Jin Congran, Wu Ziqian, Molinski John H, Zhou Junhu, Ren Yundong, Zhang John X J
Thayer School of Engineering, Dartmouth College, NH, USA.
Mater Today Bio. 2022 Apr 16;14:100263. doi: 10.1016/j.mtbio.2022.100263. eCollection 2022 Mar.
Advancement of materials along with their fascinating properties play increasingly important role in facilitating the rapid progress in medicine. An excellent example is the recent development of biosensors based on nanomaterials that induce surface plasmon effect for screening biomarkers of various diseases ranging from cancer to Covid-19. The recent global pandemic re-confirmed the trend of real-time diagnosis in public health to be in point-of-care (POC) settings that can screen interested biomarkers at home, or literally anywhere else, at any time. Plasmonic biosensors, thanks to its versatile designs and extraordinary sensitivities, can be scaled into small and portable devices for POC diagnostic tools. In the meantime, efforts are being made to speed up, simplify and lower the cost of the signal readout process including converting the conventional heavy laboratory instruments into lightweight handheld devices. This article reviews the recent progress on the design of plasmonic nanomaterial-based biosensors for biomarker detection with a perspective of POC applications. After briefly introducing the plasmonic detection working mechanisms and devices, the selected highlights in the field focusing on the technology's design including nanomaterials development, structure assembly, and target applications are presented and analyzed. In parallel, discussions on the sensor's current or potential applicability in POC diagnosis are provided. Finally, challenges and opportunities in plasmonic biosensor for biomarker detection, such as the current Covid-19 pandemic and its testing using plasmonic biosensor and incorporation of machine learning algorithms are discussed.
材料及其迷人特性的发展在推动医学快速进步方面发挥着越来越重要的作用。一个很好的例子是基于纳米材料的生物传感器的最新发展,这些纳米材料可诱导表面等离子体效应,用于筛查从癌症到新冠病毒等各种疾病的生物标志物。最近的全球大流行再次证实了公共卫生领域实时诊断的趋势,即朝着即时检测(POC)的方向发展,这种检测可以在家庭或任何其他地方随时筛查感兴趣的生物标志物。等离子体生物传感器由于其多样的设计和非凡的灵敏度,可以缩制成用于POC诊断工具的小型便携式设备。与此同时,人们正在努力加快、简化并降低信号读出过程的成本,包括将传统的大型实验室仪器转变为轻型手持设备。本文从POC应用的角度综述了基于等离子体纳米材料的生物传感器用于生物标志物检测的设计方面的最新进展。在简要介绍了等离子体检测的工作机制和设备之后,介绍并分析了该领域在技术设计方面的选定亮点,包括纳米材料的开发、结构组装和目标应用。同时,还讨论了该传感器在POC诊断中的当前或潜在适用性。最后,讨论了用于生物标志物检测的等离子体生物传感器面临的挑战和机遇,例如当前的新冠疫情及其使用等离子体生物传感器进行检测以及机器学习算法的纳入。