮层的初级运动区受到损伤,破坏了运动区和躯体感觉区之间的通信,导致抓握能力受损。在大脑皮层植入微电极后,神经假体可以区分运动前皮层中的动作电位(尖峰),这些尖峰在随后的几周内持续触发躯体感觉皮层中的电刺激。在 1 周内,大鼠在接受尖峰触发刺激的同时,表现出明显改善的抓握功能,到 2 周时,这些功能与损伤前水平无法区分。对刺激引起的尖峰的事后分析提供了令人信服的证据,表明神经假体增强了两个目标区域之间的功能连接。这项概念验证研究表明,神经接口系统可有效用于功能上桥接受损的神经通路,并促进脑损伤后的恢复。

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