Computational Investigation on the p53-MDM2 Interaction Using the Potential of Mean Force Study

Pundarikaksha Das1, Venkata Satish Kumar Mattaparthi1

  • 1Molecular Modelling and Simulation Laboratory, Department of Molecular Biology and Biotechnology, Tezpur University, Tezpur 784 028, Assam, India.

ACS Omega
|April 28, 2020
PubMed

Insights

This study reveals the binding pathway and energy of the p53-MDM2 complex, crucial for cancer treatment. Understanding these interactions aids in designing drugs to disrupt cancer-promoting protein binding.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Computational Chemistry

Background:

  • Overproduction of Murine double minute 2 (MDM2) proteins inhibits the tumor suppressor p53 in many human cancers.
  • Reactivating p53 by disrupting p53-MDM2 interactions is a potential cancer therapy strategy.
  • The precise structural and binding mechanisms of the p53-MDM2 complex remain unclear.

Purpose of the Study:

  • To elucidate the binding and unbinding pathway of p53's transactivation domain 1 to MDM2.
  • To characterize the free energy landscape of the p53-MDM2 complex formation and dissociation.
  • To identify key residues and interactions stabilizing the p53-MDM2 complex.

Main Methods:

  • Potential of Mean Force (PMF) studies using two distinct force fields (ff99SB and ff99SB-ILDN).
  • Molecular dynamics simulations of the p53-MDM2 complex at minimum potential energy.
  • Binding free energy calculations (MM/PBSA and MM/GBSA) and per-residue energy decomposition analysis.

Main Results:

  • A minimum in PMF was observed at a 12 Å separation with a dissociation energy of 30 kcal mol⁻¹.
  • Secondary structure elements of p53 (helix and turns) varied with its distance from MDM2.
  • Key stabilizing interactions include hydrogen bonds and a salt bridge between Lys94 (MDM2) and Glu17 (p53).
  • High binding affinity was calculated (ΔGbind = -7.29 kcal mol⁻¹ MM/PBSA; -53.29 kcal mol⁻¹ MM/GBSA), with MM/PBSA results aligning with experimental values.
  • Significant energy contributions to binding identified from specific residues in both MDM2 (Lys51, Leu54, Tyr100, Tyr104) and p53 (Phe19, Trp23, Leu26).

Conclusions:

  • The study provides a detailed atomistic understanding of the p53-MDM2 binding pathway and energetics.
  • Identified critical residues and interactions (e.g., Lys94-Glu17) are vital for p53-MDM2 complex stability.
  • Findings offer valuable insights for the rational design of novel inhibitors targeting the p53-MDM2 interaction in cancer therapy.

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