» Articles » PMID: 38004704

Development of a Melting-Curve-Based Multiplex Real-Time PCR Assay for the Simultaneous Detection of Viruses Causing Respiratory Infection

Abstract

The prompt and accurate identification of the etiological agents of viral respiratory infections is a critical measure in mitigating outbreaks. In this study, we developed and clinically evaluated a novel melting-curve-based multiplex real-time PCR (M-m-qPCR) assay targeting the RNA-dependent RNA polymerase (RdRp) and nucleocapsid phosphoprotein N of SARS-CoV-2, the Matrix protein 2 of the Influenza A virus, the RdRp domain of the L protein from the Human Respiratory Syncytial Virus, and the polyprotein from Rhinovirus B genes. The analytical performance of the M-m-qPCR underwent assessment using in silico analysis and a panel of reference and clinical strains, encompassing viral, bacterial, and fungal pathogens, exhibiting 100% specificity. Moreover, the assay showed a detection limit of 10 copies per reaction for all targeted pathogens using the positive controls. To validate its applicability, the assay was further tested in simulated nasal fluid spiked with the viruses mentioned above, followed by validation on nasopharyngeal swabs collected from 811 individuals. Among them, 13.4% (109/811) tested positive for SARS-CoV-2, and 1.1% (9/811) tested positive for Influenza A. Notably, these results showed 100% concordance with those obtained using a commercial kit. Therefore, the M-m-qPCR exhibits great potential for the routine screening of these respiratory viral pathogens.

Citing Articles

Development of a Melting Curve-Based Triple Eva Green Real-Time PCR Assay for Simultaneous Detection of Three Shrimp Pathogens.

Dong X, Chen Y, Lou H, Wang G, Zhou C, Wang L Animals (Basel). 2024; 14(4).

PMID: 38396559 PMC: 10886148. DOI: 10.3390/ani14040592.


A Comparative Analysis of Molecular Biological Methods for the Detection of SARS-CoV-2 and Testing the In Vitro Infectivity of the Virus.

Shishkova K, Sirakova B, Shishkov S, Stoilova E, Mladenov H, Sirakov I Microorganisms. 2024; 12(1).

PMID: 38258006 PMC: 10819592. DOI: 10.3390/microorganisms12010180.

References
1.
Principi N, Autore G, Ramundo G, Esposito S . Epidemiology of Respiratory Infections during the COVID-19 Pandemic. Viruses. 2023; 15(5). PMC: 10224029. DOI: 10.3390/v15051160. View

2.
Moreira A, Silva P, do Prado Assuncao L, de Oliveira Santos M, Regina Malveste Ito C, Araujo K . Profile analysis of emerging respiratory virus in children. Eur J Clin Microbiol Infect Dis. 2023; 42(7):873-882. PMC: 10169160. DOI: 10.1007/s10096-023-04615-8. View

3.
Paulino R, Benega M, Santos K, Silva D, Pereira J, Sasaki N . Differential diagnosis of respiratory viruses by using real time RT-PCR methodology. Rev Inst Med Trop Sao Paulo. 2013; 55(6):432. PMC: 4105094. DOI: 10.1590/S0036-46652013000600012. View

4.
Burns B, Moody D, Tu Z, Nakitandwe J, Brock J, Bosler D . Design and Implementation of Improved SARS-CoV-2 Diagnostic Assays To Mitigate the Impact of Genomic Mutations on Target Failure: the Xpert Xpress SARS-CoV-2 Experience. Microbiol Spectr. 2022; 10(6):e0135522. PMC: 9769917. DOI: 10.1128/spectrum.01355-22. View

5.
Lei C, Yang J, Hu J, Sun X . On the Calculation of TCID for Quantitation of Virus Infectivity. Virol Sin. 2020; 36(1):141-144. PMC: 7973348. DOI: 10.1007/s12250-020-00230-5. View