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Targeting mTOR/p70S6K/glycolysis signaling pathway restores glucocorticoid sensitivity to 4E-BP1 null Burkitt
Ling Gu1, Liping Xie2, Chuan Zuo3
1Laboratory of Hematology/Oncology, Department of Pediatric Hematology/ Oncology, Key Laboratory of Birth Defects and Related Diseases of Women and Children (Ministry of Education), West China Second University Hospital, Sichuan University, Chengdu, 610041, China. guling00@163.com.
Background:
Increasing evidence indicates that rapamycin could be used as a potential glucocorticoid (GC) sensitizer in lymphoblastic malignancies via genetic prevention of 4E-BP1 phosphorylation. Interestingly, we found that combined rapamycin with dexamethasone can effectively reverse GC resistance in 4E-BP1 null lymphoma cells. In this study, we investigated the potential link between mTOR/p70S6K signaling pathway, glycolysis, autophagy and GC resistance.
Methods:
Antitumor effects of the combination of rapamycin and dexamethasone were evaluated on cell viability by MTT assay and in vivo studies, on cell cycle and apoptosis by flow cytometry, on autophagy by western blot, MDC staining and transmission electron microscopy and on cell signaling by western blot. Moreover, to test whether inhibiting glycolysis is the core mechanism in rapamycin restoring GC sensitivity, we took glycolysis inhibitor 2-deoxyglucose to replace rapamycin and then evaluated the antitumor effects in vitro.
Results:
Raji cells are resistant to rapamycin (IC50 > 1000 nM) or dexamethasone (IC50 > 100 μM) treatment alone. The combination of rapamycin and dexamethasone synergistically inhibited the viability of Raji cells in vitro and in vivo by inducing caspase-dependent and -independent cell death and G0/G1 cell cycle arrest. These effects were achieved by the inhibition of mTOR/p70S6K signaling pathway, which led to the inhibition of glycolysis and the induction of autophagy. Pretreatment with pan-caspase inhibitor z-VAD-fmk or autophagy inhibitor 3-MA failed to protect the cells from combined treatment-induced death. Glycolysis inhibitor combined with dexamethasone produced a similar antitumor effects in vitro.
Conclusions:
Inhibition of mTOR/p70S6K/glycolysis signaling pathway is the key point of therapy in reversing GC resistant in Burkitt lymphoma patients.
Insights
Combining rapamycin and dexamethasone overcomes glucocorticoid resistance in lymphoma by inhibiting mTOR/p70S6K signaling, glycolysis, and inducing autophagy. This targeted therapy offers a new strategy for treating resistant Burkitt lymphoma.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- Glucocorticoids (GCs) are standard therapy for lymphoblastic malignancies.
- GC resistance is a major challenge in treating these cancers.
- Rapamycin shows potential as a GC sensitizer by inhibiting 4E-BP1 phosphorylation.
Purpose of the Study:
- To investigate the combined effects of rapamycin and dexamethasone on GC-resistant lymphoma cells.
- To elucidate the underlying molecular mechanisms, including the mTOR/p70S6K pathway, glycolysis, and autophagy.
- To determine the role of glycolysis inhibition in restoring GC sensitivity.
Main Methods:
- Cell viability assays (MTT) and in vivo studies.
- Flow cytometry for cell cycle and apoptosis analysis.
- Western blotting, MDC staining, and electron microscopy for autophagy assessment.
- Glycolysis inhibition using 2-deoxyglucose as a comparator.
Main Results:
- Combined rapamycin and dexamethasone synergistically reduced Raji cell viability in vitro and in vivo.
- The combination induced caspase-dependent/independent cell death and G0/G1 cell cycle arrest.
- Inhibition of the mTOR/p70S6K pathway led to suppressed glycolysis and induced autophagy.
- Glycolysis inhibition mimicked the antitumor effects of rapamycin in combination with dexamethasone.
Conclusions:
- Inhibition of the mTOR/p70S6K/glycolysis pathway is crucial for reversing GC resistance in Burkitt lymphoma.
- This pathway represents a key therapeutic target for overcoming GC resistance in these malignancies.
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