Structure based prediction of a novel GPR120 antagonist based on pharmacophore screening and molecular dynamics

Ajay Pal1,2, James F Curtin1, Gemma K Kinsella1

  • 1School of Food Science and Environmental Health, College of Sciences and Health, Technological University Dublin, Dublin D07 ADY7, Ireland.

Insights

Researchers identified a novel small-molecule GPR120 antagonist, Cpd 9, using molecular dynamics simulations. This discovery offers potential for developing new anti-cancer drugs targeting GPR120.

Area of Science:

  • Pharmacology and Drug Discovery
  • Molecular Biology
  • Computational Chemistry

Background:

  • G-protein coupled receptor 120 (GPR120) plays multifaceted roles in metabolic and inflammatory processes.
  • GPR120 is implicated in cancer progression, promoting chemoresistance, angiogenesis, and cell migration.
  • Limited development of small-molecule GPR120 inhibitors exists, despite agonist availability.

Purpose of the Study:

  • To derive a pharmacophore hypothesis for GPR120 inhibition.
  • To identify novel small-molecule GPR120 antagonists.
  • To provide structural insights for rational drug design against GPR120 in cancer.

Main Methods:

  • Homology modeling of GPR120 short isoform (GPR120S).
  • All-atomic molecular dynamics (MD) simulations of apo and agonist-bound receptor models.
  • Structure-based pharmacophore modeling and virtual screening of the ZINC15 database.
  • MD simulations of identified small molecules to predict antagonist activity.

Main Results:

  • Ligand interactions with W277 and N313 were identified as critical for maintaining the inactive GPR120S conformation.
  • A pharmacophore hypothesis focused on W277 and N313 was generated.
  • Compound 9 (Cpd 9) was predicted as a GPR120S antagonist after MD simulations.

Conclusions:

  • The study provides a rational design approach for identifying GPR120S inhibitors.
  • Cpd 9 represents a potential lead compound for developing novel anti-cancer therapeutics.
  • Further optimization of identified inhibitors could advance GPR120-targeted cancer drug development.

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