Konoplev Georgii, Agafonova Darina, Bakhchova Liubov, Mukhin Nikolay, Kurachkina Marharyta, Schmidt Marc-Peter, Verlov Nikolay, Sidorov Alexander, Oseev Aleksandr, Stepanova Oksana, Kozyrev Andrey, Dmitriev Alexander, Hirsch Soeren
Faculty of Electronics, Saint Petersburg Electrotechnical University "LETI", 197376 Saint Petersburg, Russia.
Institute for Automation Technology, Otto-von-Guericke-University Magdeburg, 39106 Magdeburg, Germany.
Biomedicines. 2022 Jan 18;10(2):207. doi: 10.3390/biomedicines10020207.
Proteins in biological fluids (blood, urine, cerebrospinal fluid) are important biomarkers of various pathological conditions. Protein biomarkers detection and quantification have been proven to be an indispensable diagnostic tool in clinical practice. There is a growing tendency towards using portable diagnostic biosensor devices for point-of-care (POC) analysis based on microfluidic technology as an alternative to conventional laboratory protein assays. In contrast to universally accepted analytical methods involving protein labeling, label-free approaches often allow the development of biosensors with minimal requirements for sample preparation by omitting expensive labelling reagents. The aim of the present work is to review the variety of physical label-free techniques of protein detection and characterization which are suitable for application in micro-fluidic structures and analyze the technological and material aspects of label-free biosensors that implement these methods. The most widely used optical and impedance spectroscopy techniques: absorption, fluorescence, surface plasmon resonance, Raman scattering, and interferometry, as well as new trends in photonics are reviewed. The challenges of materials selection, surfaces tailoring in microfluidic structures, and enhancement of the sensitivity and miniaturization of biosensor systems are discussed. The review provides an overview for current advances and future trends in microfluidics integrated technologies for label-free protein biomarkers detection and discusses existing challenges and a way towards novel solutions.
生物流体(血液、尿液、脑脊液)中的蛋白质是各种病理状况的重要生物标志物。蛋白质生物标志物的检测和定量已被证明是临床实践中不可或缺的诊断工具。基于微流控技术的便携式诊断生物传感器设备用于即时检测(POC)分析,作为传统实验室蛋白质检测方法的替代方案,这种趋势正在不断增长。与普遍接受的涉及蛋白质标记的分析方法相比,无标记方法通常通过省略昂贵的标记试剂,允许开发对样品制备要求最低的生物传感器。本工作的目的是综述适用于微流体结构应用的各种蛋白质检测和表征的物理无标记技术,并分析实施这些方法的无标记生物传感器的技术和材料方面。综述了最广泛使用的光学和阻抗光谱技术:吸收、荧光、表面等离子体共振、拉曼散射和干涉测量,以及光子学的新趋势。讨论了材料选择、微流体结构中的表面定制以及生物传感器系统灵敏度提高和小型化方面的挑战。该综述概述了用于无标记蛋白质生物标志物检测的微流体集成技术的当前进展和未来趋势,并讨论了现有挑战以及实现新解决方案的途径。