Label-free impedimetric immunosensor for point-of-care detection of COVID-19 antibodies

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作者
Lian C. T. Shoute
Gaser N. Abdelrasoul
Yuhao Ma
Pedro A. Duarte
Cole Edwards
Ran Zhuo
Jie Zeng
Yiwei Feng
Carmen L. Charlton
Jamil N. Kanji
Shawn Babiuk
Jie Chen
机构
[1] University of Alberta,Department of Electrical and Computer Engineering
[2] Alberta Precision Laboratories,Public Health Laboratory
[3] University of Alberta,Department of Laboratory Medicine and Pathology
[4] University of Alberta,Li Ka Shing Institute for Virology
[5] University of Calgary,Division of Infectious Diseases, Department of Medicine, Cumming School of Medicine
[6] University of Calgary,Department of Pathology & Laboratory Medicine, Cumming School of Medicine
[7] Canadian Food Inspection Agency,National Centre for Foreign Animal Disease
[8] University of Manitoba,Department of Immunology
[9] University of Alberta,Department of Biomedical Engineering
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摘要
The COVID-19 pandemic has posed enormous challenges for existing diagnostic tools to detect and monitor pathogens. Therefore, there is a need to develop point-of-care (POC) devices to perform fast, accurate, and accessible diagnostic methods to detect infections and monitor immune responses. Devices most amenable to miniaturization and suitable for POC applications are biosensors based on electrochemical detection. We have developed an impedimetric immunosensor based on an interdigitated microelectrode array (IMA) to detect and monitor SARS-CoV-2 antibodies in human serum. Conjugation chemistry was applied to functionalize and covalently immobilize the spike protein (S-protein) of SARS-CoV-2 on the surface of the IMA to serve as the recognition layer and specifically bind anti-spike antibodies. Antibodies bound to the S-proteins in the recognition layer result in an increase in capacitance and a consequent change in the impedance of the system. The impedimetric immunosensor is label-free and uses non-Faradaic impedance with low nonperturbing AC voltage for detection. The sensitivity of a capacitive immunosensor can be enhanced by simply tuning the ionic strength of the sample solution. The device exhibits an LOD of 0.4 BAU/ml, as determined from the standard curve using WHO IS for anti-SARS-CoV-2 immunoglobulins; this LOD is similar to the corresponding LODs reported for all validated and established commercial assays, which range from 0.41 to 4.81 BAU/ml. The proof-of-concept biosensor has been demonstrated to detect anti-spike antibodies in sera from patients infected with COVID-19 within 1 h.
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