Characterizing the protein-protein interaction between MDM2 and 14-3-3σ; proof of concept for small molecule
Jake A Ward1, Beatriz Romartinez-Alonso2, Danielle F Kay3
1Leicester Institute for Structural and Chemical Biology, University of Leicester, Leicester, UK; Mechanisms of Cancer and Aging Laboratory, Department of Molecular and Cell Biology, University of Leicester, Leicester, UK.
Abstract:
Mouse Double Minute 2 (MDM2) is a key negative regulator of the tumor suppressor protein p53. MDM2 overexpression occurs in many types of cancer and results in the suppression of WT p53. The 14-3-3 family of adaptor proteins are known to bind MDM2 and the 14-3-3σ isoform controls MDM2 cellular localization and stability to inhibit its activity. Therefore, small molecule stabilization of the 14-3-3σ/MDM2 protein-protein interaction (PPI) is a potential therapeutic strategy for the treatment of cancer. Here, we provide a detailed biophysical and structural characterization of the phosphorylation-dependent interaction between 14-3-3σ and peptides that mimic the 14-3-3 binding motifs within MDM2. The data show that di-phosphorylation of MDM2 at S166 and S186 is essential for high affinity 14-3-3 binding and that the binary complex formed involves one MDM2 di-phosphorylated peptide bound to a dimer of 14-3-3σ. However, the two phosphorylation sites do not simultaneously interact so as to bridge the 14-3-3 dimer in a 'multivalent' fashion. Instead, the two phosphorylated MDM2 motifs 'rock' between the two binding grooves of the dimer, which is unusual in the context of 14-3-3 proteins. In addition, we show that the 14-3-3σ-MDM2 interaction is amenable to small molecule stabilization. The natural product fusicoccin A forms a ternary complex with a 14-3-3σ dimer and an MDM2 di-phosphorylated peptide resulting in the stabilization of the 14-3-3σ/MDM2 PPI. This work serves as a proof-of-concept of the drugability of the 14-3-3/MDM2 PPI and paves the way toward the development of more selective and efficacious small molecule stabilizers.
Insights
Stabilizing the 14-3-3σ/MDM2 interaction with small molecules offers a cancer therapy strategy. Di-phosphorylation of MDM2 at S166/S186 is key for this interaction, which can be enhanced by fusicoccin A.
Area of Science:
- Biochemistry
- Structural Biology
- Cancer Therapeutics
Background:
- Mouse Double Minute 2 (MDM2) inhibits the tumor suppressor p53 and is overexpressed in many cancers.
- The 14-3-3σ protein regulates MDM2 localization and stability, making the 14-3-3σ/MDM2 interaction a therapeutic target.
- Stabilizing this protein-protein interaction (PPI) with small molecules is a potential anti-cancer strategy.
Purpose of the Study:
- To characterize the biophysical and structural basis of the interaction between 14-3-3σ and MDM2.
- To investigate the role of MDM2 phosphorylation in this interaction.
- To explore the potential of small molecules in stabilizing the 14-3-3σ/MDM2 PPI for cancer treatment.
Main Methods:
- Detailed biophysical and structural characterization of 14-3-3σ and MDM2 peptides.
- Analysis of phosphorylation-dependent binding using structural and biochemical techniques.
- Investigation of small molecule (fusicoccin A) effects on the PPI.
Main Results:
- Di-phosphorylation of MDM2 at S166 and S186 is essential for high-affinity binding to 14-3-3σ.
- The MDM2 peptide binds to a 14-3-3σ dimer, with phosphorylation sites rocking between binding grooves.
- Fusicoccin A stabilizes the 14-3-3σ/MDM2 PPI by forming a ternary complex.
Conclusions:
- The phosphorylation-dependent 14-3-3σ/MDM2 interaction is structurally unique and druggable.
- Small molecule stabilization of this PPI is a viable therapeutic strategy for cancer.
- This study provides a foundation for developing novel small molecule stabilizers targeting the 14-3-3σ/MDM2 interaction.
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