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

Journal of Virology
|December 26, 2008
PubMed

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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