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Updated: May 3, 2026

A Method for Screening and Validation of Resistant Mutations Against Kinase Inhibitors
Published on: December 7, 2014
Sequential ABL kinase inhibitor therapy selects for compound drug-resistant BCR-ABL mutations with altered oncogenic
Neil P Shah1, Brian J Skaggs, Susan Branford
1Division of Hematology/Oncology, Department of Medicine, UCSF School of Medicine, San Francisco, California, USA.
Abstract:
Molecularly targeted kinase inhibitor cancer therapies are currently administered sequentially rather than simultaneously. We addressed the potential long-term impact of this strategy in patients with chronic myelogenous leukemia (CML), which is driven by the fusion oncogene BCR-ABL. Analysis of BCR-ABL genotypes in CML patients who relapsed after sequential treatment with the ABL inhibitors imatinib and dasatinib revealed evolving resistant BCR-ABL kinase domain mutations in all cases. Twelve patients relapsed with the pan-resistant T315I mutation, whereas 6 patients developed novel BCR-ABL mutations predicted to retain sensitivity to imatinib based on in vitro studies. Three of these patients were retreated with imatinib (or the chemically related compound nilotinib) and responded; however, selection for compound mutants (2 or 3 BCR-ABL mutations in the same molecule) can substantially limit the potential effectiveness of retreating patients with inhibitors that have previously failed. Furthermore, drug-resistant mutations, when compounded, can increase oncogenic potency relative to the component mutants in transformation assays. The Aurora kinase inhibitor VX-680, currently under clinical evaluation based on its activity against the T315I mutation, is also effective against the other commonly detected dasatinib-resistant mutation in our analysis, V299L. Our findings demonstrate the potential hazards of sequential kinase inhibitor therapy and suggest a role for a combination of ABL kinase inhibitors, perhaps including VX-680, to prevent the outgrowth of cells harboring drug-resistant BCR-ABL mutations.
Insights
Sequential kinase inhibitor therapy for chronic myelogenous leukemia (CML) can lead to drug-resistant BCR-ABL mutations. Combination therapy may prevent resistance and improve long-term outcomes for CML patients.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Chronic myelogenous leukemia (CML) is driven by the BCR-ABL oncogene.
- Current CML treatments involve sequential administration of molecularly targeted kinase inhibitors.
- The long-term impact of sequential therapy on resistance development is not fully understood.
Purpose of the Study:
- To investigate the impact of sequential ABL kinase inhibitor therapy on BCR-ABL mutation evolution in CML patients.
- To identify resistance mechanisms and evaluate potential alternative therapeutic strategies.
Main Methods:
- Analysis of BCR-ABL genotypes in CML patients who relapsed after sequential imatinib and dasatinib treatment.
- In vitro studies to assess drug sensitivity of novel BCR-ABL mutations.
- Evaluation of Aurora kinase inhibitor VX-680 activity against resistant mutations.
Main Results:
- All relapsed CML patients exhibited evolving resistant BCR-ABL kinase domain mutations.
- Twelve patients developed the pan-resistant T315I mutation; 6 developed novel mutations.
- Retreatment with imatinib/nilotinib showed initial response, but compound mutants limited effectiveness.
- Compounded drug-resistant mutations increased oncogenic potency.
Conclusions:
- Sequential kinase inhibitor therapy poses risks of resistance development in CML.
- Combination therapy, potentially including VX-680, may prevent outgrowth of resistant BCR-ABL mutations.
- Combination strategies could offer a more effective approach to CML treatment.
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