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Updated: Jun 26, 2026

Co-immunoprecipitation of the Mouse Mx1 Protein with the Influenza A Virus Nucleoprotein
Published on: April 21, 2015
Inhibition of a large double-stranded DNA virus by MxA protein
Christopher L Netherton1, Jennifer Simpson, Otto Haller
1Vaccinology Group, Division of Immunology, Pirbright Laboratory, Institute for Animal Health, Ash Road, Pirbright, Woking, Surrey GU24 0NF, United Kingdom. chris.netherton@bbsrc.ac.uk
Abstract:
Increasing evidence points to the importance of the interferon (IFN) response in determining the host range and virulence of African swine fever virus (ASFV). Infection with attenuated strains of ASFV leads to the upregulation of genes controlled by IFN pathways, including myxovirus resistance (Mx) genes that are potent effectors of the antiviral state. Mx gene products are known to inhibit the replication of many negative-sense single-stranded RNA viruses, as well as double-stranded RNA viruses, positive-sense single-stranded RNA viruses, and the reverse-transcribing DNA virus hepatitis B virus. Here, we provide data that extend the known range of viruses inhibited by Mx to include the large double-stranded DNA viruses. Stably transfected Vero cells expressing human MxA protein did not support ASFV plaque formation, and virus replication in these cells was reduced 100-fold compared with that in control cells. In contrast, ASFV replication in cells expressing MxB protein or a mutant MxA protein was similar to that in control Vero cells. There was a drastic reduction in ASFV late protein synthesis in MxA-expressing cells, correlating with the results of previous work on the effect of IFN on viral replication. Strikingly, the inhibition of ASFV replication was linked to the recruitment of MxA protein to perinuclear viral assembly sites, where the protein surrounded the virus factories. Interactions between ASFV and MxA were similar to those seen between MxA and different RNA viruses, suggesting a common inhibitory mechanism.
Insights
The interferon-induced MxA protein inhibits African swine fever virus (ASFV) replication by binding to viral assembly sites. This finding reveals a new antiviral mechanism for MxA against large DNA viruses.
Area of Science:
- Virology
- Immunology
- Molecular Biology
Background:
- The interferon (IFN) response is crucial for controlling African swine fever virus (ASFV) infection.
- Myxovirus resistance (Mx) proteins are key effectors of the antiviral state induced by IFN.
- Mx proteins are known to inhibit various RNA and DNA viruses.
Purpose of the Study:
- To investigate the role of human MxA protein in restricting ASFV replication.
- To determine if MxA can inhibit ASFV, a large double-stranded DNA virus.
- To elucidate the mechanism by which MxA inhibits ASFV.
Main Methods:
- Utilized stably transfected Vero cells expressing human MxA, MxB, or mutant MxA proteins.
- Assessed ASFV plaque formation and viral replication levels in these cell lines.
- Analyzed ASFV late protein synthesis and MxA localization within infected cells.
Main Results:
- Vero cells expressing MxA significantly reduced ASFV plaque formation and replication (100-fold reduction).
- ASFV replication was not inhibited in cells expressing MxB or a mutant MxA.
- ASFV late protein synthesis was drastically reduced in MxA-expressing cells.
- MxA protein localized to perinuclear viral assembly sites, surrounding ASFV "virus factories".
Conclusions:
- Human MxA protein effectively inhibits ASFV replication, extending the known antiviral spectrum of Mx proteins to large DNA viruses.
- The inhibition mechanism involves MxA recruitment to viral assembly sites, similar to its interaction with RNA viruses.
- This study highlights a conserved antiviral strategy employed by MxA against diverse viral pathogens.
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