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Therapeutic opportunities in cancer therapy: targeting the p53-MDM2/MDMX interactions
Murali Munisamy1,2, Nayonika Mukherjee2, Levin Thomas2
1Department of Translational Medicine Centre, All India Institute of Medical Sciences Bhopal, Madhya Pradesh 462020, India.
Abstract:
Ubiquitination is a key enzymatic post-translational modification that influences p53 stability and function. p53 protein regulates the expression of MDM2 (mouse double-minute 2 protein) E3 ligase and MDMX (double-minute 4 protein), through proteasome-based degradation. Exploration of targeting the ubiquitination pathway offers a potentially promising strategy for precision therapy in a variety of cancers. The p53-MDM2-MDMX pathway provides multiple molecular targets for small molecule screening as potential therapies for wild-type p53. As a result of its effect on molecular carcinogenesis, a personalized therapeutic approach based on the wild-type and mutant p53 protein is desirable. We highlighted the implications of p53 mutations in cancer, p53 ubiquitination mechanistic details, targeting p53-MDM2/MDMX interactions, significant discoveries related to MDM2 inhibitor drug development, MDM2 and MDMX dual target inhibitors, and clinical trials with p53-MDM2/MDMX-targeted drugs. We also investigated potential therapeutic repurposing of selective estrogen receptor modulators (SERMs) in targeting p53-MDM2/MDMX interactions. Molecular docking studies of SERMs were performed utilizing the solved structures of the p53/MDM2/MDMX proteins. These studies identified ormeloxifene as a potential dual inhibitor of p53/MDM2/MDMX interaction, suggesting that repurposing SERMs for dual targeting of p53/MDM2 and p53/MDMX interactions is an attractive strategy for targeting wild-type p53 tumors and warrants further preclinical research.
Insights
Targeting the p53-MDM2-MDMX pathway with small molecules shows promise for cancer therapy. Selective estrogen receptor modulators, like ormeloxifene, may repurpose as dual inhibitors for wild-type p53 tumors.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- Ubiquitination critically regulates p53 protein stability and function.
- The p53-MDM2-MDMX pathway is central to cancer development and presents therapeutic targets.
- Targeting protein degradation pathways offers a strategy for precision cancer therapy.
Purpose of the Study:
- To review the implications of p53 mutations in cancer.
- To explore targeting the p53-MDM2/MDMX interaction for cancer therapy.
- To investigate the potential of selective estrogen receptor modulators (SERMs) as dual inhibitors.
Main Methods:
- Literature review of p53 ubiquitination, MDM2 inhibitors, and clinical trials.
- Molecular docking studies of SERMs against p53/MDM2/MDMX protein structures.
- Analysis of therapeutic repurposing strategies for SERMs.
Main Results:
- Identified ormeloxifene as a potential dual inhibitor of p53/MDM2 and p53/MDMX interactions.
- Demonstrated the feasibility of targeting the p53-MDM2/MDMX axis with small molecules.
- Highlighted the role of p53 ubiquitination in cancer and therapeutic strategies.
Conclusions:
- Repurposing SERMs offers a promising strategy for dual targeting of wild-type p53 tumors.
- Ormeloxifene shows potential as a novel therapeutic agent for p53-driven cancers.
- Further preclinical research is warranted to validate SERMs as p53-MDM2/MDMX targeted therapies.
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