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BCR-ABL triggers a glucose-dependent survival program during leukemogenesis through the suppression of TXNIP
Lin Feng1,2, Ruxin Ding3, Xuan Qu2
1Key Laboratory of Microecology-immune Regulatory Network and Related Diseases, School of Basic Medicine, Jiamusi University, Jiamusi, Heilongjiang, China.
Abstract:
Imatinib is highly effective in the treatment of chronic myelogenous leukemia (CML), but the primary and acquired imatinib resistance remains the big hurdle. Molecular mechanisms for CML resistance to tyrosine kinase inhibitors, beyond point mutations in BCR-ABL kinase domain, still need to be addressed. Here, we demonstrated that thioredoxin-interacting protein (TXNIP) is a novel BCR-ABL target gene. Suppression of TXNIP was responsible for BCR-ABL triggered glucose metabolic reprogramming and mitochondrial homeostasis. Mechanistically, Miz-1/P300 complex transactivates TXNIP through the recognition of TXNIP core promoter region, responding to the c-Myc suppression by either imatinib or BCR-ABL knockdown. TXNIP restoration sensitizes CML cells to imatinib treatment and compromises imatinib resistant CML cell survival, predominantly through the blockage of both glycolysis and glucose oxidation which results in the mitochondrial dysfunction and ATP production. In particular, TXNIP suppresses expressions of the key glycolytic enzyme, hexokinase 2 (HK2), and lactate dehydrogenase A (LDHA), potentially through Fbw7-dependent c-Myc degradation. In accordance, BCR-ABL suppression of TXNIP provided a novel survival pathway for the transformation of mouse bone marrow cells. Knockout of TXNIP accelerated BCR-ABL transformation, whereas TXNIP overexpression suppressed this transformation. Combination of drug inducing TXNIP expression with imatinib synergistically kills CML cells from patients and further extends the survival of CML mice. Thus, the activation of TXNIP represents an effective strategy for CML treatment to overcome resistance.
Insights
Thioredoxin-interacting protein (TXNIP) is a novel target gene that, when activated, overcomes imatinib resistance in chronic myelogenous leukemia (CML). Restoring TXNIP sensitizes CML cells to imatinib by disrupting glucose metabolism and mitochondrial function.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Imatinib is a cornerstone therapy for chronic myelogenous leukemia (CML).
- Primary and acquired imatinib resistance significantly limits treatment efficacy.
- Mechanisms of resistance beyond BCR-ABL mutations require further elucidation.
Purpose of the Study:
- To identify novel molecular targets involved in CML resistance to tyrosine kinase inhibitors.
- To investigate the role of thioredoxin-interacting protein (TXNIP) in BCR-ABL-mediated CML.
- To explore TXNIP activation as a therapeutic strategy against imatinib-resistant CML.
Main Methods:
- Demonstrated TXNIP as a novel BCR-ABL target gene.
- Investigated TXNIP's role in glucose metabolism and mitochondrial homeostasis.
- Analyzed the Miz-1/P300 complex in TXNIP transactivation.
- Assessed TXNIP's impact on CML cell survival and mouse models.
Main Results:
- BCR-ABL suppresses TXNIP, leading to metabolic reprogramming and mitochondrial dysfunction.
- TXNIP restoration sensitizes CML cells to imatinib by blocking glycolysis and glucose oxidation.
- TXNIP suppresses hexokinase 2 (HK2) and lactate dehydrogenase A (LDHA) expression.
- TXNIP knockout accelerates BCR-ABL transformation, while overexpression suppresses it.
Conclusions:
- TXNIP is a critical regulator of CML cell metabolism and survival.
- Activating TXNIP overcomes imatinib resistance by inducing mitochondrial dysfunction.
- Combination therapy with TXNIP-inducing drugs and imatinib shows synergistic efficacy in CML treatment.
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