School of Engineering, University of Guelph, Guelph, Ontario, Canada.
Biotechnol J. 2024 Jan;19(1):e2300519. doi: 10.1002/biot.202300519. Epub 2023 Dec 5.
Metal enhanced fluorescence (MEF) is a phenomenon that increases fluorescence signal through placement of metal near a fluorophore. For biosensing applications, MEF-based biosensors are becoming increasingly popular as it enables highly sensitive detection of molecules, important for early diagnosis. The structure and size of the metal influence the optical properties through enhancing the fluorophore photostability and light absorption and emission. In recent years, many metal nanostructures have been fabricated and examined for their effectiveness in developing MEF-based biosensors. This review focuses on the latest applications of three-dimensional nanostructures and nano-patterned surfaces used to develop and improve fluorescence sensing via MEF. Current reviews mostly discussed the applications of two dimensional MEF and metal-nanoparticles-based MEF with a focus on fabrication of nanoparticles and metal substrates. In this article, we focused more on the effect of the metal nanostructure and size on MEF and then provided an in-depth summary of the performance of the state-of-the-art three dimensional MEF-based biosensors. While more work is needed to demonstrate applicability for complex samples, it is evident that with the use of metal nanoparticles and three dimensional nano-patterns, the assay sensitivity of fluorescence-based detection can be greatly improved, making it suitable for use in early disease diagnostics.
金属增强荧光(MEF)是一种通过将金属放置在荧光团附近来增强荧光信号的现象。对于生物传感应用,基于 MEF 的生物传感器越来越受欢迎,因为它能够实现对分子的高灵敏度检测,这对于早期诊断很重要。金属的结构和尺寸通过增强荧光团的光稳定性以及光的吸收和发射来影响光学性质。近年来,已经制备了许多金属纳米结构,并对其在开发基于 MEF 的生物传感器方面的有效性进行了研究。本综述重点介绍了用于通过 MEF 开发和改善荧光传感的三维纳米结构和纳米图案表面的最新应用。目前的综述主要讨论了二维 MEF 和基于金属纳米粒子的 MEF 的应用,重点是纳米粒子和金属衬底的制备。在本文中,我们更关注金属纳米结构和尺寸对 MEF 的影响,然后深入总结了最先进的基于三维 MEF 的生物传感器的性能。虽然还需要更多的工作来证明其对复杂样品的适用性,但显然,通过使用金属纳米粒子和三维纳米图案,可以大大提高基于荧光的检测的分析灵敏度,使其适用于早期疾病诊断。