Can structural features of kinase receptors provide clues on selectivity and inhibition? A molecular modeling study

Sarangan Ravichandran1, Brian T Luke1, Jack R Collins1

  • 1Advanced Biomedical Computing Center, Frederick National Laboratory for Cancer Research (FNLCR), P.O. Box B, Frederick, MD 21702, USA.

Insights

This study used in-silico docking to predict anticancer drug targets, revealing that kinase conformations and micro-environments dictate drug binding. This approach accurately identifies drug targets and informs the design of more selective kinase inhibitors with fewer side effects.

Area of Science:

  • Biochemistry
  • Pharmacology
  • Computational Biology

Background:

  • Protein kinases are crucial in cancer due to uncontrolled cell signaling.
  • Kinase inhibitors are key anticancer drug targets.
  • Understanding drug binding to kinase pockets is vital for drug discovery.

Purpose of the Study:

  • To perform in-silico docking of marketed drugs to wild-type and mutated kinases.
  • To validate the role of kinase conformations and micro-environments in drug selectivity.
  • To predict drug-target interactions and guide future experimental drug design.

Main Methods:

  • Receptor-focused in-silico docking of nine marketed drugs.
  • Analysis of 19 wild-type and mutated kinases across various families.
  • Investigation of drug binding to different kinase conformations (DFG-out, open, closed).

Main Results:

  • Accurate prediction of primary drug targets for most studied drugs.
  • Demonstration that kinase conformations and micro-environments determine ligand binding.
  • Type II drugs show selectivity for DFG-out conformations; Type I drugs are less selective.
  • Accurate modeling of binding affinity changes for ABL kinase mutations with Imatinib.

Conclusions:

  • Kinase conformation and micro-environment are critical determinants of drug selectivity.
  • In-silico methods can accurately predict drug-target interactions and guide inhibitor design.
  • This approach can help develop kinase inhibitors with improved efficacy and reduced side effects.

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