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.

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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