CoVSense: Ultrasensitive Nucleocapsid Antigen Immunosensor for Rapid Clinical Detection of Wildtype and Variant SARS‐CoV‐2

Author:

Salahandish Razieh123,Hyun Jae Eun4,Haghayegh Fatemeh12,Tabrizi Hamed Osouli5,Moossavi Shirin167,Khetani Sultan1,Ayala‐Charca Giancarlo5,Berenger Byron M.89,Niu Yan Dong4,Ghafar‐Zadeh Ebrahim5,Nezhad Amir Sanati1210ORCID

Affiliation:

1. BioMEMS and Bioinspired Microfluidic Laboratory Department of Biomedical Engineering University of Calgary Calgary AB T2N 1N4 Canada

2. Department of Mechanical and Manufacturing Engineering University of Calgary Calgary AB T2N 1N4 Canada

3. Laboratory of Advanced Biotechnologies for Health Assessments (LAB‐HA) Department of Electrical Engineering and Computer Science Lassonde School of Engineering York University Toronto M3J 1P3 Canada

4. Department of Ecosystem and Public Health Faculty of Veterinary Medicine University of Calgary Calgary AB T2N 1N4 Canada

5. Biologically Inspired Sensors and Actuators (BioSA) Department of Electrical Engineering and Computer Science Lassonde School of Engineering York University Toronto M3J 1P3 Canada

6. Department of Physiology and Pharmacology University of Calgary Calgary AB T2N 1N4 Canada

7. International Microbiome Centre Cumming School of Medicine Health Sciences Centre University of Calgary Calgary AB T2N 1N4 Canada

8. Alberta Public Health Laboratory Alberta Precision Laboratories 3330 Hospital Drive Calgary AB T2N 4W4 Canada

9. Department of Pathology and Laboratory Medicine Faculty of Medicine University of Calgary Calgary AB T2N 1N4 Canada

10. Biomedical Engineering Graduate Program University of Calgary Calgary AB T2N 1N4 Canada

Abstract

AbstractThe widespread accessibility of commercial/clinically‐viable electrochemical diagnostic systems for rapid quantification of viral proteins demands translational/preclinical investigations. Here, Covid‐Sense (CoVSense) antigen testing platform; an all‐in‐one electrochemical nano‐immunosensor for sample‐to‐result, self‐validated, and accurate quantification of the severe acute respiratory syndrome coronavirus 2 (SARS‐CoV‐2) nucleocapsid (N)‐proteins in clinical examinations is developed. The platform's sensing strips benefit from a highly‐sensitive, nanostructured surface, created through the incorporation of carboxyl‐functionalized graphene nanosheets, and poly(3,4‐ethylenedioxythiophene) polystyrene sulfonate (PEDOT:PSS) conductive polymers, enhancing the overall conductivity of the system. The nanoengineered surface chemistry allows for compatible direct assembly of bioreceptor molecules. CoVSense offers an inexpensive (<$2 kit) and fast/digital response (<10 min), measured using a customized hand‐held reader (<$25), enabling data‐driven outbreak management. The sensor shows 95% clinical sensitivity and 100% specificity (Ct<25), and overall sensitivity of 91% for combined symptomatic/asymptomatic cohort with wildtype SARS‐CoV‐2 or B.1.1.7 variant (N = 105, nasal/throat samples). The sensor correlates the N‐protein levels to viral load, detecting high Ct values of ≈35, with no sample preparation steps, while outperforming the commercial rapid antigen tests. The current translational technology fills the gap in the workflow of rapid, point‐of‐care, and accurate diagnosis of COVID‐19.

Funder

Canadian Institutes of Health Research

Publisher

Wiley

Subject

General Physics and Astronomy,General Engineering,Biochemistry, Genetics and Molecular Biology (miscellaneous),General Materials Science,General Chemical Engineering,Medicine (miscellaneous)

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