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Inhibition of the AKT/mTOR pathway negatively regulates PTEN expression via miRNAs
Linyan Wan1,2, Yanan Wang1, Jie Li1
1State Key Laboratory of Medical Molecular Biology, Department of Physiology, Institute of Basic Medical Sciences and School of Basic Medicine, Graduate School of Peking Union Medical College, Chinese Academy of Medical Sciences, Beijing 100010, China.
Abstract:
PI3K/AKT/mTOR pathway plays important roles in cancer development, and the negative role of PTEN in the PI3K/AKT/mTOR pathway is well known, but whether PTEN can be inversely regulated by PI3K/AKT/mTOR has rarely been reported. Here we aim to investigate the potential regulatory relationship between PTEN and Akt/mTOR inhibition in MEFs. AKT1 E17K and TSC2 -/- MEFs were treated with the AKT inhibitor MK2206 and the mTOR inhibitors rapamycin and Torin2. Our results reveal that inhibition of AKT or mTOR suppresses PTEN expression in AKT1 E17K and TSC2 -/- MEFs, but the transcription, subcellular localization, eIF4E-dependent translational initiation or lysosome- and proteasome-mediated degradation of PTEN change little, as shown by the real time PCR, nucleus cytoplasm separation assay and immunofluorescence analysis. Moreover, mTOR suppression leads to augmentation of mouse PTEN-3'UTR-binding miRNAs, including miR-23a-3p, miR-23b-3p, miR-25-3p and miR-26a-5p, as shown by the dual luciferase reporter assay and miRNA array analysis, and miRNA inhibitors collaborately rescue the decline of PTEN level. Collectively, our findings confirm that inhibition of mTOR suppresses PTEN expression by upregulating miRNAs, provide a novel explanation for the limited efficacy of mTOR inhibitors in the treatment of mTOR activation-related tumors, and indicate that dual inhibition of mTOR and miRNA is a promising therapeutic strategy to overcome the resistance of mTOR-related cancer treatment.
Insights
Inhibition of the mTOR pathway suppresses PTEN expression by increasing specific microRNAs (miRNAs). This finding explains resistance to mTOR inhibitors in cancer and suggests dual mTOR and miRNA inhibition as a therapeutic strategy.
Area of Science:
- Molecular Biology
- Oncology
- Biochemistry
Background:
- The PI3K/AKT/mTOR pathway is crucial in cancer development.
- PTEN is a known negative regulator of this pathway.
- The inverse regulation of PTEN by PI3K/AKT/mTOR is not well understood.
Purpose of the Study:
- To investigate the regulatory relationship between PTEN and Akt/mTOR inhibition.
- To explore how Akt/mTOR inhibition affects PTEN expression in mouse embryonic fibroblasts (MEFs).
Main Methods:
- Treatment of AKT1E17K and TSC2-/- MEFs with AKT and mTOR inhibitors (MK2206, rapamycin, Torin2).
- Analysis of PTEN expression, transcription, subcellular localization, and degradation.
- Dual luciferase reporter assays and miRNA array analysis to identify PTEN-3'UTR-binding miRNAs.
- Assessment of miRNA inhibitors' effect on PTEN levels.
Main Results:
- AKT or mTOR inhibition suppressed PTEN expression in MEFs.
- PTEN transcription, localization, translation, and degradation remained largely unchanged.
- mTOR suppression increased specific PTEN-3'UTR-binding miRNAs (miR-23a-3p, miR-23b-3p, miR-25-3p, miR-26a-5p).
- MiRNA inhibitors partially restored PTEN levels.
Conclusions:
- mTOR inhibition suppresses PTEN expression via miRNA upregulation.
- This mechanism offers a novel explanation for resistance to mTOR inhibitors in cancer.
- Combined mTOR and miRNA inhibition presents a promising therapeutic strategy for mTOR-related cancers.
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