Abstract
The recently raised awareness of the threat of a new influenza pandemic has stimulated interest in the detection of influenza A viruses in human as well as animal secretions. Virus isolation alone is unsatisfactory for this purpose because of its inherent limited sensitivity and the lack of host cells that are universally permissive to all influenza A viruses. Previously described PCR methods are more sensitive but are targeted predominantly at virus strains currently circulating in humans, since the sequences of the primer sets display considerable numbers of mismatches to the sequences of animal influenza A viruses. Therefore, a new set of primers, based on highly conserved regions of the matrix gene, was designed for single-tube reverse transcription-PCR for the detection of influenza A viruses from multiple species. This PCR proved to be fully reactive with a panel of 25 genetically diverse virus isolates that were obtained from birds, humans, pigs, horses, and seals and that included all known subtypes of influenza A virus. It was not reactive with the 11 other RNA viruses tested. Comparative tests with throat swab samples from humans and fecal and cloacal swab samples from birds confirmed that the new PCR is faster and up to 100-fold more sensitive than classical virus isolation procedures.
MeSH Terms
Animals
Bird Diseases/virology
Birds/virology
Conserved Sequence/genetics
DNA Primers/genetics
Humans
Influenza A virus/genetics,isolation & purification
Influenza, Human/diagnosis,virology
Pharynx/virology
Polymerase Chain Reaction/methods
Sensitivity and Specificity
Viral Matrix Proteins/genetics
Chemicals
DNA Primers
Viral Matrix Proteins
Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Fouchier R A
National Influenza Center and Department of Virology, Erasmus University, Rotterdam, The Netherlands. fouchier@viro.fgg.eur.nl
Bestebroer T M
Herfst S
Van Der Kemp L
Rimmelzwaan G F
Osterhaus A D
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