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mTOR modulates resistance to gemcitabine in lung cancer in an MTORC2 dependent mechanism
Mahmoud A Chawsheen1, Philip R Dash2
1Faculty of Education, Soran University, Erbil, Kurdistan Region, Iraq.
Background:
Lung cancer has a poor prognosis partly due to a lack of response to treatments such as the chemotherapy drug gemcitabine. Combinations of chemotherapy drugs with signal transduction inhibitors may be more effective treatments. In this study we have investigated the impact of targeting the mTOR signalling pathway on the efficacy of gemcitabine in different cancer cell lines.
Methods:
Time-lapse microscopy, immuno-staining, and western blot techniques were used to evaluate the efficacy of applied treatments either in measuring phosphorylation levels of mTOR down-stream targets or in tracking down the fate of targeted cells. Reactive oxygen species and relative levels of protein phosphorylation were also quantified. For comparison between treated groups t-test and analysis of variance test were applied.
Results:
Our data showed that mTORC1 has no role in sensitising A549 lung cancer cells to gemcitabine. However, targeting mTORC1/2 with the pharmacological inhibitor torin1 or by over-expressing Deptor, the negative regulator of mTOR signalling, sensitised these cells to gemcitabine. Silencing mTORC2, but not mTORC1, induced apoptosis and significantly improved the apoptosis-inducing effects of gemcitabine. Results also suggest that Rictor is required to maintain cell survival through modulating p38α, ERK1/2, RSK1/2/3 and the transcription factor STAT3. Multiple cell line comparisons revealed that PANC-1 pancreatic cancer cells were also sensitive to mTOR inhibition, but MCF7 breast cancer, MCF10A breast epithelial and H727 lung cancer cell lines were more resistant to the treatment.
Conclusions:
Inhibition of mTORC2 may have benefits in the treatment of gemcitabine resistant cancers, and the genetic background of the cell line may determine its response to mTOR inhibition.
Insights
Targeting the mTORC2 pathway sensitizes gemcitabine-resistant lung cancer cells to chemotherapy. Cell type determines response to mTOR inhibition, suggesting personalized treatment strategies for improved outcomes.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Cell Signaling
Background:
- Lung cancer exhibits poor prognosis due to resistance to chemotherapy like gemcitabine.
- Combining chemotherapy with signal transduction inhibitors may enhance treatment efficacy.
- Investigating the mechanistic impact of targeting the mTOR signaling pathway on gemcitabine efficacy in various cancer cell lines.
Purpose of the Study:
- To determine the role of the mTOR signaling pathway in gemcitabine resistance in lung cancer.
- To evaluate the efficacy of inhibiting mTOR signaling, alone or in combination with gemcitabine.
- To identify potential biomarkers or cell-specific factors influencing response to mTOR inhibitors.
Main Methods:
- Utilized time-lapse microscopy, immuno-staining, and Western blot to assess treatment effects.
- Quantified phosphorylation levels of mTOR downstream targets and cell fate.
- Analyzed reactive oxygen species and protein phosphorylation levels, with statistical comparisons using t-tests and ANOVA.
Main Results:
- mTORC1 inhibition did not sensitize A549 lung cancer cells to gemcitabine.
- Targeting mTORC1/2 with torin1 or Deptor overexpression sensitized cells to gemcitabine.
- Silencing mTORC2, but not mTORC1, induced apoptosis and enhanced gemcitabine's apoptotic effects, mediated by Rictor's modulation of survival pathways.
- PANC-1 cells were sensitive to mTOR inhibition, while MCF7, MCF10A, and H727 cells showed resistance.
Conclusions:
- mTORC2 inhibition shows promise for treating gemcitabine-resistant cancers.
- The genetic makeup of cancer cell lines dictates their sensitivity to mTOR pathway inhibition.
- This suggests a potential for personalized therapeutic strategies based on cellular context.
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