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Co-immunoprecipitation of the Mouse Mx1 Protein with the Influenza A Virus Nucleoprotein
Published on: April 21, 2015
Influenza A viruses escape from MxA restriction at the expense of efficient nuclear vRNP import
Veronika Götz1, Linda Magar1, Dominik Dornfeld1
1Institute of Virology, University Medical Center Freiburg, D-79104 Freiburg, Germany.
Abstract:
To establish a new lineage in the human population, avian influenza A viruses (AIV) must overcome the intracellular restriction factor MxA. Partial escape from MxA restriction can be achieved when the viral nucleoprotein (NP) acquires the critical human-adaptive amino acid residues 100I/V, 283P, and 313Y. Here, we show that introduction of these three residues into the NP of an avian H5N1 virus renders it genetically unstable, resulting in viruses harboring additional single mutations, including G16D. These substitutions restored genetic stability yet again yielded viruses with varying degrees of attenuation in mammalian and avian cells. Additionally, most of the mutant viruses lost the capacity to escape MxA restriction, with the exception of the G16D virus. We show that MxA escape is linked to attenuation by demonstrating that the three substitutions promoting MxA escape disturbed intracellular trafficking of incoming viral ribonucleoprotein complexes (vRNPs), thereby resulting in impaired nuclear import, and that the additional acquired mutations only partially compensate for this import block. We conclude that for adaptation to the human host, AIV must not only overcome MxA restriction but also an associated block in nuclear vRNP import. This inherent difficulty may partially explain the frequent failure of AIV to become pandemic.
Insights
Avian influenza viruses need to overcome MxA restriction and nuclear import blocks to infect humans. Mutations aiding MxA escape can cause instability and attenuation, hindering pandemic potential.
Area of Science:
- Virology
- Molecular Biology
- Immunology
Background:
- Avian influenza A viruses (AIV) face intracellular restriction by MxA in humans.
- Human adaptation requires viral nucleoprotein (NP) to acquire specific residues (100I/V, 283P, 313Y) for MxA escape.
Purpose of the Study:
- To investigate the impact of human-adaptive mutations on AIV genetic stability and MxA escape.
- To understand the link between MxA escape, nuclear import, and viral attenuation.
Main Methods:
- Introduction of three human-adaptive residues into avian H5N1 NP.
- Analysis of viral genetic stability and MxA escape.
- Assessment of viral attenuation in mammalian and avian cells.
- Investigation of viral ribonucleoprotein complex (vRNP) intracellular trafficking and nuclear import.
Main Results:
- Human-adaptive mutations induced genetic instability in AIV, leading to secondary mutations like G16D.
- Most mutants showed reduced MxA escape and varying attenuation, except for G16D.
- MxA escape-promoting substitutions impaired vRNP nuclear import, causing attenuation.
- Secondary mutations only partially compensated for the nuclear import block.
Conclusions:
- AIV adaptation to humans requires overcoming both MxA restriction and impaired nuclear vRNP import.
- This dual restriction presents a significant barrier to AIV human transmission and pandemic emergence.
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