Targeting p53-MDM2 interactions to identify small molecule inhibitors for cancer therapy: beyond "Failure to rescue"

Prosper Obed Chukwuemeka1, Haruna Isiyaku Umar2, Opeyemi Iwaloye3

  • 1Department of Biotechnology, School of Sciences (SOS), Federal University of Technology Akure, Akure, Nigeria.

Insights

Researchers identified potential anticancer compounds by disrupting p53-MDM2 interactions. Computational methods screened ligands, leading to promising drug candidates like ZINC02639178 for cancer treatment.

Area of Science:

  • Medicinal Chemistry
  • Computational Drug Discovery
  • Oncology

Background:

  • Targeting p53-MDM2 interactions with small molecules is a key strategy for cancer therapy.
  • Tumor cells' rapid evolution and drug resistance necessitate novel anticancer compounds.

Purpose of the Study:

  • To identify novel small molecule inhibitors of the MDM2 protein.
  • To discover potential anticancer agents by disrupting p53-MDM2 interactions.

Main Methods:

  • Pharmacophore-based virtual screening of the ZINC database.
  • Molecular docking, ADMET evaluation, and molecular dynamics simulations.
  • Validation of the pharmacophore model using external datasets.

Main Results:

  • A validated pharmacophore model (AHRR_1) with high predictive accuracy (AUC=0.85).
  • Identified 1375 potential ligands, with 25 showing favorable binding energy.
  • Four compounds (ZINC02639178, ZINC06752762, ZINC38933175, ZINC77969611) exhibited desirable pharmacokinetic profiles.
  • ZINC02639178 demonstrated stable complex dynamics and superior molecular enumeration.

Conclusions:

  • ZINC02639178 is a promising lead compound for further experimental investigation.
  • Computational approaches are effective in identifying novel anticancer drug candidates.
  • Disrupting p53-MDM2 interactions remains a viable strategy for cancer treatment.

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