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Deciphering the Multi-state Conformational Equilibrium of HDM2 in the Regulation of p53 Binding: Perspectives from
Kazuki Watanabe1, Qingci Zhao1, Ryosuke Iwatsuki1
1Graduate School of Pharmaceutical Sciences, Chiba University, 1-8-1 Inohana, Chuo-ku, Chiba 260-8675, Japan.
Abstract:
HDM2 negatively regulates the activity of the tumor suppressor p53. Previous NMR studies have shown that apo-HDM2 interconverts between an "open" state in which the N-terminal "lid" is disordered and a "closed" state in which the lid covers the p53-binding site in the core region. Molecular dynamics (MD) simulation studies have been performed to elucidate the conformational dynamics of HDM2, but the direct relevance of the experimental and computational analyses is unclear. In addition, how the phosphorylation of S17 in the lid contributes to the inhibition of p53 binding remains controversial. Here, we used both NMR and MD simulations to investigate the conformational dynamics of apo-HDM2. The NMR analysis revealed that apo-HDM2 exists in a fast-exchanging equilibrium within two closed states, closed 1 and closed 2, in addition to a previously demonstrated slow-exchanging "open-closed" equilibrium. MD simulations visualized two characteristic closed states, where the spatial orientation of the key residues corresponds well to the chemical shift changes of the NMR spectra. Furthermore, the phosphorylation of S17 induced an equilibrium shift toward closed 1, thereby suppressing the binding of p53 to HDM2. This study reveals a multi-state equilibrium of apo-HDM2 and provides new insights into the regulation mechanism of HDM2-p53 interactions.
Insights
This study reveals that HDM2 protein exists in multiple states, influencing its interaction with the tumor suppressor p53. Phosphorylation at S17 shifts this equilibrium, inhibiting p53 binding and impacting cancer regulation.
Area of Science:
- Biochemistry
- Structural Biology
- Molecular Dynamics
Background:
- HDM2 protein negatively regulates the tumor suppressor p53.
- HDM2 exists in open and closed states, affecting p53 binding.
- Previous studies on HDM2 dynamics and S17 phosphorylation effects were unclear.
Purpose of the Study:
- Investigate the conformational dynamics of apo-HDM2 using NMR and MD simulations.
- Clarify the role of S17 phosphorylation in p53 binding regulation.
- Elucidate the multi-state equilibrium of HDM2.
Main Methods:
- Nuclear Magnetic Resonance (NMR) spectroscopy.
- Molecular Dynamics (MD) simulations.
- Analysis of apo-HDM2 conformational dynamics.
Main Results:
- Apo-HDM2 exhibits a fast-exchanging equilibrium between two closed states (closed 1 and closed 2), in addition to a slow-exchanging open-closed equilibrium.
- MD simulations identified two characteristic closed states consistent with NMR data.
- Phosphorylation of S17 shifts the equilibrium towards the closed 1 state, inhibiting p53 binding.
Conclusions:
- Apo-HDM2 exists in a complex multi-state equilibrium.
- S17 phosphorylation is a key regulatory mechanism suppressing p53 binding to HDM2.
- This provides new insights into HDM2-p53 interaction regulation.
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