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Updated: Dec 27, 2025

Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Buxus alkaloid compound destabilizes mutant p53 through inhibition of the HSF1 chaperone axis
Yu-Ling Wang1, Wei Wu1, Yong-Nan Su1
1Medical School, Kunming University of Science and Technology, Kunming 650500, PR China.
Background:
P53 is the most frequently mutated gene in most tumour types, and the mutant p53 protein accumulates at high levels in tumours to promote tumour development and progression. Thus, targeting mutant p53 for degradation is one of the therapeutic strategies used to manage tumours that depend on mutant p53 for survival. Buxus alkaloids are traditionally used in the treatment of cardiovascular diseases. We found that triterpenoid alkaloids extracted from Buxus sinica found in the Yunnan Province exhibit anticancer activity by depleting mutant p53 levels in colon cancer cells.
Purpose:
To explore the anticancer mechanism of action of the triterpenoid alkaloid KBA01 compound by targeting mutant p53 degradation.
Study Design And Methods:
Different mutant p53 cell lines were used to evaluate the anticancer activity of KBA01. MTT assay, colony formation assay and cell cycle analysis were performed to examine the effect of KBA01 on cancer cell proliferation. Western blotting and qPCR were used to investigate effects of depleting mutant p53, and a ubiquitination assay was used to determine mutant p53 ubiquitin levels after cells were treated with the compound. Co-IP and small interfering RNA assays were used to explore the effects of KBA01 on the interaction of Hsp90 with mutant p53.
Results:
The triterpenoid alkaloid KBA01 can induce G2/M cell cycle arrest and the apoptosis of HT29 colon cancer cells. KBA01 decreases the stability of DNA contact mutant p53 proteins through the proteasomal pathway with minimal effects on p53 mutant protein conformation. Moreover, KBA01 enhances the interaction of mutant p53 with Hsp70, CHIP and MDM2, and knocking down CHIP and MDM2 stabilizes mutant p53 levels in KBA01-treated cells. In addition, KBA01 disrupts the HSF1-mutant p53-Hsp90 complex and releases mutant p53 to enable its MDM2- and CHIP-mediated degradation.
Conclusion:
Our study reveals that KBA01 depletes mutant p53 protein in a chaperone-assisted ubiquitin/proteasome degradation pathway in cancer cells, providing insights into potential strategies to target mutant p53 tumours.
Insights
The triterpenoid alkaloid KBA01 depletes mutant p53 protein, a key driver in many cancers. This compound targets mutant p53 for degradation, offering a potential new strategy for treating p53-dependent tumors.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Mutant p53 protein accumulation drives tumor development and progression in various cancers.
- Targeting mutant p53 for degradation is a therapeutic strategy for cancers reliant on it.
- Buxus alkaloids, including triterpenoid alkaloids from Buxus sinica, show potential anticancer activity.
Purpose of the Study:
- To investigate the anticancer mechanism of the triterpenoid alkaloid KBA01.
- To determine how KBA01 targets mutant p53 for degradation.
Main Methods:
- Utilized mutant p53 cancer cell lines to assess KBA01's anticancer effects.
- Employed MTT assays, colony formation assays, and cell cycle analysis to evaluate proliferation inhibition.
- Investigated mutant p53 depletion, ubiquitination levels, and interactions with chaperones (Hsp90, Hsp70) and E3 ligases (CHIP, MDM2) using Western blotting, qPCR, Co-IP, and siRNA assays.
Main Results:
- KBA01 induced G2/M cell cycle arrest and apoptosis in HT29 colon cancer cells.
- KBA01 decreased mutant p53 stability via the proteasomal pathway with minimal conformational changes.
- KBA01 enhanced mutant p53 interactions with Hsp70, CHIP, and MDM2, leading to its degradation.
- KBA01 disrupted the HSF1-mutant p53-Hsp90 complex, facilitating mutant p53 degradation.
Conclusions:
- KBA01 depletes mutant p53 protein through a chaperone-assisted ubiquitin/proteasome degradation pathway.
- This mechanism provides a novel therapeutic approach for targeting tumors dependent on mutant p53.
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