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Published on: October 11, 2013
Adenovirus E4 ORF3 protein inhibits the interferon-mediated antiviral response
Amanda J Ullman1, Nancy C Reich, Patrick Hearing
1Department of Molecular Genetics and Microbiology, School of Medicine, Stony Brook University, Stony Brook, NY 11794, USA.
Abstract:
The PML oncogenic domain (POD/ND10/PML body) is a common target of DNA viruses, which replicate their genomes in proximity to this nuclear structure. The adenovirus early protein E4 ORF3 is both necessary and sufficient to rearrange PODs from punctate bodies into track-like structures. Although multiple hypotheses exist, the precise reason for this activity has not yet been elucidated. PML, the protein responsible for nucleating PODs, is an interferon (IFN)-stimulated gene, implicating the participation of this nuclear body in an innate antiviral response. Here, we demonstrate that E4 ORF3 is critical to the replicative success of adenovirus during the IFN-induced antiviral state. When cells are pretreated with either IFN-alpha or IFN-gamma, a mutant virus that does not express E4 ORF3 is severely compromised for replication. This result suggests the functional significance of ORF3 track formation is the inhibition of a POD-mediated, antiviral mechanism. Replication of the E4 ORF3 mutant virus can be rescued following the introduction of E4 ORF3 from evolutionarily divergent adenoviruses, suggesting a conserved function for E4 ORF3 inhibition of the IFN-induced antiviral state. Furthermore, E4 ORF3 inhibition of an IFN-induced response is unrelated to the inhibition of adenovirus replication by the Mre11-Rad50-Nbs1 DNA repair complex. We propose that the evolutionarily conserved function of the adenovirus E4 ORF3 protein is the inhibition of a host interferon response to viral infection via disruption of the PML oncogenic domain.
Insights
Adenovirus E4 ORF3 protein disrupts PML oncogenic domains, inhibiting the host interferon antiviral response. This viral mechanism is crucial for successful adenovirus replication during interferon-induced immunity.
Area of Science:
- Virology
- Immunology
- Cell Biology
Background:
- PML oncogenic domains (PODs) are nuclear structures targeted by DNA viruses.
- Adenovirus E4 ORF3 protein rearranges PODs into track-like structures.
- PML is an interferon-stimulated gene, suggesting PODs play a role in innate antiviral responses.
Purpose of the Study:
- To investigate the role of adenovirus E4 ORF3 in viral replication during interferon-induced antiviral states.
- To elucidate the function of E4 ORF3-mediated POD rearrangement.
Main Methods:
- Utilized adenovirus mutants lacking E4 ORF3 expression.
- Pretreated cells with interferon-alpha or interferon-gamma.
- Assessed viral replication efficiency.
- Complemented E4 ORF3 mutant with wild-type E4 ORF3 from different adenovirus species.
Main Results:
- Adenovirus lacking E4 ORF3 showed severely compromised replication in interferon-treated cells.
- E4 ORF3 expression rescued replication of the mutant virus.
- E4 ORF3's antiviral inhibition function is conserved across different adenovirus species.
- E4 ORF3's mechanism is distinct from Mre11-Rad50-Nbs1 complex inhibition.
Conclusions:
- Adenovirus E4 ORF3 is critical for overcoming host interferon responses.
- E4 ORF3 inhibits a POD-mediated antiviral mechanism.
- The function of E4 ORF3 in disrupting PODs to suppress interferon is evolutionarily conserved.
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