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A Method for Screening and Validation of Resistant Mutations Against Kinase Inhibitors
Published on: December 7, 2014
Abnormalities in glucose uptake and metabolism in imatinib-resistant human BCR-ABL-positive cells
Douglas J Kominsky1, Jelena Klawitter, Jaimi L Brown
1Department of Anesthesiology, University of Colorado Health Sciences Center, Denver, CO, USA. Douglas.Kominsky@ucdenver.edu
Abstract:
The development of imatinib resistance has become a significant therapeutic problem in which the etiology seems to be multifactorial and poorly understood. As of today, clinical criteria to predict the development of imatinib resistance in chronic myelogenous leukemia (CML), other than rebound of the myeloproliferation, are under development. However, there is evidence that the control of glucose-substrate flux is an important mechanism of the antiproliferative action of imatinib because imatinib-resistant gastrointestinal stromal KIT-positive tumors reveal highly elevated glucose uptake in radiologic images. We used nuclear magnetic resonance spectroscopy and gas chromatography mass spectrometry to assess (13)C glucose uptake and metabolism (glycolysis, TCA cycle, and nucleic acid ribose synthesis) during imatinib treatment in CML cell lines with different sensitivities to imatinib. Our results show that sensitive K562-s and LAMA84-s BCR-ABL-positive cells have decreased glucose uptake, decreased lactate production, and an improved oxidative TCA cycle following imatinib treatment. The resistant K562-r and LAMA84-r cells maintained a highly glycolytic metabolic phenotype with elevated glucose uptake and lactate production. In addition, oxidative synthesis of RNA ribose from (13)C-glucose via glucose-6-phosphate dehydrogenase was decreased, and RNA synthesis via the nonoxidative transketolase pathway was increased in imatinib-resistant cells. CML cells which exhibited a (oxidative/nonoxidative) flux ratio for nucleic acid ribose synthesis of >1 were sensitive to imatinib. The resistant K562-r and LAMA84-r exhibited a (oxidative/nonoxidative) flux ratio of <0.7. The changes in glucose uptake and metabolism were accompanied by intracellular translocation of GLUT-1 from the plasma membrane into the intracellular fraction in sensitive cells treated with imatinib, whereas GLUT-1 remained located at the plasma membrane in LAMA84-r and K562-r cells. The total protein load of GLUT-1 was unchanged among treated sensitive and resistant cell lines. In summary, elevated glucose uptake and nonoxidative glycolytic metabolic phenotype can be used as sensitive markers for early detection of imatinib resistance in BCR-ABL-positive cells.
Insights
Imatinib resistance in chronic myelogenous leukemia (CML) is linked to altered glucose metabolism. Elevated glucose uptake and a nonoxidative glycolytic phenotype in BCR-ABL-positive cells signal early imatinib resistance.
Area of Science:
- Biochemistry
- Oncology
- Molecular Biology
Background:
- Imatinib resistance is a major challenge in treating chronic myelogenous leukemia (CML).
- The mechanisms driving imatinib resistance are multifactorial and not fully understood.
- Altered glucose metabolism is implicated in imatinib-resistant tumors.
Purpose of the Study:
- To investigate the role of glucose uptake and metabolism in imatinib resistance in CML.
- To identify metabolic markers for the early detection of imatinib resistance.
Main Methods:
- Utilized nuclear magnetic resonance spectroscopy and gas chromatography mass spectrometry.
- Assessed (13)C glucose uptake and metabolism in imatinib-sensitive and resistant CML cell lines.
- Analyzed glycolysis, TCA cycle, nucleic acid ribose synthesis, and GLUT-1 transporter localization.
Main Results:
- Sensitive CML cells showed decreased glucose uptake and lactate production, with improved TCA cycle activity post-imatinib treatment.
- Resistant CML cells maintained a highly glycolytic phenotype with elevated glucose uptake and lactate production.
- Imatinib-resistant cells displayed decreased oxidative RNA ribose synthesis and increased nonoxidative pathway flux, with GLUT-1 remaining at the plasma membrane.
Conclusions:
- Elevated glucose uptake and a nonoxidative glycolytic phenotype are sensitive markers for early imatinib resistance detection in BCR-ABL-positive cells.
- The oxidative/nonoxidative flux ratio for nucleic acid ribose synthesis can distinguish between sensitive and resistant CML cells.
- GLUT-1 transporter localization is altered in response to imatinib treatment, differing between sensitive and resistant cells.
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