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Pre-clinical Evaluation of Tyrosine Kinase Inhibitors for Treatment of Acute Leukemia
Published on: September 19, 2013
Imatinib (STI571)-mediated changes in glucose metabolism in human leukemia BCR-ABL-positive cells
Sven Gottschalk1, Nora Anderson, Carsten Hainz
1Department of Biology/Chemistry, University of Bremen, Bremen, Germany.
Abstract:
The therapeutic efficacy of imatinib mesylate (Gleevec) is based on its specific inhibition of the BCR-ABL oncogene protein, a widely expressed tyrosine kinase in chronic myelogenous leukemia (CML) cells. The goal of this study was to evaluate glucose metabolism in BCR-ABL-positive cells that are sensitive to imatinib exposure. Two human BCR-ABL-positive cell lines (CML-T1 and K562) and one BCR-ABL-negative cell line (HC-1) were incubated with different imatinib concentrations for 96 hours. Magnetic resonance spectroscopy on cell acid extracts was performed to evaluate [1-13C]glucose metabolism, energy state, and changes in endogenous metabolites after incubation with imatinib. Imatinib induced a concentration-dependent inhibition of cell proliferation in CML-T1 (IC50, 0.69 +/- 0.06 micromol/L) and K562 cells (IC50, 0.47 +/- 0.04 micromol/L), but not in HC-1 cells. There were no metabolic changes in imatinib-treated HC-1 cells. In BCR-ABL-positive cells, the relevant therapeutic concentrations of imatinib (0.1-1.0 micromol/L) decreased glucose uptake from the media by suppressing glycolytic cell activity (C3-lactate at 0.25 mmol/L, 65% for K562 and 77% for CML-T1 versus control). Additionally, the activity of the mitochondrial Krebs cycle was increased (C4-glutamate at 0.25 micromol/L, 147% for K562 and 170% for CML-T1). The improvement in mitochondrial glucose metabolism resulted in an increased energy state (nucleoside triphosphate/nucleoside diphosphate at 0.25 micromol/L, 130% for K562 and 125% for CML-T1). Apoptosis was observed at higher concentrations. Unlike standard chemotherapeutics, imatinib, without cytocidal activity, reverses the Warburg effect in BCR-ABL-positive cells by switching from glycolysis to mitochondrial glucose metabolism, resulting in decreased glucose uptake and higher energy state.
Insights
Imatinib reverses the Warburg effect in BCR-ABL-positive cancer cells by shifting glucose metabolism from glycolysis to mitochondria. This increases cellular energy without direct cell killing, offering a novel therapeutic approach for chronic myelogenous leukemia.
Area of Science:
- Biochemistry
- Molecular Biology
- Oncology
Background:
- Imatinib mesylate (Gleevec) targets the BCR-ABL oncogene protein, crucial in chronic myelogenous leukemia (CML).
- Understanding imatinib's impact on glucose metabolism in CML cells is vital for therapeutic insights.
Purpose of the Study:
- To evaluate glucose metabolism and energy state changes in BCR-ABL-positive CML cells following imatinib treatment.
- To investigate imatinib's effect on the Warburg effect in CML cells.
Main Methods:
- Utilized two human BCR-ABL-positive (CML-T1, K562) and one BCR-ABL-negative (HC-1) cell lines.
- Incubated cells with varying imatinib concentrations for 96 hours.
- Employed magnetic resonance spectroscopy on [1-13C]glucose to analyze metabolic pathways and endogenous metabolites.
Main Results:
- Imatinib demonstrated concentration-dependent inhibition of proliferation in BCR-ABL-positive cells, with no effect on HC-1 cells.
- Therapeutic imatinib concentrations suppressed glycolytic activity and decreased glucose uptake in CML cells.
- Mitochondrial Krebs cycle activity and cellular energy state (NTP/NDP ratio) significantly increased in treated CML cells.
Conclusions:
- Imatinib reverses the Warburg effect in BCR-ABL-positive cells by promoting mitochondrial metabolism over glycolysis.
- This metabolic shift enhances cellular energy state without inducing apoptosis at therapeutic concentrations.
- Imatinib offers a non-cytocidal strategy to modulate cancer cell metabolism, distinct from traditional chemotherapeutics.
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