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基于 ZnO 的 SERS 生物传感器的综合评述及其在检测神经退行性疾病生物标志物中的应用潜力。

A Review on Integrated ZnO-Based SERS Biosensors and Their Potential in Detecting Biomarkers of Neurodegenerative Diseases.

机构信息

Department of Molecular and Biomolecular Physics, National Institute for Research and Development of Isotopic and Molecular Technologies, 67-103 Donat, 400293 Cluj-Napoca, Romania.

Department of Molecular Biology and Biotechnology, Faculty of Biology and Geology, Babeș-Bolyai University, 5-7 Clinicilor, 400006 Cluj-Napoca, Romania.

出版信息

Biosensors (Basel). 2023 Apr 25;13(5):499. doi: 10.3390/bios13050499.

Abstract

Surface-enhanced Raman spectroscopy (SERS) applications in clinical diagnosis and spectral pathology are increasing due to the potential of the technique to bio-barcode incipient and differential diseases via real-time monitoring of biomarkers in fluids and in real-time via biomolecular fingerprinting. Additionally, the rapid advancements in micro/nanotechnology have a visible influence in all aspects of science and life. The miniaturization and enhanced properties of materials at the micro/nanoscale transcended the confines of the laboratory and are revolutionizing domains such as electronics, optics, medicine, and environmental science. The societal and technological impact of SERS biosensing by using semiconductor-based nanostructured smart substrates will be huge once minor technical pitfalls are solved. Herein, challenges in clinical routine testing are addressed in order to understand the context of how SERS can perform in real, in vivo sampling and bioassays for early neurodegenerative disease (ND) diagnosis. The main interest in translating SERS into clinical practice is reinforced by the practical advantages: portability of the designed setups, versatility in using nanomaterials of various matter and costs, readiness, and reliability. As we will present in this review, in the frame of technology readiness levels (TRL), the current maturity reached by semiconductor-based SERS biosensors, in particular that of zinc oxide (ZnO)-based hybrid SERS substrates, is situated at the development level TRL 6 (out of 9 levels). Three-dimensional, multilayered SERS substrates that provide additional plasmonic hot spots in the z-axis are of key importance in designing highly performant SERS biosensors for the detection of ND biomarkers.

摘要

表面增强拉曼光谱(SERS)在临床诊断和光谱病理学中的应用正在增加,因为该技术具有通过实时监测流体中的生物标志物以及通过生物分子指纹图谱实时监测生物标志物来对初期和差异化疾病进行生物条形码的潜力。此外,微纳技术的快速发展对科学和生活的各个方面都产生了明显的影响。微纳尺度下材料的小型化和增强性能超越了实验室的限制,正在彻底改变电子、光学、医学和环境科学等领域。一旦解决了一些小的技术难题,利用基于半导体的纳米结构智能衬底进行 SERS 生物传感的社会和技术影响将是巨大的。在此,为了了解 SERS 如何在真实的体内采样和生物测定中进行早期神经退行性疾病(ND)诊断,解决了临床常规测试中的挑战。将 SERS 转化为临床实践的主要兴趣在于其实用优势:设计的设备便携性、使用各种物质和成本的纳米材料的多功能性、就绪性和可靠性。正如我们将在这篇综述中展示的,在技术准备水平(TRL)方面,基于半导体的 SERS 生物传感器当前达到的成熟度,特别是基于氧化锌(ZnO)的混合 SERS 衬底,位于开发水平 TRL 6(9 个水平)。提供 z 轴上额外等离子体热点的三维多层 SERS 衬底对于设计用于检测 ND 生物标志物的高性能 SERS 生物传感器至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9e82/10216625/591267e02964/biosensors-13-00499-g004.jpg

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