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基于表面增强拉曼散射的免疫分析在等离子体注射器过滤器上,提高了生物标志物的采样和标记效率。

SERS-based immunoassay on a plasmonic syringe filter for improved sampling and labeling efficiency of biomarkers.

机构信息

Department of Chemistry, Illinois State University, Normal, IL 61790, USA.

出版信息

Analyst. 2023 Dec 18;149(1):221-230. doi: 10.1039/d3an01899g.

Abstract

Rapid, sensitive, and quantitative detection of biomarkers is needed for early diagnosis of disease and surveillance of infectious outbreaks. Here, we exploit a plasmonic syringe filter and surface-enhanced Raman spectroscopy (SERS) in the development of a rapid detection system, using human IgG as a model diagnostic biomarker. The novel assay design facilitates multiple passages of the sample and labeling solution through the detection zone enabling us to investigate and maximize sampling efficiency to the capture substrate. The vertical flow immunoassay process in this study involves the utilization of filter paper embedded with gold nanoparticles (AuNPs) to form a plasmonic substrate. Capture antibody (anti-human IgG) is then immobilized onto the prepared plasmonic paper and inserted into a vertical flow device (syringe filter holder). Sample solution is passed through the filter paper and the target antigen (human IgG) is selectively captured by the immobilized antibody to form an antibody-antigen complex. Next, functionalized AuNPs as extrinsic Raman labels (ERLs) are passed through the filter paper to label the captured biomarker molecules forming a layered structure. This sandwiched geometry enhances plasmonic coupling and SERS signal to provide highly sensitive detection of biomolecules. Systematic studies to investigate the impact of multiple infuse/withdraw cycles of the sample and labeling solutions reveal that antigen and ERL binding are maximized with 10 and 20 cycles, respectively. The optimized assay achieves a detection limit of ∼0.2 ng mL for human IgG with a total assay time of less than 5 minutes, meeting the demands for rapid point of care diagnostics. Additionally, the optimized platform was implemented in the quantitative analysis of the SARS-CoV-2 nucleocapsid protein, the typical target in commercial, FDA-approved rapid antigen tests for COVID-19.

摘要

需要快速、灵敏和定量地检测生物标志物,以便对疾病进行早期诊断和传染病爆发进行监测。在这里,我们利用等离子体注射器过滤器和表面增强拉曼光谱(SERS)开发了一种快速检测系统,以人 IgG 作为模型诊断生物标志物。新颖的检测设计便于将样品和标记溶液多次通过检测区,使我们能够研究并最大限度地提高对捕获基底的采样效率。本研究中的垂直流免疫测定过程涉及利用嵌入金纳米粒子(AuNPs)的滤纸形成等离子体基底。然后将捕获抗体(抗人 IgG)固定在制备好的等离子体纸上,并插入垂直流装置(注射器过滤器支架)中。将样品溶液通过滤纸,目标抗原(人 IgG)被固定化抗体选择性捕获,形成抗体-抗原复合物。接下来,功能化的 AuNPs 作为外源性拉曼标记物(ERLs)通过滤纸通过,标记捕获的生物标志物分子,形成层状结构。这种夹心结构增强了等离子体耦合和 SERS 信号,提供了对生物分子的高灵敏度检测。系统研究了样品和标记溶液多次注入/抽出循环的影响,结果表明,抗原和 ERL 的结合在 10 和 20 个循环时达到最大值。优化后的测定法实现了对人 IgG 的检测限约为 0.2ng mL,总测定时间不到 5 分钟,满足了即时护理诊断的快速需求。此外,优化后的平台用于定量分析 SARS-CoV-2 核衣壳蛋白,这是 COVID-19 商业上 FDA 批准的快速抗原检测的典型靶标。

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