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Updated: Feb 28, 2026

Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Targeting the p53 cancer mutants Y220C, Y220N, and Y220S with the small-molecule stabilizer rezatapopt
Danai Mavridi1,2, Julianne S Funk3, Dimitrios-Ilias Balourdas1,2
1Institute of Pharmaceutical Chemistry, Goethe University, Max-von-Laue-Str. 9, 60438, Frankfurt am Main, Germany.
Abstract:
The cavity-creating p53 cancer mutation Y220C, which accounts for an estimated 125,000 new cancer cases per year, serves as an excellent paradigm for the development of mutant p53 reactivators. Several molecules that reactivate this thermolabile cancer mutant by targeting the mutation-induced crevice have been developed, and one of them, rezatapopt, is currently in clinical trials. The less frequently occurring Y220N and Y220S mutations are even more destabilizing than Y220C but create a similar surface crevice, raising the question of whether cancer patients with these mutations might also benefit from rezatapopt treatment. Here, we show that rezatapopt also binds to the Y220N and Y220S mutants, with nanomolar affinity, resulting in a full recovery of wild-type-like stability for the latter. High-resolution crystal structures of all three mutants bound to rezatapopt revealed a conserved binding mode, highlighting key interactions, including multipolar interactions of a fluorine substituent at a chiral center with the protein backbone. Consistent with the biophysical and structural data, rezatapopt reactivated p53 signaling in both Y220C and Y220S mutant cells by restoring the folded conformation and transcriptional activity, leading to anti-proliferative effects and apoptosis, albeit requiring higher compound concentrations in Y220S cells. The Y220N mutant, despite exhibiting high-nanomolar affinity for rezatapopt and substantial stabilization, did not show noticeable effects in cells at the concentrations tested, as rezatapopt binding resulted in only partial compensation for the mutation-induced loss of stability, for which we provide a structural explanation. Our data suggest that the development of clinical pan-Y220C/N/S reactivators, which could benefit an additional 10,000 patients per year, is challenging but not impossible.
Insights
Rezataptopt drug shows promise in reactivating p53 cancer mutations Y220C and Y220S, restoring protein stability and anti-cancer effects. However, efficacy for the Y220N mutant remains limited, presenting challenges for developing pan-mutant therapies.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- The p53 tumor suppressor protein is frequently mutated in cancer, with the Y220C mutation creating a destabilizing crevice targeted by novel therapeutics.
- Mutations Y220N and Y220S are less common but more destabilizing than Y220C, sharing a similar surface crevice.
Purpose of the Study:
- To investigate the efficacy of the mutant p53 reactivator rezatapopt against Y220N and Y220S p53 mutations.
- To elucidate the binding mode and structural basis of rezatapopt interaction with these p53 mutants.
Main Methods:
- Biophysical assays to determine binding affinity and protein stability.
- High-resolution crystal structure determination of rezatapopt bound to Y220C, Y220N, and Y220S p53 mutants.
- Cell-based assays measuring p53 signaling, proliferation, and apoptosis.
Main Results:
- Rezataptopt binds Y220N and Y220S mutants with nanomolar affinity, fully stabilizing Y220S to wild-type-like levels.
- Structural analysis revealed a conserved binding mode across all three mutants, with key interactions involving a fluorine substituent.
- Rezataptopt reactivated p53 signaling and exhibited anti-proliferative effects in Y220C and Y220S cells, but not Y220N cells at tested concentrations.
- Partial stabilization of Y220N by rezatapopt did not translate to cellular efficacy, explained by structural findings.
Conclusions:
- Rezataptopt demonstrates potential for treating cancers with Y220C and Y220S p53 mutations.
- Developing a single drug effective against all Y220C/N/S mutants presents significant challenges due to differential cellular responses.
- Further research is needed to engineer pan-Y220C/N/S reactivators for broader patient benefit.
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