Department of Life Sciences, University of Lincoln, Lincoln LN6 7TS, UK.
Biosensors (Basel). 2023 Mar 22;13(3):411. doi: 10.3390/bios13030411.
One of the emerging technologies in molecular diagnostics of the last two decades is the use of gold nanoparticles (AuNPs) for biosensors. AuNPs can be functionalized with various biomolecules, such as nucleic acids or antibodies, to recognize and bind to specific targets. AuNPs present unique optical properties, such as their distinctive plasmonic band, which confers a bright-red color to AuNP solutions, and their extremely high extinction coefficient, which makes AuNPs detectable by the naked eye even at low concentrations. Ingenious molecular mechanisms triggered by the presence of a target analyte can change the colloidal status of AuNPs from dispersed to aggregated, with a subsequent visible change in color of the solution due to the loss of the characteristic plasmonic band. This review describes how the optical properties of AuNPs have been exploited for the design of plasmonic biosensors that only require the simple mixing of reagents combined with a visual readout and focuses on the molecular mechanisms involved. This review illustrates selected examples of AuNP-based plasmonic biosensors and promising approaches for the point-of-care testing of various analytes, spanning from the viral RNA of SARS-CoV-2 to the molecules that give distinctive flavor and color to aged whisky.
在过去二十年中,分子诊断学中出现的一项新兴技术是使用金纳米粒子(AuNPs)作为生物传感器。AuNPs 可以用各种生物分子(如核酸或抗体)进行功能化,以识别和结合特定的靶标。AuNPs 具有独特的光学特性,例如其独特的等离子体带,这赋予了 AuNP 溶液鲜艳的红色,以及其极高的消光系数,即使在低浓度下也可以用肉眼检测到 AuNPs。目标分析物存在时触发的巧妙分子机制可以使 AuNP 的胶体状态从分散变为聚集,由于特征等离子体带的丢失,溶液的颜色随后会发生可见变化。这篇综述描述了如何利用 AuNPs 的光学性质来设计等离子体生物传感器,这些传感器仅需要简单地混合试剂并进行目视读数,并重点介绍了所涉及的分子机制。这篇综述举例说明了基于 AuNP 的等离子体生物传感器的一些实例,以及用于即时检测各种分析物的有前途的方法,从 SARS-CoV-2 的病毒 RNA 到赋予陈酿威士忌独特风味和颜色的分子。