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Updated: Sep 28, 2026

A Method for Screening and Validation of Resistant Mutations Against Kinase Inhibitors
Published on: December 7, 2014
Molecular and chromosomal mechanisms of resistance to imatinib (STI571) therapy
A Hochhaus1, S Kreil, A S Corbin
1III. Medizinische Universitätsklinik, Fakultät für Klinische Medizin Mannheim der Universität Heidelberg, Germany.
Abstract:
Selective inhibition of the BCR-ABL tyrosine kinase by imatinib (STI571, Glivec/Gleevec) is a promising new therapeutic strategy in patients with chronic myelogenous leukemia (CML). Despite significant hematologic and cytogenetic responses, resistance occurs, particularly in patients with advanced disease. We sought to determine the underlying mechanisms. Sixty-six patients with CML in myeloid blast crisis (n = 33), lymphoid blast crisis (n = 2), accelerated phase (n = 16), chronic phase (n = 13), and BCR-ABL-positive acute lymphoblastic leukemia (n = 2) resistant to imatinib were investigated. Median duration of imatinib therapy was 148 days (range 6-882). Patients were evaluated for genomic amplification of BCR-ABL, overexpression of BCR-ABL transcripts, clonal karyotypic evolution, and mutations of the imatinib binding site in the BCR-ABL tyrosine kinase domain. Results were as follows: (1) Median levels of BCR-ABL transcripts, were not significantly changed at the time of resistance but 7/55 patients showed a >10-fold increase in BCR-ABL levels; (2) genomic amplification of BCR-ABL was found in 2/32 patients evaluated by fluorescence in situ hybridization; (3) additional chromosomal aberrations were observed in 19/36 patients; (4) point mutations of the ABL tyrosine kinase domain resulting in reactivation of the BCR-ABL tyrosine kinase were detected in 23/66 patients. In conclusion, although the heterogeneous development of imatinib resistance is challenging, the fact that BCR-ABL is active in many resistant patients suggests that the chimeric oncoprotein remains a good therapeutic target. However, patients with clonal evolution are more likely to have BCR-ABL-independent mechanisms of resistance. The observations warrant trials combining imatinib with other agents.
Insights
Imatinib resistance in chronic myelogenous leukemia (CML) can stem from BCR-ABL mutations or clonal evolution. Despite resistance, BCR-ABL remains a target, suggesting combination therapies may overcome treatment challenges.
Area of Science:
- Hematology
- Oncology
- Molecular Biology
Background:
- Imatinib is a targeted therapy for chronic myelogenous leukemia (CML) by inhibiting the BCR-ABL tyrosine kinase.
- Resistance to imatinib develops in some CML patients, particularly those with advanced disease.
- Understanding resistance mechanisms is crucial for improving CML treatment outcomes.
Purpose of the Study:
- To investigate the mechanisms of imatinib resistance in patients with chronic myelogenous leukemia (CML) and BCR-ABL-positive acute lymphoblastic leukemia (ALL).
- To evaluate genomic amplification, transcript overexpression, clonal evolution, and mutations in the BCR-ABL tyrosine kinase domain.
Main Methods:
- Analysis of 66 patients with imatinib-resistant CML and BCR-ABL-positive ALL.
- Assessment of BCR-ABL transcript levels, BCR-ABL gene amplification (FISH), chromosomal aberrations, and ABL kinase domain mutations.
Main Results:
- BCR-ABL mutations were detected in 23/66 patients, reactivating tyrosine kinase activity.
- Clonal karyotypic evolution with additional chromosomal aberrations was observed in 19/36 patients.
- BCR-ABL amplification and significant transcript overexpression were less common.
Conclusions:
- Imatinib resistance in CML is heterogeneous, involving BCR-ABL mutations and clonal evolution.
- BCR-ABL remains a viable therapeutic target in many resistant cases.
- Combination therapies involving imatinib may be necessary to overcome resistance, especially in cases with clonal evolution.
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