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Updated: Jun 18, 2026

CD Spectroscopy to Study DNA-Protein Interactions
Published on: February 10, 2022
Structural analysis of DFG-in and DFG-out dual Src-Abl inhibitors sharing a common vinyl purine template
Tianjun Zhou1, Lois Commodore, Wei-Sheng Huang
1ARIAD Pharmaceuticals Inc, 26 Landsdowne St., Cambridge, MA 02139, USA.
Abstract:
Bcr-Abl is the oncogenic protein tyrosine kinase responsible for chronic myeloid leukemia (CML). Treatment of the disease with imatinib (Gleevec) often results in drug resistance via kinase mutations at the advanced phases of the disease, which has necessitated the development of new mutation-resistant inhibitors, notably against the T315I gatekeeper mutation. As part of our efforts to discover such mutation resistant Abl inhibitors, we have focused on optimizing purine template kinase inhibitors, leading to the discovery of potent DFG-in and DFG-out series of Abl inhibitors that are also potent Src inhibitors. Here we present crystal structures of Abl bound by two such inhibitors, based on a common N9-arenyl purine, and that represent both DFG-in and -out binding modes. In each structure the purine template is bound deeply in the adenine pocket and the novel vinyl linker forms a non-classical hydrogen bond to the gatekeeper residue, Thr315. Specific template substitutions promote either a DFG-in or -out binding mode, with the kinase binding site adjusting to optimize molecular recognition. Bcr-Abl T315I mutant kinase is resistant to all currently marketed Abl inhibitors, and is the focus of intense drug discovery efforts. Notably, our DFG-out inhibitor, AP24163, exhibits modest activity against this mutant, illustrating that this kinase mutant can be inhibited by DFG-out class inhibitors. Furthermore our DFG-out inhibitor exhibits dual Src-Abl activity, absent from the prototypical DFG-out inhibitor, imatinib as well as its analog, nilotinib. The data presented here provides structural guidance for the further design of novel potent DFG-out class inhibitors against Src, Abl and Abl T315I mutant kinases.
Insights
New purine-based inhibitors show promise against resistant chronic myeloid leukemia (CML) by targeting the Bcr-Abl kinase, including the challenging T315I mutation. These inhibitors offer dual Src-Abl activity and provide structural insights for future drug development.
Area of Science:
- Biochemistry
- Structural Biology
- Medicinal Chemistry
Background:
- Bcr-Abl kinase drives chronic myeloid leukemia (CML).
- Imatinib resistance emerges due to mutations, particularly the T315I gatekeeper mutation.
- Development of mutation-resistant inhibitors is crucial for advanced CML treatment.
Purpose of the Study:
- Discover novel mutation-resistant Abl inhibitors.
- Optimize purine-based kinase inhibitors for potent Abl and Src inhibition.
- Provide structural basis for designing inhibitors targeting resistant Bcr-Abl mutants.
Main Methods:
- Synthesized and optimized N9-arenyl purine derivatives.
- Determined crystal structures of Abl kinase bound to novel inhibitors.
- Assessed inhibitor activity against wild-type and mutant Bcr-Abl and Src kinases.
Main Results:
- Identified potent DFG-in and DFG-out Abl inhibitors with dual Src activity.
- Crystal structures reveal novel vinyl linker interaction with the T315 gatekeeper residue.
- DFG-out inhibitor AP24163 shows modest activity against the T315I mutant kinase.
Conclusions:
- Purine-based inhibitors can overcome Bcr-Abl T315I resistance.
- Structural data guides the design of next-generation Src-Abl inhibitors.
- DFG-out inhibitors represent a viable strategy against resistant Bcr-Abl kinases.
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