Lee Won-Il, Subramanian Ashwanth, Mueller Steffen, Levon Kalle, Nam Chang-Yong, Rafailovich Miriam H
Department of Materials Science and Chemical Engineering, Stony Brook University, Stony Brook, New York 11794, United States.
Codagenix Inc., Farmingdale, New York 11735, United States.
ACS Appl Nano Mater. 2022 Apr 22;5(4):5045-5055. doi: 10.1021/acsanm.2c00068. Epub 2022 Apr 12.
Rapid, yet accurate and sensitive testing has been shown to be critical in the control of spreading pandemic diseases such as COVID-19. Current methods which are highly sensitive and can differentiate different strains are slow and cannot be conveniently applied at the point of care. Rapid tests, meanwhile, require a high titer and are not sufficiently sensitive to discriminate between strains. Here, we report a rapid and facile potentiometric detection method based on nanoscale, three-dimensional molecular imprints of analytes on a self-assembled monolayer (SAM), which can deliver analyte-specific detection of both whole virions and isolated proteins in microliter amounts of bodily fluids within minutes. The detection substrate with nanoscale inverse surface patterns of analytes formed by a SAM identifies a target analyte by recognizing its surface nano- and molecular structures, which can be monitored by temporal measurement of the change in substrate open-circuit potential. The sensor unambiguously detected and differentiated H1N1 and H3N2 influenza A virions as well as the spike proteins of severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) and Middle-East respiratory syndrome (MERS) coronavirus in human saliva with limits of detection reaching 200 PFU/mL and 100 pg/mL for the viral particles and spike proteins, respectively. The demonstrated speed and specificity of detection, combined with a low required sample volume, high sensitivity, ease of potentiometric measurement, and simple sample collection and preparation, suggest that the technique can be used as a highly effective point-of-care diagnostic platform for a fast, accurate, and specific detection of various viral pathogens and their variants.
快速、准确且灵敏的检测已被证明在控制如新冠病毒等大流行疾病的传播中至关重要。目前高度灵敏且能区分不同毒株的方法速度缓慢,无法在护理点方便地应用。与此同时,快速检测需要高滴度,且对毒株的区分不够灵敏。在此,我们报告一种基于自组装单层膜(SAM)上分析物的纳米级三维分子印迹的快速简便的电位检测方法,该方法能在数分钟内对微升量体液中的完整病毒粒子和分离蛋白进行分析物特异性检测。由SAM形成的具有分析物纳米级反表面图案的检测底物通过识别其表面的纳米和分子结构来识别目标分析物,这可以通过对底物开路电位变化的时间测量来监测。该传感器明确检测并区分了甲型H1N1和H3N2流感病毒粒子以及严重急性呼吸综合征冠状病毒2(SARS-CoV-2)和中东呼吸综合征(MERS)冠状病毒的刺突蛋白,对人唾液中病毒粒子和刺突蛋白的检测限分别达到200 PFU/mL和100 pg/mL。所展示的检测速度和特异性,结合所需样品体积小、灵敏度高、电位测量简便以及样品采集和制备简单等特点,表明该技术可作为一种高效的护理点诊断平台,用于快速、准确且特异性地检测各种病毒病原体及其变体。