Center of Nature Sciences, Federal University of São Carlos, Rod. Lauri Simões de Barros km 12, 18290-000, Buri, SP, Brazil; Laboratory of Electrochemical Sensors (LabSensE) Department of Chemistry, Federal University of Paraná, 81.531-980, Curitiba, PR, Brazil.
Laboratory for Bioanalytics and Electrochemical Sensing (LBES), Department of Chemistry, University of Manitoba, 144 Dysart Road, Winnipeg, MB, R3T 2N2, Canada.
Bioelectrochemistry. 2024 Jun;157:108632. doi: 10.1016/j.bioelechem.2023.108632. Epub 2023 Dec 24.
Electrochemical biosensors are known for their high sensitivity, selectivity, and low cost. Recently, they have gained significant attention and became particularly important as promising tools for the detection of COVID-19 biomarkers, since they offer a rapid and accurate means of diagnosis. Biorecognition strategies are a crucial component of electrochemical biosensors and determine their specificity and sensitivity based on the interaction of biological molecules, such as antibodies, enzymes, and DNA, with target analytes (e.g., viral particles, proteins and genetic material) to create a measurable signal. Different biorecognition strategies have been developed to enhance the performance of electrochemical biosensors, including direct, competitive, and sandwich binding, alongside nucleic acid hybridization mechanisms and gene editing systems. In this review article, we present the different strategies used in electrochemical biosensors to target SARS-CoV-2 and other COVID-19 biomarkers, as well as explore the advantages and disadvantages of each strategy and highlight recent progress in this field. Additionally, we discuss the challenges associated with developing electrochemical biosensors for clinical COVID-19 diagnosis and their widespread commercialization.
电化学生物传感器以其高灵敏度、选择性和低成本而闻名。最近,它们受到了极大的关注,并成为 COVID-19 生物标志物检测的有前途的工具,因为它们提供了一种快速而准确的诊断方法。生物识别策略是电化学生物传感器的关键组成部分,基于生物分子(如抗体、酶和 DNA)与目标分析物(例如,病毒颗粒、蛋白质和遗传物质)的相互作用来确定其特异性和灵敏度,从而产生可测量的信号。已经开发了不同的生物识别策略来增强电化学生物传感器的性能,包括直接、竞争和夹心结合,以及核酸杂交机制和基因编辑系统。在这篇综述文章中,我们介绍了用于针对 SARS-CoV-2 和其他 COVID-19 生物标志物的电化学生物传感器中使用的不同策略,并探讨了每种策略的优缺点,并强调了该领域的最新进展。此外,我们还讨论了开发用于临床 COVID-19 诊断的电化学生物传感器及其广泛商业化所面临的挑战。