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Co-immunoprecipitation of the Mouse Mx1 Protein with the Influenza A Virus Nucleoprotein
Published on: April 21, 2015
The viral nucleoprotein determines Mx sensitivity of influenza A viruses
Petra Zimmermann1, Benjamin Mänz, Otto Haller
1Department of Virology, Institute for Medical Microbiology and Hygiene, University of Freiburg, Freiburg, Germany. georg.kochs@uniklinik-freiburg.de
Abstract:
Host restriction factors play a crucial role in preventing trans-species transmission of viral pathogens. In mammals, the interferon-induced Mx GTPases are powerful antiviral proteins restricting orthomyxoviruses. Hence, the human MxA GTPase may function as an efficient barrier against zoonotic introduction of influenza A viruses into the human population. Successful viruses are likely to acquire adaptive mutations allowing them to evade MxA restriction. We compared the 2009 pandemic influenza A virus [strain A/Hamburg/4/09 (pH1N1)] with a highly pathogenic avian H5N1 isolate [strain A/Thailand/1(KAN-1)/04] for their relative sensitivities to human MxA and murine Mx1. The H5N1 virus was highly sensitive to both Mx GTPases, whereas the pandemic H1N1 virus was almost insensitive. Substitutions of the viral polymerase subunits or the nucleoprotein (NP) in a polymerase reconstitution assay demonstrated that NP was the main determinant of Mx sensitivity. The NP of H5N1 conferred Mx sensitivity to the pandemic H1N1 polymerase, whereas the NP of pandemic H1N1 rendered the H5N1 polymerase insensitive. Reassortant viruses which expressed the NP of H5N1 in a pH1N1 genetic background and vice versa were generated. Congenic Mx1-positive mice survived intranasal infection with these reassortants if the challenge virus contained the avian NP. In contrast, they succumbed to infection if the NP of pH1N1 origin was present. These findings clearly indicate that the origin of NP determines Mx sensitivity and that human influenza viruses acquired adaptive mutations to evade MxA restriction. This also explains our previous observations that human and avian influenza A viruses differ in their sensitivities to Mx.
Insights
Human MxA GTPase restricts influenza viruses, but pandemic strains evolved to evade it. Nucleoprotein (NP) origin determines viral sensitivity to Mx proteins, explaining zoonotic barriers and viral adaptation.
Area of Science:
- Virology
- Immunology
- Molecular Biology
Background:
- Host restriction factors, like interferon-induced Mx GTPases, are vital in preventing viral pathogen transmission between species.
- Human MxA GTPase acts as a barrier against zoonotic influenza A virus (IAV) introduction.
- Viruses that successfully cross species barriers often develop mutations to overcome host restriction factors.
Purpose of the Study:
- To compare the sensitivity of the 2009 pandemic influenza A virus (pH1N1) and a highly pathogenic avian H5N1 isolate to human MxA and murine Mx1.
- To identify the viral component responsible for differential Mx sensitivity.
Main Methods:
- Comparative sensitivity assays using human MxA and murine Mx1 against pH1N1 and H5N1.
- Polymerase reconstitution assays involving substitutions of polymerase subunits and nucleoprotein (NP).
- Generation of reassortant viruses with swapped NPs and subsequent infection of Mx1-positive mice.
Main Results:
- H5N1 was highly sensitive to both MxA and Mx1, while pH1N1 was largely insensitive.
- Viral NP was identified as the primary determinant of Mx sensitivity.
- Avian NP conferred Mx sensitivity to pH1N1 polymerase, and pandemic NP conferred insensitivity to H5N1 polymerase.
- Mice infected with reassortant viruses survived if the virus contained avian NP but succumbed if it contained pH1N1 NP.
Conclusions:
- The origin of the viral NP dictates sensitivity to Mx GTPases.
- Human influenza viruses have acquired adaptive mutations in NP to evade MxA restriction, facilitating human adaptation.
- Differential Mx sensitivity explains observed variations between human and avian influenza A viruses.
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