Acute human brain responses to intracortical microelectrode arrays: challenges and future prospects.

Frontiers in neuroengineering Pub Date : 2014-07-21 eCollection Date: 2014-01-01 DOI:10.3389/fneng.2014.00024
Eduardo Fernández, Bradley Greger, Paul A House, Ignacio Aranda, Carlos Botella, Julio Albisua, Cristina Soto-Sánchez, Arantxa Alfaro, Richard A Normann
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引用次数: 121

Abstract

The emerging field of neuroprosthetics is focused on the development of new therapeutic interventions that will be able to restore some lost neural function by selective electrical stimulation or by harnessing activity recorded from populations of neurons. As more and more patients benefit from these approaches, the interest in neural interfaces has grown significantly and a new generation of penetrating microelectrode arrays are providing unprecedented access to the neurons of the central nervous system (CNS). These microelectrodes have active tip dimensions that are similar in size to neurons and because they penetrate the nervous system, they provide selective access to these cells (within a few microns). However, the very long-term viability of chronically implanted microelectrodes and the capability of recording the same spiking activity over long time periods still remain to be established and confirmed in human studies. Here we review the main responses to acute implantation of microelectrode arrays, and emphasize that it will become essential to control the neural tissue damage induced by these intracortical microelectrodes in order to achieve the high clinical potentials accompanying this technology.

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急性人脑对皮质内微电极阵列的反应:挑战和未来前景。
神经修复术这一新兴领域的重点是开发新的治疗干预措施,通过选择性电刺激或利用神经元群的活动记录来恢复一些失去的神经功能。随着越来越多的患者从这些方法中受益,对神经接口的兴趣显著增长,新一代穿透微电极阵列提供了前所未有的进入中枢神经系统(CNS)神经元的途径。这些微电极具有与神经元大小相似的活动尖端尺寸,并且由于它们能穿透神经系统,因此可以选择性地进入这些细胞(在几微米内)。然而,长期植入微电极的长期可行性和长时间记录相同尖峰活动的能力仍有待在人体研究中建立和证实。在此,我们回顾了急性植入微电极阵列的主要反应,并强调控制这些皮质内微电极引起的神经组织损伤是实现该技术高临床潜力的必要条件。
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