Da Yifan, Luo Shihua, Tian Yang
Shanghai Key Laboratory of Green Chemistry and Chemical Processes, Department of Chemistry, School of Chemistry and Molecular Engineering, East China Normal University, Dongchuan Road 500, Shanghai 200241, China.
Department of Traumatology, Rui Jin Hospital, School of Medicine, Shanghai Jiao Tong University, Shanghai 200025, China.
ACS Appl Mater Interfaces. 2023 Jan 11;15(1):138-157. doi: 10.1021/acsami.2c02740. Epub 2022 Apr 8.
Neurotransmitters, as important chemical small molecules, perform the function of neural signal transmission from cell to cell. Excess concentrations of neurotransmitters are often closely associated with brain diseases, such as Alzheimer's disease, depression, schizophrenia, and Parkinson's disease. On the other hand, the release of neurotransmitters under the induced stimulation indicates the occurrence of reward-related behaviors, including food and drug addiction. Therefore, to understand the physiological and pathological functions of neurotransmitters, especially in complex environments of the living brain, it is urgent to develop effective tools to monitor their dynamics with high sensitivity and specificity. Over the past 30 years, significant advances in electrochemical sensors and optical probes have brought new possibilities for studying neurons and neural circuits by monitoring the changes in neurotransmitters. This Review focuses on the progress in the construction of sensors for in vivo analysis of neurotransmitters in the brain and summarizes current attempts to address key issues in the development of sensors with high selectivity, sensitivity, and stability. Combined with the latest advances in technologies and methods, several strategies for sensor construction are provided for recording chemical signal changes in the complex environment of the brain.
神经递质作为重要的化学小分子,执行着细胞间神经信号传递的功能。神经递质浓度过高常与脑部疾病密切相关,如阿尔茨海默病、抑郁症、精神分裂症和帕金森病。另一方面,在诱导刺激下神经递质的释放表明了与奖励相关行为的发生,包括食物成瘾和药物成瘾。因此,为了理解神经递质的生理和病理功能,尤其是在活脑的复杂环境中,迫切需要开发有效的工具来高灵敏度和高特异性地监测它们的动态变化。在过去30年里,电化学传感器和光学探针取得的重大进展为通过监测神经递质的变化来研究神经元和神经回路带来了新的可能性。本综述重点介绍了用于脑内神经递质体内分析的传感器构建方面的进展,并总结了当前为解决具有高选择性、灵敏度和稳定性的传感器开发中的关键问题所做的尝试。结合技术和方法的最新进展,提供了几种传感器构建策略,用于记录大脑复杂环境中的化学信号变化。