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Published on: March 28, 2012
Adenovirus 5 E1A-Mediated Suppression of p53 via FUBP1
Jasmine Rae Frost1, Megan Mendez1, Andrea Michelle Soriano1
1Department of Microbiology, University of Manitoba, Winnipeg, MB, Canada.
Abstract:
Far-upstream element (FUSE) binding protein 1 (FUBP1) was originally identified as a regulator of the oncogene c-Myc via binding to the FUSE within the c-Myc promoter and activating the expression of the gene. Recent studies have identified FUBP1 as a regulator of transcription, translation, and splicing via its DNA and RNA binding activities. Here we report the identification of FUBP1 as a novel binding partner of E1A. FUBP1 binds directly to E1A via the N terminus (residues 1 to 82) and conserved region 3 (residues 139 to 204) of adenovirus 5 E1A. The depletion of FUBP1 via short interfering RNAs (siRNA) reduces virus growth and drives the upregulation of the cellular stress response by activating the expression of p53-regulated genes. During infection, FUBP1 is relocalized within the nucleus, and it is recruited to viral promoters together with E1A while at the same time being lost from the FUSE upstream of the c-Myc promoter. The depletion of FUBP1 affects viral and cellular gene expression. Importantly, in FUBP1-depleted cells, p53-responsive genes are upregulated, p53 occupancy on target promoters is enhanced, and histone H3 lysine 9 is hyperacetylated. This is likely due to the loss of the FUBP1-mediated suppression of p53 DNA binding. We also observed that E1A stabilizes the FUBP1-p53 complex, preventing p53 promoter binding. Together, our results identify, for the first time, FUBP1 as a novel E1A binding protein that participates in aspects of viral replication and is involved in the E1A-mediated suppression of p53 function.IMPORTANCE Viral infection triggers innate cellular defense mechanisms that have evolved to block virus replication. To overcome this, viruses have counterevolved mechanisms that ensure that cellular defenses are either disarmed or not activated to guarantee successful replication. One of the key regulators of cellular stress is the tumor suppressor p53 that responds to a variety of cellular stress stimuli and safeguards the integrity of the genome. During infection, many viruses target the p53 pathway in order to deactivate it. Here we report that human adenovirus 5 coopts the cellular protein FUBP1 to prevent the activation of the p53 stress response pathway that would block viral replication. This finding adds to our understanding of p53 deactivation by adenovirus and highlights its importance in infection and innate immunity.
Insights
Far-upstream element binding protein 1 (FUBP1) binds to adenovirus E1A, inhibiting the p53 stress response crucial for viral replication. This interaction disarms cellular defenses, promoting virus survival.
Area of Science:
- Molecular Virology
- Cellular Biology
- Oncogene Regulation
Background:
- Far-upstream element binding protein 1 (FUBP1) regulates oncogene c-Myc and transcription, translation, and splicing.
- Adenovirus E1A protein is a key viral factor in infection.
- The tumor suppressor p53 is a critical cellular defense against viral replication.
Purpose of the Study:
- To identify novel binding partners of adenovirus 5 E1A.
- To investigate the role of FUBP1 in viral replication and cellular stress response.
- To elucidate the mechanism of E1A-mediated suppression of p53 function.
Main Methods:
- Identification of FUBP1 as an E1A binding partner.
- Short interfering RNA (siRNA) mediated depletion of FUBP1.
- Analysis of viral growth, gene expression, and p53 pathway activation.
- Chromatin immunoprecipitation to assess p53 promoter occupancy.
Main Results:
- FUBP1 directly binds to adenovirus 5 E1A.
- FUBP1 depletion reduces viral growth and upregulates p53-regulated genes.
- E1A stabilizes the FUBP1-p53 complex, preventing p53-mediated suppression of viral replication.
Conclusions:
- FUBP1 is a novel E1A binding protein involved in adenovirus replication.
- Adenovirus 5 utilizes FUBP1 to suppress the p53 cellular stress response.
- This interaction is critical for viral replication and evasion of innate immunity.
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