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Updated: May 15, 2026

A Method for Screening and Validation of Resistant Mutations Against Kinase Inhibitors
Published on: December 7, 2014
Explaining why Gleevec is a specific and potent inhibitor of Abl kinase
Yen-Lin Lin1, Yilin Meng, Wei Jiang
1Department of Biochemistry and Molecular Biology, Gordon Center for Integrative Science, The University of Chicago, Chicago, IL 60637, USA.
Abstract:
Tyrosine kinases present attractive drug targets for specific types of cancers. Gleevec, a well-known therapeutic agent against chronic myelogenous leukemia, is an effective inhibitor of Abl tyrosine kinase. However, Gleevec fails to inhibit closely homologous tyrosine kinases, such as c-Src. Because many structural features of the binding site are conserved, the molecular determinants responsible for binding specificity are not immediately apparent. Some have attributed the difference in binding specificity of Gleevec to subtle variations in ligand-protein interactions (binding affinity control), whereas others have proposed that it is the conformation of the DFG motif, in which ligand binding is only accessible to Abl and not to c-Src (conformational selection control). To address this issue, the absolute binding free energy was computed using all-atom molecular dynamics simulations with explicit solvent. The results of the free energy simulations are in good agreement with experiments, thereby enabling a meaningful decomposition of the binding free energy to elucidate the factors controlling Gleevec's binding specificity. The latter is shown to be controlled by a conformational selection mechanism and also by differences in key van der Waals interactions responsible for the stabilization of Gleevec in the binding pocket of Abl.
Insights
Gleevec inhibits Abl tyrosine kinase but not c-Src. This study reveals Gleevec
Area of Science:
- Molecular Biology
- Biochemistry
- Pharmacology
Background:
- Tyrosine kinases are key targets in cancer therapy.
- Gleevec effectively inhibits Abl tyrosine kinase but not the homologous c-Src.
- The molecular basis for Gleevec's binding specificity remains unclear.
Purpose of the Study:
- To elucidate the molecular determinants governing Gleevec's binding specificity.
- To differentiate between binding affinity and conformational selection as mechanisms for specificity.
Main Methods:
- Absolute binding free energy calculations using all-atom molecular dynamics simulations.
- Explicit solvent simulations to model the ligand-protein interactions.
- Decomposition of binding free energy to identify key contributing factors.
Main Results:
- Simulation results align well with experimental data.
- Gleevec's specificity is primarily controlled by a conformational selection mechanism.
- Differences in van der Waals interactions stabilize Gleevec binding in Abl compared to c-Src.
Conclusions:
- Gleevec binding specificity is a result of both conformational selection and specific van der Waals interactions.
- Understanding these mechanisms can guide the development of more selective kinase inhibitors.
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