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A High Resolution Method to Monitor Phosphorylation-dependent Activation of IRF3
Published on: January 24, 2016
Biologically significant interaction of human herpesvirus 8 viral interferon regulatory factor 4 with
1Sidney Kimmel Comprehensive Cancer Center at Johns Hopkins, Department of Oncology, Johns Hopkins University School of Medicine, Baltimore, Maryland, USA.
Abstract:
Human herpesvirus 8 (HHV-8), associated with Kaposi sarcoma, primary effusion lymphoma (PEL), and multicentric Castleman disease, encodes four interferon regulatory factor homologs, vIRFs 1-4, that interact with and inhibit various mediators of host-cell defense against virus infection. A cellular protein targeted by all the vIRFs is ubiquitin-specific protease 7 (USP7); while replication-modulatory and latently infected PEL-cell pro-viability phenotypes of USP7 targeting have been identified for vIRFs 1-3, the significance of the interaction of vIRF-4 with USP7 has remained undetermined. Here we show, through genetic ablation of the vIRF-4-USP7 interaction in infected cells, that vIRF-4 association with USP7 is necessary for optimal expression of vIRF-4 and normal HHV-8 replication. Findings from experiments on transfected and infected cells identified ubiquitination of vIRF-4 via K48-linkage and USP7-binding-associated suppression of vIRF-4 ubiquitination and, in infected cells, increased vIRF-4 expression. Analysis of IFN-I induction and associated signaling as a function of vIRF-4 and its interaction with USP7 identified a role of each in innate-immune suppression. Finally, activation via K63-polyubiquitination of the innate-immune signaling mediator TRAF3 was found to be suppressed by vIRF-4 in a USP7-binding-associated manner in infected cells, but not in transfected cells, likely via binding-regulated expression of vIRF-4. Together, our data identify the first examples of vIRF ubiquitination and a vIRF substrate of USP7, enhanced expression of vIRF-4 via its interaction with USP7, and TRAF3-inhibitory activity of vIRF-4. The findings address, for the first time, the biological significance of the interaction of vIRF-4 with USP7 and reveal a mechanism of vIRF-4-mediated innate-immune evasion and pro-replication activity via TRAF3 regulation.
Importance:
HHV-8 homologs of cellular interferon regulatory factors (IRFs), involved in host-cell defense against virus infection, interact in an inhibitory fashion with IRFs and other mediators of antiviral innate immunity. These interactions are of demonstrated or hypothesized importance for successful primary, productive (lytic), and latent (persistent) infection by HHV-8. While HHV-8 vIRF-4 is known to interact physically with USP7 deubiquitinase, a key regulator of various cellular proteins, the functional and biological significance of the interaction has not been addressed. The present study identifies the interaction as important for HHV-8 productive replication and, indeed, for vIRF-4 expression and reveals a new function of vIRF-4 via inhibition of the activity of TRAF3, a pivotal mediator of host-cell antiviral activity through activation of cellular IRFs and induction of type-I interferons. These findings identify potential targets for the development of novel anti-HHV-8 agents, such as those able to disrupt vIRF-4-USP7 interaction or vIRF-4-stabilizing USP7 activity.
Insights
Human herpesvirus 8 (HHV-8) vIRF-4 protein requires USP7 for optimal expression and replication. This interaction suppresses innate immunity by inhibiting TRAF3, aiding HHV-8 infection.
Area of Science:
- Virology
- Immunology
- Molecular Biology
Background:
- Human herpesvirus 8 (HHV-8) encodes viral interferon regulatory factors (vIRFs) that target host-cell defense mechanisms.
- vIRFs 1-3 interact with ubiquitin-specific protease 7 (USP7), impacting viral replication and cell survival.
- The functional significance of vIRF-4's interaction with USP7 in HHV-8 infection remained unclear.
Purpose of the Study:
- To elucidate the biological significance of the vIRF-4 and USP7 interaction in HHV-8.
- To investigate the role of this interaction in viral replication and host immune evasion.
- To identify vIRF-4 as a regulator of TRAF3 and its impact on innate immunity.
Main Methods:
- Genetic ablation of the vIRF-4-USP7 interaction in infected cells.
- Analysis of vIRF-4 ubiquitination and expression.
- Assessing type I interferon (IFN-I) induction and signaling pathways.
- Investigating TRAF3 activation and its regulation by vIRF-4 and USP7.
Main Results:
- vIRF-4 association with USP7 is essential for optimal vIRF-4 expression and HHV-8 replication.
- USP7 binding suppresses vIRF-4 ubiquitination, leading to increased vIRF-4 levels.
- vIRF-4 inhibits TRAF3 activation in a USP7-dependent manner, contributing to innate immune suppression.
- This interaction is crucial for HHV-8's ability to evade host antiviral responses.
Conclusions:
- The study reveals the first instances of vIRF ubiquitination and USP7 substrate.
- vIRF-4 expression and HHV-8 replication are enhanced through its interaction with USP7.
- vIRF-4 suppresses innate immunity via TRAF3 regulation, representing a novel viral immune evasion strategy.
- Targeting the vIRF-4-USP7 interaction could offer new therapeutic avenues against HHV-8 infections.
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