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Updated: Jun 25, 2026

A Method for Screening and Validation of Resistant Mutations Against Kinase Inhibitors
Published on: December 7, 2014
P-loop mutations and novel therapeutic approaches for imatinib failures in chronic myeloid leukemia
1Division of Hematology/Oncology, New York Medical College, Valhalla, NY 10595, USA. cangshundong@163.com
Abstract:
Imatinib was the first BCR-ABL-targeted agent approved for the treatment of patients with chronic myeloid leukemia (CML) and confers significant benefit for most patients; however, a substantial number of patients are either initially refractory or develop resistance. Point mutations within the ABL kinase domain of the BCR-ABL fusion protein are a major underlying cause of resistance. Of the known imatinib-resistant mutations, the most frequently occurring involve the ATP-binding loop (P-loop). In vitro evidence has suggested that these mutations are more oncogenic with respect to other mutations and wild type BCR-ABL. Dasatinib and nilotinib have been approved for second-line treatment of patients with CML who demonstrate resistance (or intolerance) to imatinib. Both agents have marked activity in patients resistant to imatinib; however, they have differential activity against certain mutations, including those of the P-loop. Data from clinical trials suggest that dasatinib may be more effective vs. nilotinib for treating patients harboring P-loop mutations. Other mutations that are differentially sensitive to the second-line tyrosine kinase inhibitors (TKIs) include F317L and F359I/V, which are more sensitive to nilotinib and dasatinib, respectively. P-loop status in patients with CML and the potency of TKIs against P-loop mutations are key determinants for prognosis and response to treatment. This communication reviews the clinical importance of P-loop mutations and the efficacy of the currently available TKIs against them.
Insights
Imatinib resistance in chronic myeloid leukemia (CML) often stems from BCR-ABL kinase domain mutations, particularly in the ATP-binding loop (P-loop). Second-line therapies like dasatinib and nilotinib show differential efficacy against these P-loop mutations.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Imatinib is a first-generation BCR-ABL tyrosine kinase inhibitor (TKI) for chronic myeloid leukemia (CML).
- A significant number of CML patients develop resistance to imatinib, primarily due to point mutations in the BCR-ABL kinase domain.
- Mutations within the ATP-binding loop (P-loop) are common and associated with increased oncogenicity.
Purpose of the Study:
- To review the clinical significance of P-loop mutations in imatinib-resistant CML.
- To evaluate the efficacy of second-line TKIs (dasatinib and nilotinib) against specific BCR-ABL mutations, especially P-loop mutations.
Main Methods:
- Literature review of clinical trials and in vitro studies.
- Analysis of differential activity of dasatinib and nilotinib against various BCR-ABL mutations.
- Focus on P-loop mutations and their impact on TKI response.
Main Results:
- P-loop mutations are a major cause of imatinib resistance in CML.
- Dasatinib and nilotinib demonstrate activity against imatinib-resistant mutations but have differential efficacy.
- Clinical data suggest dasatinib may be more effective than nilotinib for P-loop mutations; F317L is more sensitive to nilotinib, while F359I/V is more sensitive to dasatinib.
Conclusions:
- P-loop mutation status is a critical determinant of treatment response and prognosis in CML patients.
- Understanding TKI potency against specific mutations is essential for optimizing CML therapy.
- Targeted TKI selection based on mutation profile can improve outcomes for CML patients resistant to imatinib.
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