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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Regulation of the p53 response and its relationship to cancer
1Division of Cancer Research, Jacqui Wood Cancer Centre, University of Dundee, Ninewells Hospital, James Arrott Drive, Dundee DD1 9SY, U.K. d.w.meek@dundee.ac.uk.
Abstract:
p53 has been studied intensively as a major tumour suppressor that detects oncogenic events in cancer cells and eliminates them through senescence (a permanent non-proliferative state) or apoptosis. Consistent with this role, p53 activity is compromised in a high proportion of all cancer types, either through mutation of the TP53 gene (encoding p53) or changes in the status of p53 modulators. p53 has additional roles, which may overlap with its tumour-suppressive capacity, in processes including the DNA damage response, metabolism, aging, stem cell differentiation and fertility. Moreover, many mutant p53 proteins, termed 'gain-of-function' (GOF), acquire new activities that help drive cancer aggression. p53 is regulated mainly through protein turnover and operates within a negative-feedback loop with its transcriptional target, MDM2 (murine double minute 2), an E3 ubiquitin ligase which mediates the ubiquitylation and proteasomal degradation of p53. Induction of p53 is achieved largely through uncoupling the p53-MDM2 interaction, leading to elevated p53 levels. Various stress stimuli acting on p53 (such as hyperproliferation and DNA damage) use different, but overlapping, mechanisms to achieve this. Additionally, p53 activity is regulated through critical context-specific or fine-tuning events, mediated primarily through post-translational mechanisms, particularly multi-site phosphorylation and acetylation. In the present review, I broadly examine these events, highlighting their regulatory contributions, their ability to integrate signals from cellular events towards providing most appropriate response to stress conditions and their importance for tumour suppression. These are fascinating aspects of molecular oncology that hold the key to understanding the molecular pathology of cancer and the routes by which it may be tackled therapeutically.
Insights
The tumor suppressor p53, crucial for detecting cancer, is regulated by protein turnover and stress responses. Its activity is vital for tumor suppression and understanding cancer pathology.
Area of Science:
- Molecular Oncology
- Cellular Biology
- Cancer Research
Background:
- p53 is a key tumor suppressor, eliminating cancer cells via senescence or apoptosis.
- TP53 gene mutations or altered p53 modulators compromise its function in many cancers.
- p53 has diverse roles in DNA damage response, metabolism, aging, and stem cell differentiation.
Purpose of the Study:
- To review the regulatory mechanisms of p53.
- To highlight the importance of p53 regulation in tumor suppression.
- To explore p53's role in integrating cellular stress signals.
Main Methods:
- Review of existing literature on p53 regulation.
- Examination of p53's interaction with MDM2 (murine double minute 2).
- Analysis of post-translational modifications like phosphorylation and acetylation.
Main Results:
- p53 activity is tightly controlled by protein turnover, particularly the p53-MDM2 feedback loop.
- Stress stimuli and post-translational modifications fine-tune p53 activity for appropriate cellular responses.
- Gain-of-function (GOF) mutant p53 proteins can promote cancer progression.
Conclusions:
- Understanding p53 regulation is critical for comprehending cancer pathology.
- p53's multifaceted roles and regulatory network offer therapeutic targets for cancer treatment.
- Context-specific regulation of p53 integrates cellular signals to ensure effective stress response and tumor suppression.
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