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基于纳米孔的神经递质检测:进展、挑战与未来展望

Nanopore-Based Neurotransmitter Detection: Advances, Challenges, and Future Perspectives.

作者信息

Salehirozveh Mostafa, Dehghani Parisa, Mijakovic Ivan

机构信息

Systems and Synthetic Biology Division, Department of Life Sciences, Chalmers University of Technology, Gothenburg SE-412 96, Sweden.

James Watt School of Engineering, University of Glasgow, Glasgow G12 8QQ, United Kingdom.

出版信息

ACS Nano. 2025 Jul 15;19(27):24404-24424. doi: 10.1021/acsnano.5c04662. Epub 2025 Jun 29.

Abstract

Neurotransmitters play a pivotal role in neural communication, synaptic plasticity, and overall brain function. Disruptions in neurotransmitter homeostasis are closely linked to various neurological and neuropsychiatric disorders, including Alzheimer's disease, Parkinson's disease, epilepsy, schizophrenia, depression, and amyotrophic lateral sclerosis. This review explores the critical role of neurotransmitters in neurological disorders and highlights recent advances in nanopore-based neurotransmitter detection. Solid-state nanopores (SSNs), with their superior mechanical and chemical durability, have emerged as highly sensitive molecular sensors capable of real-time monitoring of neurotransmitter dynamics. We discuss the integration of SSNs into diagnostic frameworks, emphasizing their potential for early disease detection and personalized therapeutic interventions. Additionally, we examine the complementary role of nanopipettes in neurotransmitter detection, focusing on their high spatial resolution and real-time monitoring capabilities. The review also addresses the challenges and future perspectives of nanopore-based sensing technology, including the need for improved sensitivity, stability, and reproducibility. By integrating insights from neuroscience, bioengineering, and nanotechnology, this review aims to provide a comprehensive overview of how nanopore sensing can revolutionize neurotransmitter analysis and contribute to the development of next-generation diagnostic and therapeutic approaches for neurological diseases.

摘要

神经递质在神经通信、突触可塑性和整体脑功能中起着关键作用。神经递质稳态的破坏与各种神经和神经精神疾病密切相关,包括阿尔茨海默病、帕金森病、癫痫、精神分裂症、抑郁症和肌萎缩侧索硬化症。本综述探讨了神经递质在神经疾病中的关键作用,并强调了基于纳米孔的神经递质检测的最新进展。固态纳米孔(SSNs)具有卓越的机械和化学耐久性,已成为能够实时监测神经递质动态的高灵敏度分子传感器。我们讨论了将SSNs整合到诊断框架中的情况,强调了它们在疾病早期检测和个性化治疗干预方面的潜力。此外,我们研究了纳米吸管在神经递质检测中的互补作用,重点关注其高空间分辨率和实时监测能力。本综述还讨论了基于纳米孔的传感技术面临的挑战和未来前景,包括提高灵敏度、稳定性和可重复性的需求。通过整合神经科学、生物工程和纳米技术的见解,本综述旨在全面概述纳米孔传感如何彻底改变神经递质分析,并为神经疾病的下一代诊断和治疗方法的发展做出贡献。

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