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表面增强拉曼散射纳米传感与神经科学成像。

Surface-Enhanced Raman Scattering Nanosensing and Imaging in Neuroscience.

机构信息

Department of Chemistry, Institut Courtois, Quebec Center for Advanced Materials (QCAM), and Regroupement Québécois sur les Matériaux de Pointe (RQMP), Université de Montréal, C.P. 6128 Succ. Centre-Ville, Montréal, Quebec H3C 3J7, Canada.

Department of Pharmacology and Physiology, Department of Neurosciences, Faculty of Medicine, Université de Montréal, C.P. 6128 Succ. Centre-ville, Montréal, Quebec H3C 3J7, Canada.

出版信息

ACS Nano. 2024 Aug 27;18(34):22620-22647. doi: 10.1021/acsnano.4c05200. Epub 2024 Aug 1.

Abstract

Monitoring neurochemicals and imaging the molecular content of brain tissues , , and is essential for enhancing our understanding of neurochemistry and the causes of brain disorders. This review explores the potential applications of surface-enhanced Raman scattering (SERS) nanosensors in neurosciences, where their adoption could lead to significant progress in the field. These applications encompass detecting neurotransmitters or brain disorders biomarkers in biofluids with SERS nanosensors, and imaging normal and pathological brain tissues with SERS labeling. Specific studies highlighting , and analysis of brain disorders using fit-for-purpose SERS nanosensors will be detailed, with an emphasis on the ability of SERS to detect clinically pertinent levels of neurochemicals. Recent advancements in designing SERS-active nanomaterials, improving experimentation in biofluids, and increasing the usage of machine learning for interpreting SERS spectra will also be discussed. Furthermore, we will address the tagging of tissues presenting pathologies with nanoparticles for SERS imaging, a burgeoning domain of neuroscience that has been demonstrated to be effective in guiding tumor removal during brain surgery. The review also explores future research applications for SERS nanosensors in neuroscience, including monitoring neurochemistry with greater penetration using surface-enhanced spatially offset Raman scattering (SESORS), near-infrared lasers, and 2-photon techniques. The article concludes by discussing the potential of SERS for investigating the effectiveness of therapies for brain disorders and for integrating conventional neurochemistry techniques with SERS sensing.

摘要

监测神经化学物质和对脑组织的分子含量进行成像,对于增进我们对神经化学和脑疾病病因的理解至关重要。本综述探讨了表面增强拉曼散射(SERS)纳米传感器在神经科学中的潜在应用,其应用可能会使该领域取得重大进展。这些应用包括使用 SERS 纳米传感器在生物流体中检测神经递质或脑疾病生物标志物,以及使用 SERS 标记对正常和病理性脑组织进行成像。本综述将详细介绍特定的研究,突出介绍使用适合目的的 SERS 纳米传感器对脑疾病进行分析,重点关注 SERS 检测临床相关神经化学物质水平的能力。还将讨论设计 SERS 活性纳米材料的最新进展,改进生物流体中的实验以及增加使用机器学习对 SERS 光谱进行解释,以提高 SERS 技术的实用性。此外,我们将讨论使用纳米颗粒对患有疾病的组织进行 SERS 成像的问题,这是神经科学中一个新兴领域,已被证明在指导脑外科手术中肿瘤切除方面非常有效。本文还探讨了 SERS 纳米传感器在神经科学中的未来研究应用,包括使用表面增强空间分辨拉曼散射(SESORS)、近红外激光和双光子技术实现更高穿透性的神经化学监测。文章最后讨论了 SERS 用于研究脑疾病治疗效果的潜力,以及将传统神经化学技术与 SERS 传感相结合的潜力。

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