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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Functional interplay between MDM2, p63/p73 and mutant p53
M H Stindt1, P A J Muller1, R L Ludwig1
1Cancer Research UK Beatson Institute, Glasgow, UK.
Abstract:
Many cancers express mutant p53 proteins that have lost wild-type tumor suppressor activity and, in many cases, have acquired oncogenic functions that can contribute to tumor progression. These activities of mutant p53 reflect interactions with several other proteins, including the p53 family members p63 and p73. Mutations in p53 that affect protein conformation (such as R175H) show strong binding to p63 and p73, whereas p53 mutants that only mildly affect the conformation (such as R273H) bind less well. A previously described aggregation domain of mutant p53 is not required for p63 or p73 binding; indeed, mutations within this region lead to the acquisition of a mutant p53 phenotype-including a conformational shift, p63/p73 binding and the ability to promote invasion. The activity of wild-type p53 is regulated by an interaction with MDM2 and we have investigated the potential role of MDM2 in the mutant p53/p63/p73 interactions. Both mutant p53 and p73 bind MDM2 well, whereas p63 binds much more weakly. We found that MDM2 can inhibit p63 binding to p53R175H but enhances the weaker p53R273H/p73 interaction. These effects on the interactions are reflected in an ability of MDM2 to relieve the inhibition of p63 by p53R175H, but enhance the inhibition of p73 activity by p53R175H and R273H. We propose a model in which MDM2 competes with p63 for binding to p53R175H to restore p63 activity, but forms a trimeric complex with p73 and p53R273H to more strongly inhibit p73 function.
Insights
Mutant p53 proteins interact with p63 and p73, influencing cancer progression. MDM2 modulates these interactions, affecting p63 and p73 activity differently based on p53 mutation type.
Area of Science:
- Oncology
- Molecular Biology
- Protein Interactions
Background:
- Mutant p53 proteins often gain oncogenic functions, driving tumor progression.
- Mutant p53 interacts with p53 family members p63 and p73, influencing their activities.
- The role of MDM2 in modulating mutant p53 interactions with p63 and p73 is not fully understood.
Purpose of the Study:
- To investigate the role of MDM2 in the interactions between mutant p53, p63, and p73.
- To determine how MDM2 affects the binding affinities and functional outcomes of these protein complexes.
Main Methods:
- Analysis of p53, p63, p73, and MDM2 protein interactions using various mutant p53 forms (e.g., R175H, R273H).
- Assessment of MDM2's influence on p63 and p73 binding to mutant p53.
- Evaluation of MDM2's impact on the functional consequences of these interactions, including inhibition of p63 and p73 activity.
Main Results:
- MDM2 binding affinities vary: mutant p53 and p73 bind MDM2 well, while p63 binds weakly.
- MDM2 differentially affects mutant p53 interactions: it inhibits p63 binding to p53R175H but enhances p73 binding to p53R273H.
- MDM2 modulates p63 and p73 activity: it relieves p63 inhibition by p53R175H but enhances p73 inhibition by both p53R175H and p53R273H.
Conclusions:
- MDM2 acts as a key regulator in mutant p53-p63/p73 complexes.
- MDM2 can restore p63 activity by competing for p53R175H binding.
- MDM2 enhances p73 inhibition by forming a trimeric complex with p53R273H and p73, suggesting distinct regulatory mechanisms.
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