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Published on: August 29, 2017
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.
Abstract:
The interferon-induced myxovirus resistance protein A (MxA) is a potent restriction factor that prevents zoonotic infection from influenza A virus (IAV) subtype H7N9. Individuals expressing antivirally inactive MxA variants are highly susceptible to these infections. However, human-adapted IAVs have acquired specific mutations in the viral nucleoprotein (NP) that allow escape from MxA-mediated restriction but that have not been observed in MxA-sensitive, human H7N9 isolates. To date, it is unknown whether H7N9 can adapt to escape MxA-mediated restriction. To study this, we infected Rag2-knockout (Rag2-/-) mice with a defect in T and B cell maturation carrying a human MxA transgene (MxAtg/-Rag2-/-). In these mice, the virus could replicate for several weeks facilitating host adaptation. In MxAtg/-Rag2-/-, but not in Rag2-/- mice, the well-described mammalian adaptation E627K in the viral polymerase subunit PB2 was acquired, but no variants with MxA escape mutations in NP were detected. Utilizing reverse genetics, we could show that acquisition of PB2 E627K allowed partial evasion from MxA restriction in MxAtg/tg mice. However, pretreatment with type I interferon decreased viral replication in these mice, suggesting that PB2 E627K is not a true MxA escape mutation. Based on these results, we speculate that it might be difficult for H7N9 to acquire MxA escape mutations in the viral NP. This is consistent with previous findings showing that MxA escape mutations cause severe attenuation of IAVs of avian origin.
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.
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