4.7 Article

MICaFVi: A Novel Magnetic Immuno-Capture Flow Virometry Nano-Based Diagnostic Tool for Detection of Coronaviruses

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BIOSENSORS-BASEL
卷 13, 期 5, 页码 -

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MDPI
DOI: 10.3390/bios13050553

关键词

nano-based sensor; immuno-capture; flow-cytometry; detection; coronavirus; MERS-CoV; SARS-CoV-2

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COVID-19 pandemic has had a devastating impact on healthcare systems, economies, and education worldwide, causing millions of deaths. Despite the urgent need, there is currently no specific and effective treatment available, and the existing PCR-based tests have limitations. In this study, a novel nano-biosensor diagnostic assay called MICaFVi is introduced, which combines magnetic immuno-capture with flow virometry for sensitive detection of viral particles and pseudoviruses.
COVID-19 has resulted in a pandemic that aggravated the world's healthcare systems, economies, and education, and caused millions of global deaths. Until now, there has been no specific, reliable, and effective treatment to combat the virus and its variants. The current standard tedious PCR-based tests have limitations in terms of sensitivity, specificity, turnaround time, and false negative results. Thus, an alternative, rapid, accurate, and sensitive diagnostic tool that can detect viral particles, without the need for amplification or viral replication, is central to infectious disease surveillance. Here, we report MICaFVi (Magnetic Immuno-Capture Flow Virometry), a novel precise nano-biosensor diagnostic assay for coronavirus detection which combines the MNP-based immuno-capture of viruses for enrichment followed by flow-virometry analysis, enabling the sensitive detection of viral particles and pseudoviruses. As proof of concept, virus-mimicking spike-protein-coated silica particles (VM-SPs) were captured using anti-spike-antibody-conjugated MNPs (AS-MNPs) followed by detection using flow cytometry. Our results showed that MICaFVi can successfully detect viral MERS-CoV/SARS-CoV-2-mimicking particles as well as MERS-CoV pseudoviral particles (MERSpp) with high specificity and sensitivity, where a limit of detection (LOD) of 3.9 mu g/mL (20 pmol/mL) was achieved. The proposed method has great potential for designing practical, specific, and point-of-care testing for rapid and sensitive diagnoses of coronavirus and other infectious diseases.

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