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Published on: December 7, 2017
E3 ligase EDD1/UBR5 is utilized by the HPV E6 oncogene to destabilize tumor suppressor TIP60
V K Subbaiah1, Y Zhang1, D Rajagopalan1,2
1Cancer Science Institute of Singapore, National University of Singapore, Singapore.
Abstract:
Tat-interacting protein of 60 kDa (TIP60) is an essential lysine acetyltransferase implicated in transcription, DNA damage response and apoptosis. TIP60 protein expression is reduced in cancers. In cervical cancers, human papillomavirus (HPV) E6 oncogene targets cellular p53, Bak and some of the PDZ domain-containing proteins for proteasome-mediated degradation through E6AP ligase. Recently, E6 oncogene from high-risk and low-risk categories was also shown to target TIP60. However, the molecular mechanisms and whether destabilization of TIP60 contributes to HPV E6-mediated transformation remain unanswered. Our proteomic analyses revealed EDD1 (E3 identified by differential display), an E3 ligase generally overexpressed in cancers as a novel interacting partner of TIP60. By investigating protein turnover and ubiquitination assays, we show that EDD1 negatively regulates TIP60's stability through the proteasome pathway. Strikingly, HPV E6 uses this function of EDD1 to destabilize TIP60. Colony-formation assays and soft agar assays show that gain of function of TIP60 or depletion of EDD1 in HPV-positive cervical cancer cells significantly inhibits cell growth in vitro. This phenotype is strongly supported by the in-vivo studies where re-activation of TIP60 in cervical cancer cells dramatically reduces tumor formation. In summary, we have discovered a novel ligase through which E6 destabilizes TIP60. Currently, in the absence of an effective therapeutic vaccine for malignant cervical cancers, cervical cancer still remains to be a major disease burden. Hence, our studies implying a distinct tumor suppressor role for TIP60 in cervical cancers show that reactivation of TIP60 could be of therapeutic value.
Insights
Human papillomavirus (HPV) E6 targets Tat-interacting protein of 60 kDa (TIP60) for degradation. This study identifies EDD1 as a novel E3 ligase that destabilizes TIP60, revealing a therapeutic target for cervical cancer.
Area of Science:
- Molecular Biology
- Oncology
- Virology
Background:
- Tat-interacting protein of 60 kDa (TIP60) is a crucial lysine acetyltransferase involved in vital cellular processes.
- Reduced TIP60 expression is observed in various cancers, including cervical cancer.
- The human papillomavirus (HPV) E6 oncogene is known to target cellular proteins for degradation, contributing to cancer development.
Purpose of the Study:
- To elucidate the molecular mechanisms by which HPV E6 targets TIP60.
- To identify novel interacting partners and regulators of TIP60 stability in the context of HPV infection.
- To investigate the therapeutic potential of targeting TIP60 in cervical cancer.
Main Methods:
- Proteomic analysis to identify TIP60-interacting proteins.
- Protein turnover and ubiquitination assays to assess TIP60 stability.
- In vitro cell culture assays (colony formation, soft agar) and in vivo studies to evaluate the impact of TIP60 modulation on cancer cell growth and tumor formation.
Main Results:
- EDD1 (E3 identified by differential display), an E3 ligase, was identified as a novel interacting partner of TIP60.
- EDD1 negatively regulates TIP60 stability via the proteasome pathway, and HPV E6 exploits this interaction to destabilize TIP60.
- Restoring TIP60 function or depleting EDD1 significantly inhibited growth and tumor formation in HPV-positive cervical cancer cells.
Conclusions:
- A novel mechanism involving the E3 ligase EDD1 has been uncovered, through which HPV E6 destabilizes TIP60.
- TIP60 exhibits a distinct tumor suppressor role in cervical cancer.
- Reactivation of TIP60 presents a potential therapeutic strategy for malignant cervical cancers.
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