Publication

Single-Reaction, Multiplex, Real-Time RT-PCR for the Detection, Quantitation, and Serotyping of Dengue Viruses

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Last modified
  • 02/25/2025
Type of Material
Authors
    Jesse Waggoner, Emory UniversityJanaki Abeynayake, Stanford UniversityMalaya K. Sahoo, Stanford UniversityLionel Gresh, Sustainable Sciences InstituteYolanda Tellez, Ministry of Health, NicaraguaKarla Gonzalez, Ministry of Health, NicaraguaGabriela Ballesteros, Ministry of Health, NicaraguaAnna M. Pierro, St. Orsola-Malpighi University HospitalPaolo Gaibani, St. Orsola-Malpighi University HospitalFrances P. Guo, Stanford UniversityVittorio Sambri, St. Orsola-Malpighi University HospitalAngel Balmaseda, Ministry of Health, NicaraguaKumudu Karunaratne, Lady Ridgeway HospitalEva Harris, University of California, BerkeleyBenjamin A. Pinsky, Stanford University
Language
  • English
Date
  • 2013-04-01
Publisher
  • Public Library of Science
Publication Version
Copyright Statement
  • © 2013 Waggoner et al.
Final Published Version (URL)
Title of Journal or Parent Work
ISSN
  • 1935-2727
Volume
  • 7
Issue
  • 4
Start Page
  • e2116
End Page
  • e2116
Grant/Funding Information
  • This research was supported by the National Institutes of Health grant 1 RC4 TW008781-01.
Supplemental Material (URL)
Abstract
  • Background: Dengue fever results from infection with one or more of four different serotypes of dengue virus (DENV). Despite the widespread nature of this infection, available molecular diagnostics have significant limitations. The aim of this study was to develop a multiplex, real-time, reverse transcriptase-PCR (rRT-PCR) for the detection, quantitation, and serotyping of dengue viruses in a single reaction. Methodology/Principal Findings: An rRT-PCR assay targeting the 5′ untranslated region and capsid gene of the DENV genome was designed using molecular beacons to provide serotype specificity. Using reference DENV strains, the assay was linear from 7.0 to 1.0 log10 cDNA equivalents/μL for each serotype. The lower limit of detection using genomic RNA was 0.3, 13.8, 0.8, and 12.4 cDNA equivalents/μL for serotypes 1-4, respectively, which was 6- to 275-fold more analytically sensitive than a widely used hemi-nested RT-PCR. Using samples from Nicaragua collected within the first five days of illness, the multiplex rRT-PCR was positive in 100% (69/69) of specimens that were positive by the hemi-nested assay, with full serotype agreement. Furthermore, the multiplex rRT-PCR detected DENV RNA in 97.2% (35/36) of specimens from Sri Lanka positive for anti-DENV IgM antibodies compared to just 44.4% (16/36) by the hemi-nested RT-PCR. No amplification was observed in 80 clinical samples sent for routine quantitative hepatitis C virus testing or when genomic RNA from other flaviviruses was tested. Conclusions/Significance: This single-reaction, quantitative, multiplex rRT-PCR for DENV serotyping demonstrates superior analytical and clinical performance, as well as simpler workflow compared to the hemi-nested RT-PCR reference. In particular, this multiplex rRT-PCR detects viral RNA and provides serotype information in specimens collected more than five days after fever onset and from patients who had already developed anti-DENV IgM antibodies. The implementation of this assay in dengue-endemic areas has the potential to improve both dengue diagnosis and epidemiologic surveillance. © 2013 Waggoner et al.
Author Notes
Keywords
Research Categories
  • Biology, Parasitology
  • Health Sciences, Pathology
  • Biology, Microbiology

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