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Human cytomegalovirus IE2 86-kilodalton protein binds p53 but does not abrogate G1 checkpoint function
1Fred Hutchinson Cancer Research Center, Seattle, Washington 98104, USA.
Abstract:
Physical interactions between human cytomegalovirus (HCMV) immediate-early (IE) proteins and key cell cycle regulatory proteins have been suggested as a mechanism whereby this herpesvirus modifies cellular control of proliferation. Observed similarities to interactions of other DNA virus proteins (human papillomavirus type 16 E6 and E7, simian virus 40 large T antigen, and adenovirus type 5 E1A and E1B) with cell cycle modulatory proteins such as p53 and Rb have suggested that HCMV IE proteins may likewise alter the G1-to-S phase transition. The IE2 region gene product IE86 has been shown to specifically bind p53, potentially modifying p53 G1 checkpoint function. To examine this possibility, p53-mediated G1 arrest in the presence of IE86 was assessed. Retroviral constructs were created to facilitate the stable expression of IE86 and IE72, another IE protein implicated in HCMV-mediated alteration of cell cycle progression. Western analysis and immunoprecipitation confirmed IE protein expression and binding of IE86 to p53, respectively. Chloramphenicol acetyltransferase assays examining the ability of IE86 to repress activity from the HCMV major IE promoter or activate the HCMV early promoter for the 2.2-kb class of RNAs demonstrated the functional integrity of the IE86 protein. Induction of DNA damage in normal, uninfected fibroblasts (FB) or FB expressing IE86 by actinomycin D (Act D) resulted in increased p53 levels, a predominance of the hypophosphorylated form of Rb, and increased expression of both p21(CIP1/WAF1) and mdm-2. Fluorescence-activated cell sorting revealed that both uninfected and IE86-expressing FB experienced dramatic G1 arrest following exposure to Act D. The clear demonstration of these p53-dependent responses in the presence of IE86 indicates that binding to this viral protein does not compromise the ability of p53 to elicit growth arrest following DNA damage.
Insights
Human cytomegalovirus (HCMV) IE86 protein binds to p53, a key cell cycle regulator. This interaction does not prevent p53 from initiating cell cycle arrest after DNA damage.
Area of Science:
- Virology
- Molecular Biology
- Cell Biology
Background:
- Human cytomegalovirus (HCMV) immediate-early (IE) proteins are known to interact with host cell cycle regulators.
- Similarities exist between HCMV IE proteins and other DNA virus proteins that modulate cell cycle progression.
- The HCMV IE2 protein, IE86, specifically binds to the tumor suppressor protein p53.
Purpose of the Study:
- To investigate whether the binding of HCMV IE86 to p53 affects p53's ability to induce G1 cell cycle arrest.
- To determine if HCMV IE86 compromises p53-mediated growth arrest following DNA damage.
Main Methods:
- Stable expression of HCMV IE86 and IE72 proteins using retroviral constructs.
- Western analysis and immunoprecipitation to confirm protein expression and binding.
- Chloramphenicol acetyltransferase assays to assess IE86's transcriptional activity.
- Induction of DNA damage using actinomycin D (Act D) in fibroblasts with or without IE86 expression.
- Analysis of p53, Rb, p21(CIP1/WAF1), and mdm-2 levels via Western blot.
- Fluorescence-activated cell sorting (FACS) to evaluate cell cycle distribution.
Main Results:
- IE86 protein expression and its binding to p53 were confirmed.
- IE86 demonstrated functional transcriptional activity.
- Act D treatment induced p53-dependent G1 arrest in both uninfected and IE86-expressing fibroblasts.
- Key cell cycle regulators (p53, Rb, p21(CIP1/WAF1), mdm-2) responded appropriately to DNA damage in the presence of IE86.
- IE86 expression did not inhibit the G1 arrest mediated by p53.
Conclusions:
- HCMV IE86 protein binds to p53.
- This interaction does not impair the p53-dependent G1 cell cycle arrest pathway in response to DNA damage.
- HCMV IE86 does not compromise the function of p53 in eliciting growth arrest, despite physical interaction.