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用于神经记录和刺激的导电水凝胶的研究进展。

Advances in conductive hydrogels for neural recording and stimulation.

机构信息

School of Nano-Tech and Nano-Bionics, University of Science and Technology of China (USTC), Hefei 230026, PR China.

CAS Key Laboratory of Nano-Bio Interface, Suzhou Institute of Nano-Tech and Nano-Bionics, Chinese Academy of Sciences, Suzhou, 215123, China.

出版信息

Biomater Sci. 2024 May 28;12(11):2786-2800. doi: 10.1039/d4bm00048j.

Abstract

The brain-computer interface (BCI) allows the human or animal brain to directly interact with the external environment through the neural interfaces, thus playing the role of monitoring, protecting, improving/restoring, enhancing, and replacing. Recording electrophysiological information such as brain neural signals is of great importance in health monitoring and disease diagnosis. According to the electrode position, it can be divided into non-implantable, semi-implantable, and implantable. Among them, implantable neural electrodes can obtain the highest-quality electrophysiological information, so they have the most promising application. However, due to the chemo-mechanical mismatch between devices and tissues, the adverse foreign body response and performance loss over time seriously restrict the development and application of implantable neural electrodes. Given the challenges, conductive hydrogel-based neural electrodes have recently attracted much attention, owing to many advantages such as good mechanical match with the native tissues, negligible foreign body response, and minimal signal attenuation. This review mainly focuses on the current development of conductive hydrogels as a biocompatible framework for neural tissue and conductivity-supporting substrates for the transmission of electrical signals of neural tissue to speed up electrical regeneration and their applications in neural sensing and recording as well as stimulation.

摘要

脑机接口(BCI)允许人类或动物大脑通过神经接口直接与外部环境交互,从而起到监测、保护、改善/恢复、增强和替代的作用。记录脑神经信号等电生理信息在健康监测和疾病诊断中具有重要意义。根据电极位置,可分为非植入式、半植入式和植入式。其中,植入式神经电极可以获得最高质量的电生理信息,因此具有最有前景的应用。然而,由于器件与组织之间的化学-机械不匹配,以及随着时间的推移产生的不良异物反应和性能损失,严重限制了植入式神经电极的发展和应用。鉴于这些挑战,基于导电水凝胶的神经电极最近引起了广泛关注,因为它们具有许多优点,例如与天然组织具有良好的机械匹配性、几乎没有异物反应和最小的信号衰减。本综述主要关注导电水凝胶作为神经组织的生物相容性框架和神经组织电信号传输的导电性支撑基质的最新发展,以加速电再生,并将其应用于神经传感和记录以及刺激。

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