Yin Yongyue, Zeng Hui, Wang Hui-Ming, Zhang Meining
Department of Chemistry, Renmin University of China, Beijing 100872, P. R. China.
Langmuir. 2023 Feb 7;39(5):1719-1729. doi: 10.1021/acs.langmuir.2c03267. Epub 2023 Jan 23.
In vivo sensing based on implantable microelectrodes has been widely used to monitor neurochemicals due to its high spatial and temporal resolution and engineering interface designability, which has become a powerful drive to decode the mysteries of degenerative diseases and regulate neural activity. Over the past few decades, with the development of a variety of advanced materials and technologies, encouraging progress has been made in quantifying various neurochemical transients. However, because of the complex chemical atmosphere including thousands of small and large biomolecules and the inherent low mechanical property of brain tissue, the design of a compatible microelectrode for the in vivo electrochemical tracking of neurochemicals with high selectivity and stability still faces great challenges. This Perspective presents a brief account of recent representative progress in the rational regulation of the microelectrode interface to resolve the questions of selectivity and sensitive decrease resulting from antiprotein adsorption, and how to decrease the mechanical mismatch of an implanted electrode with that of brain tissue. Possible future research directions on further addressing the above key issues and a more biocompatible microelectrode for in vivo long-time electrochemical analysis are also discussed.
基于植入式微电极的体内传感技术因其高空间和时间分辨率以及工程界面可设计性,已被广泛用于监测神经化学物质,这已成为解码退行性疾病奥秘和调节神经活动的强大驱动力。在过去几十年中,随着各种先进材料和技术的发展,在量化各种神经化学瞬变方面取得了令人鼓舞的进展。然而,由于包括数千种大小生物分子的复杂化学环境以及脑组织固有的低机械性能,设计一种用于体内神经化学物质电化学跟踪的具有高选择性和稳定性的兼容微电极仍然面临巨大挑战。本观点简要介绍了在合理调控微电极界面以解决因抗蛋白质吸附导致的选择性和灵敏度降低问题,以及如何减少植入电极与脑组织之间的机械不匹配方面的近期代表性进展。还讨论了未来进一步解决上述关键问题以及开发更具生物相容性的用于体内长时间电化学分析的微电极的可能研究方向。