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基于微粒酶促金属化的电子免疫分析

Electronic Immunoassay Using Enzymatic Metallization on Microparticles.

作者信息

Rudge Josiah, Hoyle Madeline, Rafat Neda, Spitale Alexandra, Honan Margaret, Sarkar Aniruddh

机构信息

Wallace H. Coulter Department of Biomedical Engineering, Georgia Institute of Technology, Atlanta, Georgia 30332, United States.

出版信息

ACS Omega. 2023 May 24;8(25):22934-22944. doi: 10.1021/acsomega.3c01939. eCollection 2023 Jun 27.

Abstract

We present here an inexpensive method for generating a sensitive direct electronic readout in bead-based immunoassays without the use of any intermediate optical instrumentation (e.g., lasers, photomultipliers, etc.). Analyte binding to capture antigen-coated beads or microparticles is converted to probe-directed enzymatically amplified silver metallization on microparticle surfaces. Individual microparticles are then rapidly characterized in a high-throughput manner via single-bead multifrequency electrical impedance spectra captured using a simple and inexpensive microfluidic impedance spectrometry system we develop here, where they flow through a three-dimensional (3D)-printed plastic microaperture sandwiched between plated through-hole electrodes on a printed circuit board. Metallized microparticles are found to have unique impedance signatures distinguishing them from unmetallized ones. Coupled with a machine learning algorithm, this enables a simple electronic readout of the silver metallization density on microparticle surfaces and hence the underlying analyte binding. Here, we also demonstrate the use of this scheme to measure the antibody response to the viral nucleocapsid protein in convalescent COVID-19 patient serum.

摘要

我们在此展示了一种低成本方法,可在基于微珠的免疫分析中实现灵敏的直接电子读数,且无需使用任何中间光学仪器(例如激光器、光电倍增管等)。分析物与包被有捕获抗原的微珠或微粒的结合,会转化为微粒表面上由探针引导的酶促放大银金属化过程。然后,通过使用我们在此开发的简单且低成本的微流控阻抗谱系统捕获的单微珠多频电阻抗谱,以高通量方式快速表征单个微粒,在该系统中,微粒流经夹在印刷电路板上的镀通孔电极之间的三维(3D)打印塑料微孔。已发现金属化微粒具有独特的阻抗特征,可将它们与未金属化的微粒区分开来。结合机器学习算法,这能够对微粒表面的银金属化密度进行简单的电子读数,从而实现对潜在分析物结合情况的读数。在此,我们还展示了该方案用于测量康复期 COVID-19 患者血清中针对病毒核衣壳蛋白的抗体反应。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/841b/10308597/9ea6dfadef0b/ao3c01939_0002.jpg

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