Department of Chemistry, Illinois State University, Normal, Illinois 61790, United States.
ACS Sens. 2024 Jul 26;9(7):3496-3501. doi: 10.1021/acssensors.4c01052. Epub 2024 Jun 24.
Here, we describe a SERS-based vertical flow assay as a platform technology suitable for point-of-care (POC) diagnostic testing. A capture substrate is constructed from filter paper embedded with spherical gold nanoparticles (AuNPs) and functionalized with an appropriate capture antibody. The capture substrate is loaded into a filtration device and connected to a syringe to rapidly and repeatedly pass the sample through the sensor for efficient antigen binding. The antigen is then labeled with a SERS-active detection probe. We show that only a few Raman reporter molecules, exclusively located adjacent to the plasmonic capture substrate, generate detectible signals. To maximize the signal from underutilized Raman reporter molecules, we employ a secondary signal enhancing probe that undergoes antibody-directed assembly to form plasmonic core-satellites. This facile enhancement step provides a 3.5-fold increase in the signal and a detection limit of 0.23 ng/mL (1.6 pM) for human IgG. This work highlights the potential to rationally design plasmonic architectures using widely available and reproducible spherical AuNPs to achieve large SERS enhancements for highly sensitive POC diagnostics.
在这里,我们描述了一种基于 SERS 的垂直流动分析方法,作为一种适用于即时诊断检测的平台技术。捕获基底由滤纸制成,滤纸中嵌入了球形金纳米粒子(AuNPs),并通过适当的捕获抗体进行功能化。将捕获基底装入过滤装置中,并与注射器相连,以便快速且反复地使样品通过传感器,从而实现有效的抗原结合。然后,将抗原用 SERS 活性检测探针标记。我们发现,只有少数几个拉曼报告分子,仅位于等离子体捕获基底的相邻位置,会产生可检测的信号。为了最大化来自未充分利用的拉曼报告分子的信号,我们采用了一种二级信号增强探针,该探针通过抗体定向组装形成等离子体核-卫星。这种简单的增强步骤使信号提高了 3.5 倍,对人 IgG 的检测限达到了 0.23ng/mL(1.6pM)。这项工作突出了使用广泛可用且可重复的球形 AuNPs 合理设计等离子体结构的潜力,从而实现了高灵敏度即时诊断检测的高 SERS 增强效果。