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Allosteric activation of latent p53 tetramers
Background:
The DNA-binding activity of p53 is essential to its function as a tumour suppressor. Point mutations that abolish this activity have been found to occur frequently in the p53 genes of human cancer cells. Wild-type p53 protein assembles into oligomers with latent DNA-binding activity that can be activated in vitro by phosphorylation of a carboxy-terminal regulatory region, catalyzed by protein kinase C or casein kinase II. We have investigated the mechanism underlying this post-translational regulation of p53. Specifically, we have asked the following questions. First, whether the carboxy-terminal regulatory site contributes to p53's ability to form tetramers. Second, whether the latent DNA-binding activity of p53 can be activated in vivo. And third, whether the activation of p53 is reversible.
Results:
Biophysical molecular-sizing analysis shows that both latent and activated forms of p53 are tetramers. Using a novel method, we have further established that p53 remains tetrameric when bound to DNA. We have also found that p53 can indeed be activated in vivo: p53 prepared from cells can be separated into activated and latent forms. Finally, we generated a monoclonal antibody specific for the casein kinase II target site in the carboxy-terminal regulatory region of p53, and used it to demonstrate the allosteric inhibition of in vitro and in vivo activated forms of p53.
Conclusions:
p53 protein assembles naturally as a tetramer that can be converted between latent and activated forms by a concerted, allosteric transition. The highly purified, reconstituted system that we have developed, in which the DNA-binding activity of p53 can be reversibly regulated, should facilitate the discovery of agents that can modulate the DNA-binding activity of p53--particularly those that can activate mutant p53 proteins and that may have potential in the design of anti-cancer drugs.
Insights
p53 protein naturally forms tetramers and can switch between latent and activated DNA-binding states. This reversible regulation, observed in vitro and in vivo, offers potential for developing anti-cancer drugs targeting p53.
Area of Science:
- Molecular Biology
- Biochemistry
- Cancer Research
Background:
- The tumor suppressor function of p53 relies on its DNA-binding activity.
- Frequent mutations in human cancer cells disrupt p53's DNA binding.
- Wild-type p53 forms oligomers with latent DNA-binding activity, activatable by phosphorylation.
Purpose of the Study:
- Investigate the mechanism of p53 post-translational regulation.
- Determine if the carboxy-terminal site affects tetramer formation.
- Assess in vivo activation and reversibility of p53 DNA-binding activity.
Main Methods:
- Biophysical molecular-sizing analysis to determine p53 oligomeric state.
- Novel methodology to assess p53 tetramerization upon DNA binding.
- Development of a monoclonal antibody against the casein kinase II target site.
Main Results:
- Both latent and activated p53 forms are tetramers.
- p53 remains tetrameric when bound to DNA.
- p53 activation was confirmed in vivo, and its inhibition demonstrated using a specific antibody.
Conclusions:
- p53 protein naturally forms tetramers that interconvert between latent and activated states via allosteric transitions.
- A reconstituted system allows reversible regulation of p53 DNA-binding activity.
- This system may aid in discovering agents to modulate p53 activity, potentially for anti-cancer drug design.
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