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Targeted Degradation of Mutant p53 Reverses the Pro-oncogenic Dominant-Negative Effect
Jovanka Gencel-Augusto1, Guillermina Lozano2
1Department of Otolaryngology - Head and Neck Surgery, The University of California, San Francisco (UCSF), San Francisco, California.
Abstract:
p53 is a transcription factor that functions as a tumor suppressor and the active unit of which is a tetramer. Nearly all cancers inactivate the p53 pathway, primarily through missense mutations in TP53. Most mutant p53 proteins lose their function and often exhibit increased protein stability. In addition to this loss of function, mutant p53 can drive oncogenicity through a dominant-negative effect by forming mixed tetramers with wild-type (WT) p53 to inhibit its activity. The study in this issue of Cancer Research by Klemm and colleagues provides definitive evidence for the mechanism by which mutant p53 inactivates WT p53 function. The p53R248Q mutant has a longer half-life than WT p53, resulting in an approximate ratio of 3 or 4 mutant molecules to every WT molecule. This imbalance facilitates the dominant-negative effect, which can be overcome either by exogenously increasing WT p53 levels or by selectively degrading mutant p53. In experiments whereby mutant p53 was degraded using a degron-tagged construct combined with iberdomide as a molecular glue, remarkable therapeutic efficacy was observed when this approach was used in combination with an MDM2 inhibitor. This work paves the way for therapeutic strategies that aim to degrade mutant p53 proteins in cases in which a WT TP53 allele is retained. See related article by Klemm et al., p. 1978.
Insights
Mutant p53 proteins can inactivate tumor suppressor wild-type p53 through a dominant-negative effect. Degrading mutant p53, especially with MDM2 inhibitors, shows therapeutic promise for cancers with wild-type TP53 alleles.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Genetics
Background:
- The p53 pathway is crucial for tumor suppression, with TP53 mutations common in cancer.
- Mutant p53 proteins often gain stability and can inhibit wild-type p53 function via a dominant-negative mechanism.
- Understanding how mutant p53 inactivates wild-type p53 is key for developing targeted therapies.
Purpose of the Study:
- To elucidate the precise mechanism by which mutant p53 interferes with wild-type p53 activity.
- To evaluate the therapeutic potential of selectively degrading mutant p53 in cancer models.
Main Methods:
- Investigated the dominant-negative effect of p53R248Q mutant on wild-type p53.
- Utilized degron-tagged constructs and molecular glues (e.g., iberdomide) to selectively degrade mutant p53.
- Combined mutant p53 degradation with MDM2 inhibition in experimental models.
Main Results:
- Established that mutant p53's longer half-life creates an imbalance, favoring the dominant-negative inhibition of wild-type p53.
- Demonstrated that exogenous wild-type p53 or selective mutant p53 degradation can overcome this inhibition.
- Observed significant therapeutic efficacy when combining mutant p53 degradation with MDM2 inhibition.
Conclusions:
- Mutant p53 inactivates wild-type p53 through a dose-dependent dominant-negative mechanism.
- Selective degradation of mutant p53, particularly in combination with MDM2 inhibitors, represents a promising therapeutic strategy for cancers retaining a wild-type TP53 allele.
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