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Published on: December 26, 2016
Silencing Nrf2 impairs glioma cell proliferation via AMPK-activated mTOR inhibition
Yue Jia1, Handong Wang1, Qiang Wang1
1Department of Neurosurgery, Jinling Hospital, School of Medicine, Nanjing University, 305 East Zhongshan Road, Nanjing 210002, Jiangsu Province, China.
Abstract:
Gliomas are the leading cause of death among adults with primary brain malignancies. Treatment for malignant gliomas remains limited, and targeted therapies have been incompletely explored. Nuclear factor erythroid 2-related factor 2 (Nrf2), a key transcription regulator for antioxidant and detoxification enzymes, is abundantly expressed in cancer cells. In this study, the role and mechanism of Nrf2 in cancer cell proliferation was investigated in multiple glioma cell lines. We first evaluated the expression patterns of Nrf2 in four glioma cell lines and found all four cell lines expressed Nrf2, but the highest level was observed in U251 cells. We further evaluated the biological functions of Nrf2 in U251 glioma cell proliferation by specific inhibition of Nrf2 using short hairpin RNA (shRNA). We found that Nrf2 depletion inhibited glioma cell proliferation. Nrf2 depletion also decreased colony formation in U251 cells stably expressing Nrf2 shRNA compared to scrambled control shRNA. Moreover, suppression of Nrf2 expression could lead to ATP depletion (with concomitant rise in AMP/ATP ratio) and consequently to AMPK-activated mTOR inhibition. Finally, activation of adenosine monophosphate-activated protein kinase (AMPK) by treated with phenformin, an AMPK agonist, can mimic the inhibitory effect of Nrf2 knockdown in U251 cells. In conclusion, our findings will shed light to the role and mechanism of Nrf2 in regulating glioma proliferation via ATP-depletion-induced AMPK activation and consequent mTOR inhibition, a novel insight into our understanding the role and mechanism of Nrf2 in glioma pathoetiology. To our knowledge, this is also the first report to provide a rationale for the implication of cross-linking between Nrf2 and mTOR signaling.
Insights
Nuclear factor erythroid 2-related factor 2 (Nrf2) drives glioma cell proliferation. Inhibiting Nrf2 depletes ATP, activating AMPK, and inhibiting mTOR, thus slowing cancer growth.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Gliomas are aggressive brain tumors with limited treatment options.
- Nuclear factor erythroid 2-related factor 2 (Nrf2) is a transcription factor involved in cellular defense mechanisms and is often overexpressed in cancers.
- The precise role of Nrf2 in glioma pathogenesis and its underlying mechanisms require further elucidation.
Purpose of the Study:
- To investigate the role and mechanism of Nrf2 in regulating glioma cell proliferation.
- To explore the potential of targeting Nrf2 as a therapeutic strategy for malignant gliomas.
Main Methods:
- Assessed Nrf2 expression in four glioma cell lines.
- Utilized short hairpin RNA (shRNA) to inhibit Nrf2 expression in U251 glioma cells.
- Measured cell proliferation, colony formation, ATP levels, and AMP/ATP ratio.
- Investigated the activation of adenosine monophosphate-activated protein kinase (AMPK) and mammalian target of rapamycin (mTOR) signaling pathways.
- Administered phenformin, an AMPK agonist, to U251 cells.
Main Results:
- All tested glioma cell lines expressed Nrf2, with U251 cells showing the highest levels.
- Nrf2 depletion significantly inhibited glioma cell proliferation and colony formation in U251 cells.
- Suppression of Nrf2 led to ATP depletion and a subsequent increase in the AMP/ATP ratio.
- Nrf2 inhibition resulted in AMPK activation and mTOR pathway suppression.
- Phenformin treatment mimicked the anti-proliferative effects of Nrf2 knockdown.
Conclusions:
- Nrf2 plays a crucial role in promoting glioma cell proliferation.
- Nrf2 regulates glioma growth through a mechanism involving ATP depletion, AMPK activation, and mTOR inhibition.
- This study reveals a novel cross-talk between Nrf2 and mTOR signaling in gliomas, offering potential therapeutic targets.
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