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Updated: Feb 23, 2026

Author Spotlight: Evaluation of Protein-Condensate Dynamics in Live Human Cells
Published on: January 5, 2024
Co-operative intra-protein structural response due to protein-protein complexation revealed through thermodynamic
Sudipta Samanta1,2, Sanchita Mukherjee3
1BioSystems and Micromechanics IRG (BioSyM), Singapore-MIT Alliance for Research and Technology (SMART), 1 Create Way, Singapore, 138602, Singapore. sudipta@smart.mit.edu.
Abstract:
The p53 protein activation protects the organism from propagation of cells with damaged DNA having oncogenic mutations. In normal cells, activity of p53 is controlled by interaction with MDM2. The well understood p53-MDM2 interaction facilitates design of ligands that could potentially disrupt or prevent the complexation owing to its emergence as an important objective for cancer therapy. However, thermodynamic quantification of the p53-peptide induced structural changes of the MDM2-protein remains an area to be explored. This study attempts to understand the conformational free energy and entropy costs due to this complex formation from the histograms of dihedral angles generated from molecular dynamics simulations. Residue-specific quantification illustrates that, hydrophobic residues of the protein contribute maximum to the conformational thermodynamic changes. Thermodynamic quantification of structural changes of the protein unfold the fact that, p53 binding provides a source of inter-element cooperativity among the protein secondary structural elements, where the highest affected structural elements (α2 and α4) found at the binding site of the protein affects faraway structural elements (β1 and Loop1) of the protein. The communication perhaps involves water mediated hydrogen bonded network formation. Further, we infer that in inhibitory F19A mutation of P53, though Phe19 is important in the recognition process, it has less prominent contribution in the stability of the complex. Collectively, this study provides vivid microscopic understanding of the interaction within the protein complex along with exploring mutation sites, which will contribute further to engineer the protein function and binding affinity.
Insights
This study quantifies the thermodynamic costs of p53-MDM2 protein complex formation. Understanding these interactions, particularly hydrophobic residue contributions and allosteric effects, aids cancer therapy development.
Area of Science:
- Biophysics
- Structural Biology
- Computational Chemistry
Background:
- The p53 protein is crucial for preventing cancer by halting cell division with damaged DNA.
- p53 activity is regulated by its interaction with MDM2 (mouse double minute 2 homolog).
- Targeting the p53-MDM2 interaction is a promising strategy for cancer therapy.
Purpose of the Study:
- To thermodynamically quantify the structural changes in MDM2 protein upon p53 binding.
- To elucidate the conformational free energy and entropy costs associated with this protein complex formation.
- To investigate the role of specific residues and allosteric communication in the p53-MDM2 interaction.
Main Methods:
- Molecular dynamics simulations were used to generate dihedral angle histograms.
- Thermodynamic analysis was performed on simulation data to calculate conformational free energy and entropy.
- Residue-specific contributions to thermodynamic changes were quantified.
Main Results:
- Hydrophobic residues significantly contribute to the conformational thermodynamic changes.
- p53 binding induces cooperativity between secondary structural elements in MDM2, affecting distant sites (e.g., α2/α4 influencing β1/Loop1).
- Water-mediated hydrogen bonding networks may mediate this communication.
Conclusions:
- The study provides a microscopic understanding of the p53-MDM2 complex's structural and thermodynamic properties.
- Identified key residues and allosteric pathways offer insights for engineering protein function and binding affinity.
- Findings contribute to the rational design of novel cancer therapeutics targeting the p53-MDM2 pathway.
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