Molecular docking of DS-3032B, a mouse double minute 2 enzyme antagonist with potential for oncology treatment

Vítor Hugo Sales da Mota1, Fabrício Freire de Melo2, Breno Bittencourt de Brito2

  • 1Campus Toledo, Universidade Federal do Paraná, Toledo 85.919-899, Paraná, Brazil.

Abstract

Insights

The drug DS-3032B shows high affinity and stability when binding to MDM2, the negative regulator of p53. This interaction at the p53 binding site suggests DS-3032B

Area of Science:

  • Oncology
  • Pharmacology
  • Computational Biology

Background:

  • p53 suppression is a marker of poor prognosis in various cancers.
  • Mouse double minute 2 (MDM2) is the primary negative regulator of p53.
  • Understanding drug interactions with MDM2 is crucial for developing novel cancer therapies.

Purpose of the Study:

  • To analyze the chemical bonds between DS-3032B and its binding site in MDM2 using in silico methods.
  • To evaluate the stability and affinity of the DS-3032B-MDM2 interaction.
  • To assess the potential of DS-3032B as a neoplastic inhibitor.

Main Methods:

  • Molecular docking simulations were performed using AutoDock Vina.
  • MDM2 (PDB: 5SWK) and DS-3032B (PubChem CID: 73297272) structures were utilized.
  • Ligand protonation states were predicted using MarvinSketch, and interactions were analyzed with PyMol and Discovery Studio.

Main Results:

  • DS-3032B demonstrated high affinity for MDM2, with binding energies of -9.9 kcal/mol (protonated) and -10.0 kcal/mol (non-protonated).
  • The drug binds to the p53 binding site on MDM2.
  • Sixteen amino acid residues of MDM2 within the p53 binding region are involved in stable interactions with DS-3032B.

Conclusions:

  • DS-3032B binds with high affinity and stability to the MDM2 p53 binding site.
  • These findings suggest DS-3032B has potential therapeutic efficiency as a neoplastic inhibitor.
  • The drug's interaction profile supports its promise in cancer treatment strategies targeting the p53-MDM2 pathway.

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