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Updated: Aug 14, 2026

A Method for Screening and Validation of Resistant Mutations Against Kinase Inhibitors
Published on: December 7, 2014
[Resistance to tumor specific therapy with imatinib by clonal selection of mutated cells]
M C Müller1, T Lahaye, A Hochhaus
1III. Medizinische Klinik, Fakultät für Klinische Medizin Mannheim der Universität Heidelberg, Mannheim. mueller@uni-hd.de
History And Clinical Findings:
A 60-year-old woman presented with night-sweats and increasing weakness. Physical examination revealed no abnormalities. For 27 years she had been treated for Philadelphia-positive chronic myeloid leukemia (CML). Because of progressive disease treatment with the tyrosine kinase inhibitor imatinib (STI571, Glivec (R)) had been started 9 months before. She had achieved complete hematological remission within 8 weeks, but not a cytogenetic response.
Investigations:
Elevated WBC count (26.7/nl) with a differential displaying typical features of acceleration in bone marrow aspirate confirmed CML in accelerated phase. Sequencing of the ATP binding site of the BCR-ABL gene, which - at protein level - is the target for imatinib, revealed the clonal selection of cells harboring a point mutation leading to the exchange of amino acid 253 from tyrosine to histidine. This was considered to be the cause of resistance to imatinib.
Treatment And Course:
Dose increase of imatinib up to 600 mg daily and administration of cytarabine did not overcome resistance. Imatinib therapy was discontinued; hematologic remission was induced by oral therapy with hydroxyurea and mercaptopurine. In the course of the following 6 months a gradual decrease of the resistant clone from 100 % down to lower than the detection limit of the method was demonstrated.
Conclusions:
Clonal mutations are often the cause of resistance to imatinib therapy. They can be detected by sequencing of the ATP binding site of BCR-ABL in specialized laboratories. This case shows that discontinuation of imatinib therapy can significantly reduce the mutated (resistant) clone and thereby restore sensitivity to imatinib.
Insights
Resistance to imatinib therapy in chronic myeloid leukemia (CML) can be caused by BCR-ABL gene mutations. Discontinuing imatinib can reduce the resistant clone, restoring sensitivity.
Area of Science:
- Hematology
- Molecular Biology
- Oncology
Background:
- A patient with Philadelphia-chromosome-positive chronic myeloid leukemia (CML) developed resistance to imatinib therapy.
- Despite achieving hematologic remission, cytogenetic response was not observed, indicating progressive disease.
Observation:
- Accelerated phase CML was confirmed by elevated white blood cell count and bone marrow aspirate findings.
- Sequencing revealed a BCR-ABL gene mutation (T351I) in the ATP binding site, identified as the cause of imatinib resistance.
Findings:
- Standard resistance-overcoming strategies, including imatinib dose escalation and cytarabine, were ineffective.
- Discontinuation of imatinib, coupled with hydroxyurea and mercaptopurine, induced hematologic remission.
- A significant reduction in the mutated clone was observed over six months, falling below detection limits.
Implications:
- BCR-ABL mutations are a key mechanism of imatinib resistance in CML.
- Detecting these mutations via BCR-ABL gene sequencing is crucial for guiding treatment.
- Therapeutic discontinuation of imatinib can effectively reduce resistant clones, potentially re-sensitizing patients to the drug.
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