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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
The Development of p53-Targeted Therapies for Human Cancers
Yier Lu1, Meng Wu1, Yang Xu2,3
1Department of Medical Oncology, Key Laboratory of Cancer Prevention and Intervention, Ministry of Education, The Second Affiliated Hospital, School of Medicine, Zhejiang University, Hangzhou 310009, China.
Abstract:
p53 plays a critical role in tumor suppression and is the most frequently mutated gene in human cancers. Most p53 mutants (mutp53) are missense mutations and are thus expressed in human cancers. In human cancers that retain wtp53, the wtp53 activities are downregulated through multiple mechanisms. For example, the overexpression of the negative regulators of p53, MDM2/MDMX, can also efficiently destabilize and inactivate wtp53. Therefore, both wtp53 and mutp53 have become promising and intensively explored therapeutic targets for cancer treatment. Current efforts include the development of small molecule compounds to disrupt the interaction between wtp53 and MDM2/MDMX in human cancers expressing wtp53 and to restore wtp53-like activity to p53 mutants in human cancers expressing mutp53. In addition, a synthetic lethality approach has been applied to identify signaling pathways affected by p53 dysfunction, which, when targeted, can lead to cell death. While an intensive search for p53-targeted cancer therapy has produced potential candidates with encouraging preclinical efficacy data, it remains challenging to develop such drugs with good efficacy and safety profiles. A more in-depth understanding of the mechanisms of action of these p53-targeting drugs will help to overcome these challenges.
Insights
The p53 tumor suppressor is a key target for cancer therapy. Researchers are developing drugs to reactivate wild-type p53 or restore function to mutant p53, aiming for effective and safe cancer treatments.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- The p53 protein is crucial for tumor suppression and frequently mutated in cancers.
- Both wild-type p53 (wtp53) and its mutant forms (mutp53) are therapeutic targets.
- wtp53 activity can be inhibited by overexpressed regulators like MDM2/MDMX.
Purpose of the Study:
- To explore therapeutic strategies targeting p53 in cancer.
- To develop small molecules that modulate wtp53-MDM2/MDMX interactions.
- To restore wtp53-like activity in mutp53 and identify synthetic lethality pathways.
Main Methods:
- Development of small molecule compounds.
- Application of synthetic lethality approaches.
- Preclinical efficacy studies of p53-targeting drug candidates.
Main Results:
- Promising preclinical efficacy data for several p53-targeting drug candidates.
- Identification of signaling pathways affected by p53 dysfunction.
- Challenges remain in developing drugs with optimal efficacy and safety profiles.
Conclusions:
- Targeting p53, both wtp53 and mutp53, offers a promising avenue for cancer therapy.
- Further understanding of drug mechanisms is essential for overcoming development challenges.
- Continued research is needed to improve the efficacy and safety of p53-targeted cancer drugs.
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