4.7 Article

Molecular Dynamics Simulation, Free Energy Calcuiation and Structure-Based 3D-QSAR Studies of B-RAF Kinase Inhibitors

Journal

JOURNAL OF CHEMICAL INFORMATION AND MODELING
Volume 51, Issue 3, Pages 680-692

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/ci100427J

Keywords

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Funding

  1. Program for New Century Excellent Talents in University [NCET-07-0399]
  2. National Natural Science Foundation of China [20905033]

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B-V600E-RAF kinase is the most frequent oncogenic protein kinase mutation in melanoma and is a promising target to treat malignant melanoma. In this work, a molecular modeling study combining QM-polarized ligand docking, molecular dynamics, free energy calculation, and three-dimensional quantitative structure activity relationships (3D-QSAR) was performed on a series of pyridoimidazolone compounds as the inhibitors of B-V600E-RAF kinase to under- Phe. stand the binding mode between the inhibitors and B-V000E-RAF kinase and the structural requirement for the inhibiting activity. 3D-QSAR models, including CoMFA and CoMSIA, were developed from the conformations obtained by QM-polarized ligand docking strategy. The obtained models have a good predictive ability in both internal and external validation. Furthermore, molecular dynamics simulation and free energy calculations were employed to determine the detailed binding process and to compare the binding mode of the inhibitors with different activities. The binding free energies calculated by MM/PBSA gave a good correlation with the experimental biological activity. The decomposition of free energies by MM/GBSA indicates the van der Waals interaction is the major driving force for the interaction between the inhibitors and (V600E)-RAF kinase. The hydrogen bond interactions between the inhibitors with Glu501 and Asp594 of the B-V600E-RAF kinase help to stabilize the DFG-out conformation. The results from this study can provide some insights into the development of novel potent B-V600E-RAF kinase inhibitors.

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