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金纳米微球增强的电化学发光适用于高灵敏度和尺寸编码的多重免疫分析。

Gold Microbeads Enabled Proximity Electrochemiluminescence for Highly Sensitive and Size-Encoded Multiplex Immunoassays.

机构信息

Collaborative Innovation Center of Biomedical Functional Materials and Key Laboratory of Biofunctional Materials of Jiangsu Province, School of Chemistry and Materials Science, Nanjing Normal University, Nanjing 210023, P. R. China.

Institute of Analytical Chemistry, Department of Chemistry, Zhejiang University, Hangzhou 310058, P. R. China.

出版信息

J Am Chem Soc. 2023 Jul 26;145(29):16026-16036. doi: 10.1021/jacs.3c04250. Epub 2023 Jul 17.

Abstract

Developing highly sensitive multiplex immunoassays is urgently needed to guide medical research and improve clinical diagnosis. Here, we report the proximity electrochemiluminescence (ECL) generation enabled by gold microbeads (GMBs) for improving the detection sensitivity and multiplexing capacity of ECL immunoassays (ECLIAs). As demonstrated by microscopy and finite element simulation, GMBs can function as spherical ultramicroelectrodes for triggering ECL reactions in solutions. Employing GMBs as solid carriers in the bead-based ECLIA, the electrochemical oxidation of a coreactant can occur at both the GMB surface and the substrate electrode, allowing the coreactant radicals to diffuse only a short distance of ∼100 nm to react with ECL luminophores that are labeled on the GMB surface. The ECL generation via this proximity low oxidation potential (LOP) route results in a 21.7-fold increase in the turnover frequency of ECL generation compared with the non-conductive microbeads that rely exclusively on the conventional LOP route. Moreover, the proximity ECL generation is not restricted by the diffusion distance of short-lived coreactant radicals, which enables the simultaneous determination of multiple acute myocardial infarction biomarkers using size-encoded GMB-based multiplex ECLIAs. This work brings new insight into the understanding of ECL mechanisms and may advance the practical use of multiplex ECLIAs.

摘要

开发高灵敏度的多重免疫分析对于指导医学研究和改善临床诊断非常迫切。在这里,我们报告了金微球(GMBs)引发的临近电化学发光(ECL)产生,以提高 ECL 免疫分析(ECLIA)的检测灵敏度和多重检测能力。通过显微镜和有限元模拟证明,GMBs 可用作触发溶液中 ECL 反应的球形超微电极。在基于珠的 ECLIA 中,将 GMB 用作固体载体,核心反应物的电化学氧化可以在 GMB 表面和基底电极上发生,从而使核心反应物自由基仅扩散约 100nm 的短距离,与标记在 GMB 表面的 ECL 发光体反应。与仅依赖传统低氧化电位(LOP)途径的非导电微球相比,通过这种临近低氧化电位(LOP)途径进行的 ECL 产生导致 ECL 产生的周转率增加了 21.7 倍。此外,临近 ECL 产生不受短寿命核心反应物自由基扩散距离的限制,这使得使用基于大小编码的 GMB 的多重 ECLIAs 能够同时测定多种急性心肌梗死生物标志物。这项工作为理解 ECL 机制提供了新的见解,并可能推进多重 ECLIAs 的实际应用。

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