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Updated: May 4, 2026

Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
MDM2-p53 interaction in paediatric solid tumours: preclinical rationale, biomarkers and resistance
Giuseppe Barone, Deborah A Tweddle, Jason M Shohet
1The Institute of Cancer Research, 15 Cotswold Road, Sutton, Surrey, SM2 5NG, United Kingdom. giuseppe.barone@icr.ac.uk.
Abstract:
p53 is one of the main regulators of apoptosis, senescence, cell cycle arrest and DNA repair. The expression, function and stabilization of p53 are governed by a complex network of regulators including p14(ARF) and MDM2. MDM2 is the main negative regulator of p53 activity and stability. Unlike tumours in adults, which tend to overcome p53 regulation by p53 mutations, the paediatric tumours neuroblastoma and sarcoma frequently retain wild type p53. Nevertheless, in childhood cancer the p53 pathway is commonly impaired due to upstream MDM2-p14(ARF)-p53 network aberrations. In contrast, aberrations of the p53 downstream pathway are very rare. In cancer cells with intact p53 downstream function MDM2 inhibition, and subsequent rapid increases in nuclear p53 levels, potently "re-activate" dormant apoptotic pathways and rapidly induce apoptotic cell death. As a result MDM2-p53 interaction inhibitors, including cis-imidazolines analogs (Nutlins), are potentially very effective agents in neuroblastoma and sarcomas. Predictive biomarkers are important as a lack of p53 mutations appears to reliably predict response to these inhibitors. Tumours should be screened for p53 mutations in children considered for MDM2-p53 interaction inhibitors. In addition, it is essential that other predictive biomarkers are investigated. The serum concentration of macrophage inhibitory cytokine- 1 (MIC-1) may be a good pharmacodynamic biomarker based on recent findings. In conclusion, targeting the interaction between p53 and its main negative regulator MDM2 represents a major new therapeutic approach in poor prognosis paediatric malignancies without p53 mutations.
Insights
Targeting MDM2-p53 interactions offers a new therapeutic strategy for childhood cancers like neuroblastoma and sarcoma. Inhibiting MDM2 reactivates the p53 pathway, inducing cancer cell death, especially in tumors retaining wild-type p53.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Therapeutics
Background:
- The p53 protein is a critical regulator of apoptosis, senescence, cell cycle arrest, and DNA repair.
- MDM2 is the primary negative regulator of p53 stability and activity.
- Paediatric tumours like neuroblastoma and sarcoma often retain wild-type p53, but their p53 pathway can be impaired by upstream network aberrations.
Purpose of the Study:
- To investigate the therapeutic potential of MDM2-p53 interaction inhibitors in paediatric malignancies.
- To identify predictive biomarkers for response to MDM2 inhibition therapy.
Main Methods:
- Focus on the mechanism of MDM2 inhibition and its effect on p53 reactivation.
- Exploration of predictive biomarkers, including p53 mutation status and serum MIC-1 levels.
Main Results:
- MDM2 inhibition rapidly increases nuclear p53 levels, reactivating apoptotic pathways and inducing cell death in cancer cells with intact p53 downstream function.
- Lack of p53 mutations appears to predict response to MDM2-p53 inhibitors.
- Serum macrophage inhibitory cytokine-1 (MIC-1) shows potential as a pharmacodynamic biomarker.
Conclusions:
- Targeting the MDM2-p53 interaction is a promising therapeutic strategy for paediatric cancers lacking p53 mutations.
- Screening for p53 mutations and investigating other biomarkers like MIC-1 are crucial for patient selection and treatment monitoring.

