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Dissecting Innate Immune Signaling in Viral Evasion of Cytokine Production
Published on: March 2, 2014
A Single Point Mutation in the Mumps V Protein Alters Targeting of the Cellular STAT Pathways Resulting in Virus
Tahir Malik1, Laurie Ngo2, Trent Bosma3
1DVP/Office of Vaccines Research and Review, Center for Biologics Evaluation and Research, Food and Drug Administration, Silver Spring, MD 20993, USA. tahir.malik@fda.hhs.gov.
Abstract:
Mumps virus (MuV) is a neurotropic non-segmented, negative-stranded, enveloped RNA virus in the Paramyxovirus family. The 15.4 kb genome encodes seven genes, including the V/P, which encodes, among other proteins, the V protein. The MuV V protein has been shown to target the cellular signal transducer and activator of transcription proteins STAT1 and STAT3 for proteasome-mediated degradation. While MuV V protein targeting of STAT1 is generally accepted as a means of limiting innate antiviral responses, the consequence of V protein targeting of STAT3 is less clear. Further, since the MuV V protein targets both STAT1 and STAT3, specifically investigating viral antagonism of STAT3 targeting is challenging. However, a previous study reported that a single amino acid substitution in the MuV V protein (E95D) inhibits targeting of STAT3, but not STAT1. This provided us with a unique opportunity to examine the specific role of STAT 3 in MuV virulence in an in vivo model. Here, using a clone of a wild type MuV strain expressing the E95D mutant V protein, we present data linking inhibition of STAT3 targeting with the accelerated clearance of the virus and reduced neurovirulence in vivo, suggesting its role in promoting antiviral responses. These data suggest a rational approach to virus attenuation that could be exploited for future vaccine development.
Insights
Mumps virus V protein targets STAT3, hindering antiviral responses. Inhibiting this targeting in a mutant virus accelerated viral clearance and reduced neurovirulence, suggesting a new vaccine development strategy.
Area of Science:
- Virology
- Immunology
- Molecular Biology
Background:
- Mumps virus (MuV), a paramyxovirus, possesses a neurotropic RNA genome.
- The MuV V protein targets host STAT1 and STAT3 proteins for degradation, impacting innate immunity.
- The specific role of STAT3 antagonism by MuV V protein in viral virulence remains unclear.
Purpose of the Study:
- To investigate the specific role of STAT3 antagonism in MuV virulence using a mutant V protein.
- To determine if inhibiting STAT3 targeting affects viral clearance and neurovirulence in vivo.
Main Methods:
- Utilized a wild-type MuV strain engineered to express an E95D mutant V protein, which specifically inhibits STAT3 targeting.
- Assessed viral clearance and neurovirulence in an in vivo model using the engineered MuV strain.
Main Results:
- Inhibition of STAT3 targeting by the MuV E95D V protein mutant led to accelerated viral clearance in vivo.
- The mutant virus exhibited reduced neurovirulence compared to the wild-type strain.
- These findings suggest STAT3 plays a role in promoting antiviral responses against MuV.
Conclusions:
- Targeting STAT3 is a mechanism by which MuV promotes its virulence.
- Inhibiting STAT3 antagonism represents a potential strategy for MuV attenuation and vaccine development.
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