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Establishing Dual Resistance to EGFR-TKI and MET-TKI in Lung Adenocarcinoma Cells In Vitro with a 2-step Dose-escalation Procedure
Published on: August 11, 2017
Oncogenic EGFR signaling activates an mTORC2-NF-κB pathway that promotes chemotherapy resistance
Kazuhiro Tanaka1, Ivan Babic, David Nathanson
1Department of Pathology and Laboratory Medicine, David Geffen School of Medicine at the University of California, Los Angeles, CA 90095, USA.
Unlabelled:
Although it is known that mTOR complex 2 (mTORC2) functions upstream of Akt, the role of this protein kinase complex in cancer is not well understood. Through an integrated analysis of cell lines, in vivo models, and clinical samples, we demonstrate that mTORC2 is frequently activated in glioblastoma (GBM), the most common malignant primary brain tumor of adults. We show that the common activating epidermal growth factor receptor (EGFR) mutation (EGFRvIII) stimulates mTORC2 kinase activity, which is partially suppressed by PTEN. mTORC2 signaling promotes GBM growth and survival and activates NF-κB. Importantly, this mTORC2-NF-κB pathway renders GBM cells and tumors resistant to chemotherapy in a manner independent of Akt. These results highlight the critical role of mTORC2 in the pathogenesis of GBM, including through the activation of NF-κB downstream of mutant EGFR, leading to a previously unrecognized function in cancer chemotherapy resistance. These findings suggest that therapeutic strategies targeting mTORC2, alone or in combination with chemotherapy, will be effective in the treatment of cancer.
Significance:
This study demonstrates that EGFRvIII-activated mTORC2 signaling promotes GBM proliferation, survival, and chemotherapy resistance through Akt-independent activation of NF-κB. These results highlight the role of mTORC2 as an integrator of two canonical signaling networks that are commonly altered in cancer, EGFR/phosphoinositide-3 kinase (PI3K) and NF-κB. These results also validate the importance of mTORC2 as a cancer target and provide new insights into its role in mediating chemotherapy resistance, suggesting new treatment strategies.
Insights
Mammalian target of rapamycin complex 2 (mTORC2) activation drives glioblastoma growth and chemotherapy resistance by activating NF-κB independently of Akt. Targeting mTORC2 offers a promising therapeutic strategy for glioblastoma treatment.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Signaling
Background:
- The role of mTOR complex 2 (mTORC2) in cancer, particularly glioblastoma (GBM), remains incompletely understood.
- mTORC2 is known to function upstream of Akt, a key regulator in cell growth and survival.
Purpose of the Study:
- To investigate the role and activation status of mTORC2 in glioblastoma.
- To elucidate the downstream signaling pathways regulated by mTORC2 in GBM.
- To determine the contribution of mTORC2 to GBM growth, survival, and chemotherapy resistance.
Main Methods:
- Integrated analysis of GBM cell lines, in vivo models, and clinical samples.
- Assessment of mTORC2 kinase activity in relation to epidermal growth factor receptor (EGFR) mutations and PTEN status.
- Investigation of NF-κB activation downstream of mTORC2.
- Evaluation of chemotherapy resistance mechanisms mediated by the mTORC2-NF-κB pathway.
Main Results:
- mTORC2 is frequently activated in glioblastoma.
- Activating EGFR mutations (EGFRvIII) stimulate mTORC2 activity, with partial suppression by PTEN.
- mTORC2 signaling promotes GBM proliferation and survival.
- mTORC2 activates NF-κB, conferring Akt-independent chemotherapy resistance to GBM cells and tumors.
- The mTORC2-NF-κB pathway integrates EGFR and NF-κB signaling networks in GBM pathogenesis.
Conclusions:
- EGFRvIII-activated mTORC2 signaling promotes GBM proliferation, survival, and chemotherapy resistance via Akt-independent NF-κB activation.
- mTORC2 acts as a crucial integrator of EGFR/PI3K and NF-κB signaling pathways in cancer.
- mTORC2 is a validated cancer target, and its role in chemotherapy resistance offers new therapeutic avenues for GBM treatment.
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