Identification of 1H-indene-(1,3,5,6)-tetrol derivatives as potent pancreatic lipase inhibitors using molecular docking and molecular dynamics approach

Biotechnol Appl Biochem. 2016 Nov;63(6):765-778. doi: 10.1002/bab.1432. Epub 2015 Sep 24.

Abstract

Pancreatic lipase is a potential therapeutic target to treat diet-induced obesity in humans, as obesity-related diseases continue to be a global problem. Despite intensive research on finding potential inhibitors, very few compounds have been introduced to clinical studies. In this work, new chemical scaffold 1H-indene-(1,3,5,6)-tetrol was proposed using knowledge-based approach, and 36 inhibitors were derived by modifying its functional groups at different positions in scaffold. To explore binding affinity and interactions of ligands with protein, CDOCKER and AutoDock programs were used for molecular docking studies. Analyzing results of rigid and flexible docking algorithms, inhibitors C_12, C_24, and C_36 were selected based on different properties and high predicted binding affinities for further analysis. These three inhibitors have different moieties placed at different functional groups in scaffold, and to characterize structural rationales for inhibitory activities of compounds, molecular dynamics simulations were performed (500 nSec). It has been shown through simulations that two structural fragments (indene and indole) in inhibitor can be treated as isosteric structures and their position at binding cleft can be replaced by each other. Taking into account these information, two lines of inhibitors can further be developed, each line based on a different core scaffold, that is, indene/indole.

Keywords: inhibitors; molecular docking; molecular dynamics; pancreatic lipase.

MeSH terms

  • Drug Design
  • Enzyme Inhibitors / chemistry
  • Enzyme Inhibitors / metabolism
  • Enzyme Inhibitors / pharmacology
  • Indenes / chemistry*
  • Indenes / metabolism
  • Indenes / pharmacology*
  • Lipase / antagonists & inhibitors*
  • Lipase / chemistry
  • Lipase / metabolism*
  • Molecular Docking Simulation*
  • Molecular Dynamics Simulation*
  • Pancreas / enzymology*
  • Protein Conformation
  • Thermodynamics

Substances

  • Enzyme Inhibitors
  • Indenes
  • Lipase