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Targeting RING domains of Mdm2-MdmX E3 complex activates apoptotic arm of the p53 pathway in leukemia/lymphoma cells
1Department of Pharmacology and Therapeutics, Roswell Park Cancer Institute, Buffalo, NY, USA.
Abstract:
Reactivation of tumor-suppressor p53 for targeted cancer therapy is an attractive strategy for cancers bearing wild-type (WT) p53. Targeting the Mdm2-p53 interface or MdmX ((MDM4), mouse double minute 4)-p53 interface or both has been a focus in the field. However, targeting the E3 ligase activity of Mdm2-MdmX really interesting new gene (RING)-RING interaction as a novel anticancer strategy has never been explored. In this report, we describe the identification and characterization of small molecule inhibitors targeting Mdm2-MdmX RING-RING interaction as a new class of E3 ligase inhibitors. With a fluorescence resonance energy transfer-based E3 activity assay in high-throughput screening of a chemical library, we identified inhibitors (designated as MMRis (Mdm2-MdmX RING domain inhibitors)) that specifically inhibit Mdm2-MdmX E3 ligase activity toward Mdm2 and p53 substrates. MMRi6 and its analog MMRi64 are capable of disrupting Mdm2-MdmX interactions in vitro and activating p53 in cells. In leukemia cells, MMRi64 potently induces downregulation of Mdm2 and MdmX. In contrast to Nutlin3a, MMRi64 only induces the expression of pro-apoptotic gene PUMA (p53 upregulated modulator of apoptosis) with minimal induction of growth-arresting gene p21. Consequently, MMRi64 selectively induces the apoptotic arm of the p53 pathway in leukemia/lymphoma cells. Owing to the distinct mechanisms of action of MMRi64 and Nutlin3a, their combination synergistically induces p53 and apoptosis. Taken together, this study reveals that Mdm2-MdmX has a critical role in apoptotic response of the p53 pathway and MMRi64 may serve as a new pharmacological tool for p53 studies and a platform for cancer drug development.
Insights
Researchers developed novel small molecule inhibitors targeting Mdm2-MdmX RING-RING interaction. These inhibitors, MMRis, specifically block E3 ligase activity, reactivate p53, and selectively induce apoptosis in cancer cells.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- Wild-type p53 reactivation is a promising cancer therapy strategy.
- Targeting Mdm2-p53 and MdmX-p53 interactions is a known approach.
- Inhibiting Mdm2-MdmX E3 ligase activity remains an unexplored therapeutic avenue.
Purpose of the Study:
- To identify and characterize small molecule inhibitors of the Mdm2-MdmX RING-RING interaction.
- To evaluate the efficacy of these inhibitors in disrupting Mdm2-MdmX interactions and activating p53.
- To assess the potential of these inhibitors as a novel cancer therapeutic strategy.
Main Methods:
- High-throughput screening using a fluorescence resonance energy transfer-based E3 activity assay.
- Identification of Mdm2-MdmX RING domain inhibitors (MMRis).
- In vitro and cellular assays to assess inhibition of Mdm2-MdmX interaction, p53 activation, and downstream gene expression.
Main Results:
- MMRis specifically inhibit Mdm2-MdmX E3 ligase activity towards Mdm2 and p53.
- MMRi6 and MMRi64 disrupt Mdm2-MdmX interactions and activate p53 in cells.
- MMRi64 selectively induces apoptosis by upregulating PUMA, unlike Nutlin3a's induction of p21, and synergizes with Nutlin3a.
Conclusions:
- Mdm2-MdmX E3 ligase activity is crucial for the apoptotic response of the p53 pathway.
- MMRi64 represents a novel pharmacological tool for p53 research.
- MMRi64 serves as a platform for developing new cancer therapeutics targeting the Mdm2-MdmX interaction.
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