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Updated: Dec 13, 2025

Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Targeting p53 for the treatment of cancer
Michael J Duffy1, Naoise C Synnott2, Shane O'Grady3
1UCD School of Medicine, Conway Institute of Biomolecular and Biomedical Research, University College Dublin, Dublin, Ireland; UCD Clinical Research Centre, St. Vincent's University Hospital, Dublin, Ireland.
Abstract:
Dysfunction of the TP53 (p53) gene occurs in most if not all human malignancies. Two principal mechanisms are responsible for this dysfunction; mutation and downregulation of wild-type p53 mediated by MDM2/MDM4. Because of its almost universal inactivation in malignancy, p53 is a highly attractive target for the development of new anticancer drugs. Although multiple strategies have been investigated for targeting dysfunctional p53 for cancer treatment, only 2 of these have so far yielded compounds for testing in clinical trials. These strategies include the identification of compounds for reactivating the mutant form of p53 back to its wild-type form and compounds for inhibiting the interaction between wild-type p53 and MDM2/MDM4. Currently, multiple p53-MDM2/MDM4 antagonists are undergoing clinical trials, the most advanced being idasanutlin which is currently undergoing testing in a phase III clinical trial in patients with relapsed or refractory acute myeloid leukemia. Two mutant p53-reactivating compounds have progressed to clinical trials, i.e., APR-246 and COTI-2. Although promising data has emerged from the testing of both MDM2/MDM4 inhibitors and mutant p53 reactivating compounds in preclinical models, it is still unclear if these agents have clinical efficacy. However, should any of the compounds currently being evaluated in clinical trials be shown to have efficacy, it is likely to usher in a new era in cancer treatment, especially as p53 dysfunction is so prevalent in human cancers.
Insights
Targeting the TP53 (p53) gene, crucial in most cancers, is a promising strategy. Therapies aim to restore normal p53 function or block its inhibitors, with several compounds in clinical trials for various cancers.
Area of Science:
- Oncology
- Molecular Biology
- Drug Development
Background:
- TP53 (p53) gene dysfunction is prevalent in human malignancies.
- p53 inactivation occurs via mutation or MDM2/MDM4-mediated downregulation.
- Dysfunctional p53 is a key target for novel anticancer therapies.
Purpose of the Study:
- To review strategies for targeting p53 in cancer treatment.
- To highlight compounds that reactivate mutant p53 or inhibit p53-MDM2/MDM4 interactions.
- To assess the clinical trial progress of these p53-targeting agents.
Main Methods:
- Review of preclinical and clinical studies on p53-targeting cancer drugs.
- Identification of compounds in clinical trials, including p53-MDM2/MDM4 antagonists and mutant p53 reactivators.
- Analysis of the current clinical efficacy data for these investigational agents.
Main Results:
- Two main strategies are being pursued: mutant p53 reactivation and p53-MDM2/MDM4 inhibition.
- Several p53-targeting compounds are in clinical trials, including idasanutlin (p53-MDM2/MDM4 inhibitor) and APR-246/COTI-2 (mutant p53 reactivators).
- Promising preclinical data exists, but clinical efficacy remains to be definitively established.
Conclusions:
- Targeting p53 offers a potential new era in cancer treatment due to its widespread dysfunction in malignancies.
- Clinical trials are evaluating idasanutlin, APR-246, and COTI-2, among others.
- The success of these p53-targeting agents in clinical trials could revolutionize cancer therapy.
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