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Published on: May 5, 2014
Mono-ADP-ribosylation by PARP10 inhibits Chikungunya virus nsP2 proteolytic activity and viral replication
Sarah Krieg1, Fabian Pott2,3, Laura Potthoff1
1Institute of Biochemistry and Molecular Biology, Faculty of Medicine, RWTH Aachen University, Pauwelsstraße 30, 52074, Aachen, Germany.
Abstract:
Replication of viruses requires interaction with host cell factors and repression of innate immunity. Recent findings suggest that a subset of intracellular mono-ADP-ribosylating PARPs, which are induced by type I interferons, possess antiviral activity. Moreover, certain RNA viruses, including Chikungunya virus (CHIKV), encode mono-ADP-ribosylhydrolases. Together, this suggests a role for mono-ADP-ribosylation (MARylation) in host-virus conflicts, but the relevant substrates have not been identified. We addressed which PARP restricts CHIKV replication and identified PARP10 and PARP12. For PARP10, this restriction was dependent on catalytic activity. Replication requires processing of the non-structural polyprotein nsP1-4 by the protease located in nsP2 and the assembly of the four individual nsP1-nsP4 into a functional replication complex. PARP10 and PARP12 inhibited the production of nsP3, indicating a defect in polyprotein processing. The nsP3 protein encodes a macrodomain with de-MARylation activity, which is essential for replication. In support for MARylation affecting polyprotein processing, de-MARylation defective CHIKV replicons revealed reduced production of nsP2 and nsP3. We hypothesized that MARylation regulates the proteolytic function of nsP2. Indeed, we found that nsP2 is MARylated by PARP10 and, as a consequence, its proteolytic activity was inhibited. NsP3-dependent de-MARylation reactivated the protease. Hence, we propose that PARP10-mediated MARylation prevents polyprotein processing and consequently virus replication. Together, our findings provide a mechanistic explanation for the role of the viral MAR hydrolase in CHIKV replication.
Insights
Poly (ADP-ribose) polymerase 10 (PARP10) restricts Chikungunya virus (CHIKV) by modifying its nsP2 protease. This modification prevents viral polyprotein processing, inhibiting CHIKV replication and offering a new target for antiviral therapies.
Area of Science:
- Virology
- Molecular Biology
- Immunology
Background:
- Viral replication relies on host factors and evading immune responses.
- Type I interferons induce antiviral mono-ADP-ribosylating PARPs.
- Chikungunya virus (CHIKV) encodes a mono-ADP-ribohydrolase, suggesting a role for ADP-ribosylation in host-virus interactions.
Purpose of the Study:
- To identify the specific PARP enzyme restricting CHIKV replication.
- To elucidate the mechanism by which PARP affects CHIKV replication.
- To understand the interplay between viral de-MARylation and host PARylation.
Main Methods:
- Virus replication assays in the presence of identified PARPs.
- Analysis of viral polyprotein processing and protein production.
- Biochemical assays to assess protease activity and MARylation status of viral proteins.
- Site-directed mutagenesis of CHIKV replicons to study de-MARylation activity.
Main Results:
- PARP10 and PARP12 were identified as host factors restricting CHIKV replication.
- PARP10's restriction was dependent on its catalytic activity.
- PARP10 and PARP12 inhibited nsP3 production, indicating impaired polyprotein processing.
- The viral nsP2 protease was found to be MARylated by PARP10, leading to inhibition of its proteolytic activity.
- Viral nsP3-mediated de-MARylation reactivated the nsP2 protease.
Conclusions:
- PARP10-mediated MARylation of the CHIKV nsP2 protease inhibits viral polyprotein processing and replication.
- The viral nsP3 macrodomain's de-MARylation activity is crucial for restoring nsP2 function and enabling CHIKV replication.
- This study reveals a novel mechanism of host-virus conflict involving ADP-ribosylation and de-MARylation, explaining the role of the viral MAR hydrolase.
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