PA Residues in the 2009 H1N1 Pandemic Influenza Virus Enhance Avian Influenza Virus Polymerase Activity in Mammalian Cells
- 15 July 2011
- journal article
- research article
- Published by American Society for Microbiology in Journal of Virology
- Vol. 85 (14), 7020-7028
- https://doi.org/10.1128/jvi.00522-11
Abstract
The 2009 pandemic influenza virus (pH1N1) is a swine-origin reassortant containing human, avian, and swine influenza genes. We have previously shown that the polymerase complex of the pH1N1 strain A/California/04/2009 (Cal) is highly active in mammalian 293T cells, despite the avian origin of both its PA and PB2. In this study, we analyzed the polymerase residues that are responsible for high pH1N1 polymerase activity in the mammalian host. Characterization of polymerase complexes containing various combinations of Cal and avian influenza virus A/chicken/Nanchang/3-120/01 (H3N2) (Nan) by reporter gene assay indicates that Cal PA, but not PB2, is a major contributing factor to high Cal polymerase activity in 293T cells. In particular, Cal PA significantly activates the otherwise inactive Nan polymerase at 37 and 39°C but not at the lower temperature of 34°C. Further analysis using site-directed mutagenesis showed that the Cal PA residues 85I, 186S, and 336M contribute to enhanced activity of the Cal polymerase. Recombinant A/WSN/33 (H1N1) (WSN) viruses containing Nan NP and polymerase (PA, PB1, PB2) genes with individual mutations in PA at residues 85, 186, and 336 produced higher levels of viral protein than the virus containing wild-type (WT) Nan PA. Interestingly, compared to the WT, the virus containing the 85I mutation grew faster in human A549 cells and the 336M mutation most significantly enhanced pathogenicity in a mouse model, among the three PA mutations tested. Our results suggest that multiple mutations in PA, which were rarely present in previous influenza isolates, are involved in mammalian adaptation and pathogenicity of the 2009 pH1N1.Keywords
This publication has 36 references indexed in Scilit:
- Evidence for Avian and Human Host Cell Factors That Affect the Activity of Influenza Virus PolymeraseJournal of Virology, 2010
- Adaptive strategies of the influenza virus polymerase for replication in humansProceedings of the National Academy of Sciences, 2009
- In vitro and in vivo characterization of new swine-origin H1N1 influenza virusesNature, 2009
- Antigenic and Genetic Characteristics of Swine-Origin 2009 A(H1N1) Influenza Viruses Circulating in HumansScience, 2009
- Emergence of a Novel Swine-Origin Influenza A (H1N1) Virus in HumansNew England Journal of Medicine, 2009
- Structural Basis of the Influenza A Virus RNA Polymerase PB2 RNA-binding Domain Containing the Pathogenicity-determinant Lysine 627 ResiduePublished by Elsevier ,2009
- The human H5N1 influenza A virus polymerase complex is active in vitro over a broad range of temperatures, in contrast to the WSN complex, and this property can be attributed to the PB2 subunitJournal of General Virology, 2008
- An Inhibitory Activity in Human Cells Restricts the Function of an Avian-like Influenza Virus PolymeraseCell Host & Microbe, 2008
- Crystal structure of the polymerase PAC–PB1N complex from an avian influenza H5N1 virusNature, 2008
- BioHealthBase: informatics support in the elucidation of influenza virus host–pathogen interactions and virulenceNucleic Acids Research, 2007