Department of Nursing and Physiotherapy, Universidad de León, Campus de Vegazana, s/n, 24071 León, Spain.
Institute of Food Science and Technology (ICTAL), La Serna 58, 24007 León, Spain.
Biosensors (Basel). 2021 Apr 15;11(4):123. doi: 10.3390/bios11040123.
The rapid spread of epidemic diseases (i.e., coronavirus disease 2019 (COVID-19)) has contributed to focus global attention on the diagnosis of medical conditions by ultrasensitive detection methods. To overcome this challenge, increasing efforts have been driven towards the development of single-molecule analytical platforms. In this context, recent progress in plasmonic biosensing has enabled the design of novel detection strategies capable of targeting individual molecules while evaluating their binding affinity and biological interactions. This review compiles the latest advances in plasmonic technologies for monitoring clinically relevant biomarkers at the single-molecule level. Functional applications are discussed according to plasmonic sensing modes based on either nanoapertures or nanoparticle approaches. A special focus was devoted to new analytical developments involving a wide variety of analytes (e.g., proteins, living cells, nucleic acids and viruses). The utility of plasmonic-based single-molecule analysis for personalized medicine, considering technological limitations and future prospects, is also overviewed.
传染病(即 2019 年冠状病毒病(COVID-19))的迅速传播引起了全球对通过超灵敏检测方法诊断医学病症的关注。为了应对这一挑战,人们越来越致力于开发单分子分析平台。在这方面,等离子体生物传感的最新进展使人们能够设计出新型的检测策略,这些策略能够靶向单个分子,同时评估它们的结合亲和力和生物相互作用。本综述汇集了等离子体技术在单分子水平上监测与临床相关的生物标志物方面的最新进展。根据基于纳米孔或纳米颗粒方法的等离子体传感模式讨论了功能应用。特别关注了涉及各种分析物(例如蛋白质、活细胞、核酸和病毒)的新分析进展。还考虑了技术限制和未来前景,综述了基于等离子体的单分子分析在个性化医疗中的应用。