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Updated: Jun 21, 2026

Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Restoring p53 function in cancer: novel therapeutic approaches for applying the brakes to tumorigenesis
Alessandra Di Cintio1, Elena Di Gennaro, Alfredo Budillon
1Experimental Pharmacology Unit, National Cancer Institute of Naples 'G Pascale' Naples 80131, Italy.
Abstract:
p53 tumor suppressor gene encodes for a critical cellular protein that regulate the integrity of the cell and can induce cell cycle arrest and/or apoptosis upon cellular stresses of several origins, including chemotherapeutics. Loss of p53 function occurs in an estimated 50% of all cancers by mutations and deletions while in the presence of wild-type p53 alleles other mechanisms may affect the expression and activity of p53. Alternate mechanisms include methylation of the promoter of p53, deletion or epigenetic inactivation of the p53-positive regulator p14/ARF, elevated expression of the p53 regulators murine double minute 2 (MDM2) and MDMX, or alteration of upstream regulators of p53 such as the kinase ATM. MDM2 is a p53 E3 ubiquitin ligase that mediates the ubiquitin-dependent degradation of p53 while p14/ARF is a small MDM2-binding protein that controls the activity of MDM2 by displacing p53 and preventing its degradation. MDMX antagonize p53-dependent transcriptional control by interfering with p53 transactivation function. The understanding of the key role of p53 inactivation in cancer development generated considerable interest in developing compounds that are capable of restoring the p53 functions. Several patents have been issued on such compounds. Adenovirus-based p53 gene therapy as well as small molecules such as PRIMA that can restore the transcriptional transactivation function to mutant p53, or NUTLIN and RITA that interfere with MDM2-directed p53 degradation, have tested in a preclinical setting and some of these approaches are currently in clinical development.
Insights
The p53 tumor suppressor is crucial for preventing cancer. Restoring its function through gene therapy or small molecules is a promising strategy currently in clinical development.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Genetics
Background:
- The p53 tumor suppressor gene is vital for maintaining cellular integrity and preventing cancer.
- Loss of p53 function, through mutation or other mechanisms, is common in many cancers.
- p53 activity can be inhibited by regulators like MDM2 and MDMX, or by epigenetic silencing of its activators.
Purpose of the Study:
- To explore strategies for restoring p53 tumor suppressor function in cancer treatment.
- To review compounds and therapies aimed at reactivating p53 pathways.
Main Methods:
- Review of scientific literature and patents on p53 restoration strategies.
- Analysis of mechanisms of p53 inactivation and potential therapeutic interventions.
- Examination of preclinical and clinical data for p53-based cancer therapies.
Main Results:
- Several mechanisms contribute to p53 inactivation beyond direct mutation, including epigenetic changes and overexpression of negative regulators.
- Compounds targeting MDM2 (e.g., NUTLIN, RITA) and mutant p53 (e.g., PRIMA) show promise.
- Adenovirus-based p53 gene therapy is also under investigation.
Conclusions:
- Restoring p53 function is a key therapeutic goal in oncology.
- Multiple therapeutic avenues, including small molecules and gene therapy, are being developed and tested in clinical trials.
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