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Co-immunoprecipitation of the Mouse Mx1 Protein with the Influenza A Virus Nucleoprotein
Published on: April 21, 2015
Myxovirus resistance gene A (MxA) expression suppresses influenza A virus replication in alpha interferon-treated
Shannon R Matzinger1, Timothy D Carroll, Joseph C Dutra
1Center for Comparative Medicine, University of California, Davis, Davis, CA, USA.
Abstract:
Alpha interferon (IFN-α) production is triggered when influenza virus RNA is detected by appropriate pattern recognition receptors in the host cell. IFN-α induces the expression of more than 300 interferon-stimulated genes (ISGs), and this blunts influenza virus replication. The human ISG MxA can inhibit influenza A virus replication in mouse cells by interfering with a step in the virus replication cycle after primary transcription of the negative-strand RNA genome to mRNA (J. Pavlovic, O. Haller, and P. Staeheli, J. Virol. 66:2564-2569, 1992). To determine the role of MxA in blocking human influenza A virus replication in primate cells, we manipulated MxA expression in rhesus kidney epithelial cells (LLC-MK(2)) and human lung carcinoma cells (A549). We found that IFN-α treatment prior to influenza virus infection suppressed virus replication and induced the expression of many ISGs, including MxA. However, IFN-α-mediated suppression of virus replication was abolished by small interfering RNA (siRNA) knockdown of MxA expression in IFN-treated cells. In addition, influenza virus replication was suppressed in Vero cells stably transfected with MxA. A strand-specific reverse transcription-PCR (RT-PCR) assay showed that positive-strand influenza virus mRNA and negative-strand genomic RNA (gRNA) accumulated to high levels at 8 h after infection in control Vero cells containing the empty vector. However, in Vero cells stably transfected with MxA positive-strand influenza virus mRNA, complementary positive-strand influenza virus genome RNA (cRNA) and influenza virus gRNA were drastically suppressed. Thus, in primate cells, MxA inhibits human seasonal influenza virus replication at a step prior to primary transcription of gRNA into mRNA. Taken together, these results demonstrate that MxA mediates control of influenza virus replication in primate cells treated with IFN-α.
Insights
Alpha interferon (IFN-α) induces interferon-stimulated genes (ISGs), including MxA, which inhibits influenza virus replication. MxA protein is crucial for blocking viral replication in primate cells, demonstrating its role in innate immunity against influenza.
Area of Science:
- Virology
- Immunology
- Molecular Biology
Background:
- Alpha interferon (IFN-α) production is a host defense mechanism against influenza virus.
- Interferon-stimulated genes (ISGs) play a role in antiviral responses.
- The human ISG MxA protein is known to inhibit influenza A virus replication in mouse cells.
Purpose of the Study:
- To investigate the role of MxA in blocking human influenza A virus replication in primate cells.
- To determine the specific stage of viral replication inhibited by MxA.
Main Methods:
- Manipulating MxA expression in rhesus kidney epithelial cells (LLC-MK(2)) and human lung carcinoma cells (A549).
- Using small interfering RNA (siRNA) to knock down MxA expression.
- Stably transfecting Vero cells with MxA.
- Employing strand-specific reverse transcription-PCR (RT-PCR) to analyze viral RNA accumulation.
Main Results:
- IFN-α treatment suppressed influenza virus replication and induced ISG expression, including MxA.
- siRNA-mediated knockdown of MxA abolished IFN-α's antiviral effect.
- Influenza virus replication was suppressed in MxA-transfected Vero cells.
- MxA inhibited the accumulation of viral mRNA and genomic RNA, indicating an early-stage inhibition.
Conclusions:
- MxA mediates the control of influenza virus replication in primate cells treated with IFN-α.
- MxA inhibits influenza virus replication at a step prior to the primary transcription of genomic RNA into mRNA in primate cells.
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