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生物纳米尺度定制传感:生物化学方面及应用。

Bio-Tailored Sensing at the Nanoscale: Biochemical Aspects and Applications.

机构信息

Department of Life, Health and Environmental Sciences, University of L'Aquila, 67100 L'Aquila, Italy.

出版信息

Sensors (Basel). 2023 Jan 13;23(2):949. doi: 10.3390/s23020949.

Abstract

The demonstration of the first enzyme-based electrode to detect glucose, published in 1967 by S. J. Updike and G. P. Hicks, kicked off huge efforts in building sensors where biomolecules are exploited as native or modified to achieve new or improved sensing performances. In this growing area, bionanotechnology has become prominent in demonstrating how nanomaterials can be tailored into responsive nanostructures using biomolecules and integrated into sensors to detect different analytes, e.g., biomarkers, antibiotics, toxins and organic compounds as well as whole cells and microorganisms with very high sensitivity. Accounting for the natural affinity between biomolecules and almost every type of nanomaterials and taking advantage of well-known crosslinking strategies to stabilize the resulting hybrid nanostructures, biosensors with broad applications and with unprecedented low detection limits have been realized. This review depicts a comprehensive collection of the most recent biochemical and biophysical strategies for building hybrid devices based on bioconjugated nanomaterials and their applications in label-free detection for diagnostics, food and environmental analysis.

摘要

1967 年,S.J.Updike 和 G.P.Hicks 发表了第一篇基于酶的电极检测葡萄糖的论文,这开启了利用生物分子作为天然或修饰物来构建传感器的巨大努力,以实现新的或改进的传感性能。在这个不断发展的领域,生物技术纳米技术已经成为一个突出的领域,展示了如何使用生物分子将纳米材料定制成响应性纳米结构,并将其集成到传感器中,以检测不同的分析物,例如生物标志物、抗生素、毒素和有机化合物以及具有非常高灵敏度的整个细胞和微生物。考虑到生物分子与几乎每种类型的纳米材料之间的天然亲和力,并利用众所周知的交联策略来稳定所得的混合纳米结构,已经实现了具有广泛应用和前所未有的低检测限的生物传感器。本综述描述了基于生物共轭纳米材料构建混合器件的最新生化和生物物理策略的综合集合,以及它们在诊断、食品和环境分析中的无标记检测中的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9601/9866807/19d98622ebc8/sensors-23-00949-g001.jpg

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