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Published on: June 18, 2015
MiR-99a antitumor activity in human breast cancer cells through targeting of mTOR expression
1Department of Breast Surgery, Xiangya Hospital, Central South University, Changsha, China.
Abstract:
MicroRNAs (miRNAs) play an important role in human tumorigenesis as oncogenes or tumor suppressors. miR-99a has been reported as a tumor suppressor gene in various cancers in humans. However, only limited information about the function of miR-99a in human breast cancers is available. Here we investigated the expression of miR-99a in breast cancer tissue specimens and its antitumor activity in breast cancer cells. We initially identified that the expression of miR-99a was significantly reduced in four breast cancer cell lines. More importantly, we found downregulation of miR-99a in breast cancer specimens from ten different patients. We then analyzed the mechanism of miR-99a in inhibiting tumorigenesis. Cell-based assays that showed overexpression of miR-99a not only reduced breast cancer cell viability by inducing accumulation of cells at sub-G1 phase and cell apoptosis, but also inhibited tumorigenicity in vivo. As a critical miR-99a target, we have shown that the function of mammalian target of rapamycin (mTOR) was greatly inhibited by miR-99a-based Luciferase report assay; overexpression of miR-99a reduced the expression of mTOR and its downstream phosphorylated proteins (p-4E-BP1 and p-S6K1). Similar to restoring miR-99a expression, mTOR downregulation suppressed cell viability and increased cell apoptosis, whereas restoration of mTOR expression significantly reversed the inhibitory effects of miR-99a on the mTOR/p-4E-BP1/p-S6K1 signal pathway and the miR-99a antitumor activity. In clinical specimens and cell lines, mTOR was commonly overexpressed and its protein levels were statistically inversely correlated with miR-99a expression. Taken together, these results have demonstrated that miR-99a antitumor activity is achieved by targeting the mTOR/p-4E-BP1/p-S6K1 pathway in human breast cancer cells. This study suggests a potential therapeutic strategy to effectively control breast cancer development.
Insights
MicroRNA-99a (miR-99a) acts as a tumor suppressor in breast cancer by inhibiting the mTOR pathway. Restoring miR-99a expression reduces breast cancer cell viability and tumor growth, offering a potential therapeutic strategy.
Area of Science:
- Molecular Biology
- Oncology
- Biochemistry
Background:
- MicroRNAs (miRNAs) are crucial regulators in tumorigenesis, functioning as oncogenes or tumor suppressors.
- miR-99a is recognized as a tumor suppressor in various human cancers, but its role in breast cancer requires further elucidation.
Purpose of the Study:
- To investigate the expression levels of miR-99a in human breast cancer.
- To determine the antitumor activity and underlying mechanism of miR-99a in breast cancer cells.
- To explore the relationship between miR-99a and the mammalian target of rapamycin (mTOR) pathway in breast cancer.
Main Methods:
- Quantitative analysis of miR-99a expression in breast cancer cell lines and patient specimens.
- Cell viability assays, apoptosis assays, and in vivo tumorigenicity studies following miR-99a overexpression.
- Luciferase reporter assays to validate mTOR as a direct target of miR-99a.
- Western blotting to assess protein levels of mTOR and its downstream targets (p-4E-BP1, p-S6K1).
Main Results:
- miR-99a expression was significantly downregulated in breast cancer cell lines and patient tissues.
- Overexpression of miR-99a inhibited breast cancer cell viability, induced apoptosis, and suppressed tumorigenicity in vivo.
- miR-99a directly targets mTOR, reducing its expression and downstream signaling (p-4E-BP1, p-S6K1).
- Restoring miR-99a expression suppressed tumor growth, while mTOR restoration reversed these effects.
- mTOR was frequently overexpressed in breast cancer, inversely correlated with miR-99a levels.
Conclusions:
- miR-99a exerts antitumor activity in human breast cancer by targeting and inhibiting the mTOR/p-4E-BP1/p-S6K1 pathway.
- Downregulation of miR-99a and subsequent mTOR pathway activation contribute to breast cancer development.
- Targeting the miR-99a/mTOR axis presents a promising therapeutic strategy for breast cancer treatment.
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