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Updated: Aug 25, 2026

Kinase Inhibitor Screening In Self-assembled Human Protein Microarrays
Published on: October 23, 2019
Ascorbic acid restores sensitivity to imatinib via suppression of Nrf2-dependent gene expression in the
Takahisa Tarumoto1, Tadashi Nagai, Ken Ohmine
1Division of Hematology, Jichi Medical School, Tochigi, Japan.
Objective:
Imatinib, a BCR/ABL tyrosine kinase inhibitor, has shown remarkable clinical effects in chronic myelogenous leukemia. However, the leukemia cells become resistant to this drug in most blast crisis cases. The transcription factor Nrf2 regulates the gene expression of a number of detoxifying enzymes such as gamma-glutamylcysteine synthetase (gamma-GCS), the rate-limiting enzyme in glutathione (GSH) synthesis, via the antioxidant response element (ARE). In this study, we examined the involvement of Nrf2 in the acquisition of resistance to imatinib. Since oxidative stress promotes the translocation of Nrf2 from the cytoplasm to the nucleus, we also examined whether ascorbic acid, a reducing reagent, can overcome the resistance to imatinib by inhibiting Nrf2 activity.
Results:
Binding of Nrf2 to the ARE of the gamma-GCS light subunit (gamma-GCSl) gene promoter was much stronger in the imatinib-resistant cell line KCL22/SR than in the parental imatinib-sensitive cell line KCL22. The levels of gamma-GCSl mRNA and GSH were higher in KCL22/SR cells, a finding consistent with the observation of an increase in Nrf2-DNA binding. Addition of a GSH monoester to KCL22 cells resulted in an increase in the IC(50) value of imatinib. In contrast, addition of ascorbic acid to KCL22/SR cells resulted in a decrease in Nrf2-DNA binding and decreases in levels of gamma-GCSl mRNA and GSH. Consistent with these findings, ascorbic acid partly restored imatinib sensitivity to KCL22/SR.
Conclusion:
Changes in the redox state caused by antioxidants such as ascorbic acid can overcome resistance to imatinib via inhibition of Nrf2-mediated gene expression.
Insights
Imatinib resistance in leukemia can be overcome by ascorbic acid, which inhibits the Nrf2 pathway. This antioxidant approach restores sensitivity to imatinib by reducing glutathione synthesis.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Imatinib is a tyrosine kinase inhibitor effective against chronic myelogenous leukemia.
- Leukemia cells frequently develop resistance to imatinib, particularly in blast crisis.
- The transcription factor Nrf2 regulates detoxifying enzymes, including gamma-glutamylcysteine synthetase (gamma-GCS), crucial for glutathione (GSH) synthesis via the antioxidant response element (ARE).
Purpose of the Study:
- To investigate the role of Nrf2 in the development of imatinib resistance.
- To determine if ascorbic acid, an antioxidant, can overcome imatinib resistance by inhibiting Nrf2 activity.
Main Methods:
- Compared Nrf2-ARE binding, gamma-GCS light subunit (gamma-GCSl) mRNA, and GSH levels in imatinib-sensitive (KCL22) and resistant (KCL22/SR) cell lines.
- Assessed the effect of GSH monoester on imatinib sensitivity in KCL22 cells.
- Evaluated the impact of ascorbic acid on Nrf2-DNA binding, gamma-GCSl mRNA, GSH levels, and imatinib sensitivity in KCL22/SR cells.
Main Results:
- Nrf2-ARE binding, gamma-GCSl mRNA, and GSH levels were significantly higher in imatinib-resistant KCL22/SR cells compared to KCL22 cells.
- Ascorbic acid treatment reduced Nrf2-DNA binding, gamma-GCSl mRNA, and GSH levels in KCL22/SR cells.
- Ascorbic acid partially restored imatinib sensitivity in KCL22/SR cells.
Conclusions:
- Nrf2-mediated gene expression contributes to imatinib resistance in leukemia.
- Modulating the cellular redox state with antioxidants like ascorbic acid can overcome imatinib resistance by inhibiting Nrf2 activity.
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