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脑研究进展:神经化学物质的活体/体外电化学检测。

Advancements in Brain Research: The In Vivo/In Vitro Electrochemical Detection of Neurochemicals.

机构信息

Key Laboratory of Theoretical Organic Chemistry and Functional Molecule of Ministry of Education, School of Chemistry and Chemical Engineering, Hunan University of Science and Technology, Xiangtan 411201, China.

Department of Chemistry, Institute for Advanced Studies in Basic Sciences (IASBS), Prof. Sobouti Boulevard, P.O. Box 45195-1159, Zanjan 45137-66731, Iran.

出版信息

Biosensors (Basel). 2024 Feb 26;14(3):125. doi: 10.3390/bios14030125.

Abstract

Neurochemicals, crucial for nervous system function, influence vital bodily processes and their fluctuations are linked to neurodegenerative diseases and mental health conditions. Monitoring these compounds is pivotal, yet the intricate nature of the central nervous system poses challenges. Researchers have devised methods, notably electrochemical sensing with micro-nanoscale electrodes, offering high-resolution monitoring despite low concentrations and rapid changes. Implantable sensors enable precise detection in brain tissues with minimal damage, while microdialysis-coupled platforms allow in vivo sampling and subsequent in vitro analysis, addressing the selectivity issues seen in other methods. While lacking temporal resolution, techniques like HPLC and CE complement electrochemical sensing's selectivity, particularly for structurally similar neurochemicals. This review covers essential neurochemicals and explores miniaturized electrochemical sensors for brain analysis, emphasizing microdialysis integration. It discusses the pros and cons of these techniques, forecasting electrochemical sensing's future in neuroscience research. Overall, this comprehensive review outlines the evolution, strengths, and potential applications of electrochemical sensing in the study of neurochemicals, offering insights into future advancements in the field.

摘要

神经化学物质对神经系统功能至关重要,它们影响着重要的身体过程,其波动与神经退行性疾病和精神健康状况有关。监测这些化合物至关重要,但中枢神经系统的复杂性质带来了挑战。研究人员已经设计了各种方法,特别是使用微纳尺度电极的电化学传感,尽管浓度低且变化迅速,仍能提供高分辨率的监测。植入式传感器可在最小损伤的情况下精确检测脑组织,而微透析耦合平台则允许进行体内采样和随后的体外分析,解决了其他方法中存在的选择性问题。尽管缺乏时间分辨率,但像 HPLC 和 CE 这样的技术可以补充电化学传感的选择性,特别是对于结构相似的神经化学物质。这篇综述涵盖了基本的神经化学物质,并探讨了用于大脑分析的小型化电化学传感器,重点介绍了微透析的整合。它讨论了这些技术的优缺点,并预测了电化学传感在神经科学研究中的未来。总的来说,这篇全面的综述概述了电化学传感在神经化学物质研究中的发展、优势和潜在应用,为该领域的未来发展提供了见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/21f5/10968235/b96de55db61a/biosensors-14-00125-g004.jpg

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