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Published on: December 30, 2025
Improving survival by exploiting tumour dependence on stabilized mutant p53 for treatment
E M Alexandrova1, A R Yallowitz1, D Li1
1Department of Pathology, Stony Brook University, Stony Brook, New York 11794, USA.
Abstract:
Missense mutations in p53 generate aberrant proteins with abrogated tumour suppressor functions that can also acquire oncogenic gain-of-function activities that promote malignant progression, invasion, metastasis and chemoresistance. Mutant p53 (mutp53) proteins undergo massive constitutive stabilization specifically in tumours, which is the key requisite for the acquisition of gain-of-functions activities. Although currently 11 million patients worldwide live with tumours expressing highly stabilized mutp53, it is unknown whether mutp53 is a therapeutic target in vivo. Here we use a novel mutp53 mouse model expressing an inactivatable R248Q hotspot mutation (floxQ) to show that tumours depend on sustained mutp53 expression. Upon tamoxifen-induced mutp53 ablation, allotransplanted and autochthonous tumours curb their growth, thus extending animal survival by 37%, and advanced tumours undergo apoptosis and tumour regression or stagnation. The HSP90/HDAC6 chaperone machinery, which is significantly upregulated in cancer compared with normal tissues, is a major determinant of mutp53 stabilization. We show that long-term HSP90 inhibition significantly extends the survival of mutp53 Q/- (R248Q allele) and H/H (R172H allele) mice by 59% and 48%, respectively, but not their corresponding p53(-/-) littermates. This mutp53-dependent drug effect occurs in H/H mice treated with 17DMAG+SAHA and in H/H and Q/- mice treated with the potent Hsp90 inhibitor ganetespib. Notably, drug activity correlates with induction of mutp53 degradation, tumour apoptosis and prevention of T-cell lymphomagenesis. These proof-of-principle data identify mutp53 as an actionable cancer-specific drug target.
Insights
Missense mutant p53 (mutp53) proteins drive cancer progression and chemoresistance. Targeting mutp53, stabilized by HSP90/HDAC6, effectively reduces tumor growth and extends survival in preclinical models.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Genetics
Background:
- Missense mutations in p53 generate aberrant proteins with abrogated tumor suppressor functions and oncogenic gain-of-function activities.
- Mutant p53 (mutp53) proteins are constitutively stabilized in tumors, promoting malignant progression, invasion, metastasis, and chemoresistance.
- Currently, 11 million patients worldwide have tumors expressing highly stabilized mutp53, but its therapeutic targeting in vivo remains unexplored.
Purpose of the Study:
- To investigate whether mutant p53 (mutp53) is a viable therapeutic target in vivo.
- To determine the role of HSP90/HDAC6 chaperone machinery in mutp53 stabilization and explore HSP90 inhibition as a therapeutic strategy.
Main Methods:
- Utilized a novel mutp53 mouse model (R248Q hotspot mutation, floxQ) for tamoxifen-induced mutp53 ablation.
- Administered HSP90 inhibitors (17DMAG+SAHA, ganetespib) to mutp53 and p53(-/-) mice.
- Assessed tumor growth, animal survival, apoptosis, and T-cell lymphomagenesis.
Main Results:
- Tamoxifen-induced mutp53 ablation curbed tumor growth, increased animal survival by 37%, and induced apoptosis and regression in advanced tumors.
- Long-term HSP90 inhibition significantly extended survival in mutp53 mice (Q/- by 59%, H/H by 48%) but not p53(-/-) littermates.
- Drug activity correlated with mutp53 degradation, tumor apoptosis, and prevention of T-cell lymphomagenesis.
Conclusions:
- Sustained mutp53 expression is essential for tumor maintenance and progression.
- HSP90/HDAC6 machinery is a key determinant of mutp53 stabilization.
- Mutant p53 is an actionable, cancer-specific drug target, with HSP90 inhibition showing significant therapeutic potential.
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