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Published on: January 7, 2019
Suppression of programmed cell death 4 (PDCD4) protein expression by BCR-ABL-regulated engagement of the mTOR/p70 S6
Nathalie Carayol1, Efstratios Katsoulidis, Antonella Sassano
1Robert H Lurie Comprehensive Cancer Center and Division of Hematology/Oncology, Northwestern University Medical School and Jesse Brown Veterans Affairs Medical Center, Chicago, IL 60611, USA.
Abstract:
There is accumulating evidence that mammalian target of rapamycin (mTOR)-activated pathways play important roles in cell growth and survival of BCR-ABL-transformed cells. We have previously shown that the mTOR/p70 S6 kinase (p70 S6K) pathway is constitutively activated in BCR-ABL transformed cells and that inhibition of BCR-ABL kinase activity by imatinib mesylate abrogates such activation. We now provide evidence for the existence of a novel regulatory mechanism by which BCR-ABL promotes cell proliferation, involving p70 S6K-mediated suppression of expression of programmed cell death 4 (PDCD4), a tumor suppressor protein that acts as an inhibitor of cap-dependent translation by blocking the translation initiation factor eIF4A. Our data also establish that second generation BCR-ABL kinase inhibitors block activation of p70 S6K and downstream engagement of the S6 ribosomal protein in BCR-ABL transformed cells. Moreover, PDCD4 protein expression is up-regulated by inhibition of the BCR-ABL kinase in K562 cells and BaF3/BCR-ABL transfectants, suggesting a mechanism for the generation of the proapoptotic effects of such inhibitors. Knockdown of PDCD4 expression results in reversal of the suppressive effects of nilotinib and imatinib mesylate on leukemic progenitor colony formation, suggesting an important role for this protein in the generation of antileukemic responses. Altogether, our studies identify a novel mechanism by which BCR-ABL may promote leukemic cell growth, involving sequential engagement of the mTOR/p70 S6K pathway and downstream suppression of PDCD4 expression.
Insights
BCR-ABL activates mTOR/p70 S6K, suppressing tumor suppressor PDCD4 to promote leukemia cell growth. Inhibitors restore PDCD4, enhancing anti-leukemic effects by blocking this pathway.
Area of Science:
- Oncology
- Molecular Biology
- Cell Signaling
Background:
- Mammalian target of rapamycin (mTOR)-activated pathways are crucial for BCR-ABL-transformed cell growth and survival.
- The mTOR/p70 S6 kinase (p70 S6K) pathway is constitutively active in BCR-ABL transformed cells.
- Imatinib mesylate inhibits BCR-ABL kinase activity and abrogates mTOR/p70 S6K activation.
Purpose of the Study:
- To elucidate a novel regulatory mechanism by which BCR-ABL promotes cell proliferation.
- To investigate the role of p70 S6K-mediated suppression of programmed cell death 4 (PDCD4) in leukemia.
- To evaluate the efficacy of second-generation BCR-ABL kinase inhibitors.
Main Methods:
- Investigated the constitutive activation of the mTOR/p70 S6K pathway in BCR-ABL transformed cells.
- Assessed the effect of BCR-ABL kinase inhibitors on p70 S6K activation and PDCD4 expression.
- Utilized knockdown of PDCD4 to determine its role in antileukemic responses.
Main Results:
- BCR-ABL promotes proliferation via p70 S6K-mediated suppression of the tumor suppressor PDCD4.
- Second-generation BCR-ABL kinase inhibitors block p70 S6K activation and S6 ribosomal protein engagement.
- PDCD4 expression is upregulated by BCR-ABL kinase inhibition, contributing to proapoptotic effects.
Conclusions:
- A novel mechanism of leukemic cell growth involves BCR-ABL engaging the mTOR/p70 S6K pathway and suppressing PDCD4.
- PDCD4 plays a critical role in the antileukemic responses generated by BCR-ABL kinase inhibitors.
- Targeting the mTOR/p70 S6K/PDCD4 axis offers a potential therapeutic strategy for BCR-ABL-driven leukemias.
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