Increased Polymerase Activity of Zoonotic H7N9 Allows Partial Escape from MxA

Philipp P Petric1,2,3, Jacqueline King4, Laura Graf1,2

  • 1Institute of Virology, Medical Center-University of Freiburg, 79104 Freiburg, Germany.

Viruses
|November 11, 2022
PubMed

Insights

Influenza A virus H7N9 adaptation to human interferon-induced myxovirus resistance protein A (MxA) is challenging. The virus acquired a polymerase mutation (PB2 E627K) for partial MxA evasion, but true MxA escape mutations in nucleoprotein remain elusive.

Area of Science:

  • Virology
  • Immunology
  • Genetics

Background:

  • Interferon-induced myxovirus resistance protein A (MxA) restricts zoonotic influenza A virus (IAV) subtypes like H7N9.
  • Human-adapted IAVs possess nucleoprotein (NP) mutations for MxA escape, absent in H7N9 isolates.
  • Susceptibility to H7N9 infection correlates with inactive MxA variants.

Purpose of the Study:

  • To investigate the adaptive potential of H7N9 to escape MxA-mediated restriction.
  • To determine if H7N9 can acquire MxA escape mutations in the viral nucleoprotein (NP).

Main Methods:

  • Infection of MxA transgene-carrying Rag2-knockout mice (MxAtg/-Rag2-/-) with H7N9.
  • Analysis of viral adaptation, including mutations in PB2 and NP.
  • Utilizing reverse genetics to assess the impact of PB2 E627K on MxA evasion in MxAtg/tg mice.

Main Results:

  • H7N9 acquired the mammalian adaptation mutation PB2 E627K in MxAtg/-Rag2-/- mice, but not NP MxA escape mutations.
  • PB2 E627K conferred partial MxA evasion in MxAtg/tg mice.
  • Type I interferon pretreatment reduced viral replication, indicating PB2 E627K is not a true MxA escape mutation.

Conclusions:

  • H7N9 adaptation to escape MxA restriction appears difficult.
  • MxA escape mutations in viral NP may severely attenuate avian influenza viruses.
  • Further research is needed to fully understand H7N9-MxA interactions.