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用于 COVID-19 抗体检测的双电化学微流控传感器:天然与疫苗诱导的体液免疫反应。

Duplex Electrochemical Microfluidic Sensor for COVID-19 Antibody Detection: Natural versus Vaccine-Induced Humoral Response.

机构信息

Micro/Bio/Nanofluidics Unit, Okinawa Institute of Science and Technology Graduate University, Onna-son, Okinawa, 904-0495, Japan.

Department of Chemical Science and Technologies, University of Rome "Tor Vergata,", Via della Ricerca Scientifica, 00133, Rome, Italy.

出版信息

Small. 2023 Dec;19(51):e2207731. doi: 10.1002/smll.202207731. Epub 2023 Mar 14.

Abstract

The rapid transmission and resilience of coronavirus disease 2019 (COVID-19) have led to urgent demands in monitoring humoral response for effective vaccine development, thus a multiplex co-detection platform to discriminate infection-induced from vaccine-induced antibodies is needed. Here a duplex electrochemical immunosensor for co-detection of anti-nucleocapsid IgG (N-IgG) and anti-spike IgG (S-IgG) is developed by using a two-working electrode system, via an indirect immunoassay, with antibody quantification obtained by differential pulse voltammetry. The screen-printed electrodes (SPEs) are modified by carbon black and electrodeposited gold nanoflowers for maximized surface areas, enabling the construction of an immunological chain for S-IgG and N-IgG electrochemical detection with enhanced performance. Using an optimized immunoassay protocol, a wide linear range between 30-750 and 20-1000 ng mL , and a limit of detection of 28 and 15 ng mL are achieved to detect N-IgG and S-IgG simultaneously in serum samples. This duplex immunosensor is then integrated in a microfluidic device to obtain significantly reduced detection time (≤ 7 min) while maintaining its analytical performance. The duplex microfluidic immunosensor can be easily expanded into multiplex format to achieve high throughput screening for the sero-surveillance of COVID-19  and other infectious diseases.

摘要

新型冠状病毒病(COVID-19)的快速传播和高传染性导致了对监测体液免疫反应以开发有效疫苗的迫切需求,因此需要一种能够区分感染诱导和疫苗诱导抗体的多重联合检测平台。本研究构建了一种双电化学免疫传感器,通过间接免疫测定法,利用差分脉冲伏安法进行抗体定量,采用双工作电极系统对核衣壳 IgG(N-IgG)和刺突 IgG(S-IgG)进行共检测。通过将碳黑和电沉积金纳米花修饰在丝网印刷电极(SPE)上来最大化表面积,从而构建了用于 S-IgG 和 N-IgG 电化学检测的免疫链,以提高性能。使用优化的免疫分析方案,可在血清样品中同时检测 N-IgG 和 S-IgG,线性范围分别为 30-750 和 20-1000ngmL,检测限分别为 28 和 15ngmL。然后,将该双免疫传感器集成到微流控装置中,在保持分析性能的同时,显著缩短检测时间(≤7min)。该双微流控免疫传感器可以很容易地扩展为多重格式,以实现 COVID-19 和其他传染病的血清监测的高通量筛选。

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