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Analysis of Combinatorial miRNA Treatments to Regulate Cell Cycle and Angiogenesis
Published on: March 30, 2019
Skp2 regulates non-small cell lung cancer cell growth by Meg3 and miR-3163
Lin Su1, Dongrui Han2, Jingwen Wu3
1Department of Respiratory, The Fourth People's Hospital of Jinan, Jinan Clinical School of Taishan Medical College, 50 Shifan Road, Jinan, 250031, China.
Abstract:
Maternally expressed gene 3 (Meg3) encodes a long non-coding RNA that has been shown to play a role in tumorigenesis. Skp2 is a component of the E3 ubiquitin ligase SCF that specifically promotes the ubiquitination-associated degradation of CDK inhibitor p27, and has been shown to promote cancer cell growth in different types of cancers, including non-small cell lung cancer (NSCLC). Nevertheless, a regulatory relationship between Meg3 and Skp2 has not been acknowledged. Here, we showed that NSCLC specimens had significant higher levels of Skp2 and significantly lower levels of Meg3, compared to paired non-tumor lung tissue. The levels of Meg3 and Skp2 were inversely correlated in NSCLC specimens. Patients with low Meg3 levels had a poor survival. Overexpression of Meg3 decreased Skp2 protein and increased p27 protein, while depletion of Meg3 increased Skp2 protein and decreased p27 protein in NSCLC cells, without altering Skp2 mRNA. These data suggest that the Skp2 may be regulated by Meg3 at post-transcriptional level. Bioinformatics analyses showed that miR-3163 bound to 3'-UTR of Skp2 mRNA in NSCLC cells to inhibit its translation, which was supported by luciferase reporter assay. Meg3 augmented the effects of miR-3163 on Skp2 mRNA, possibly through binding-induced function enhancement, which was supported by the double fluorescent in situ hybridization showing co-localized intracellular Meg3 and miR-3163 signals in NSCLC cells. The miR-3163 levels in NSCLC were not different from in NT, suggesting that the regulation of Skp2 in NSCLC by miR-3163 may require coordination of Meg3. Thus, our data suggest that Meg3 and miR-3163 may coordinate suppression of translation of Skp2 mRNA in NSCLC cells to inhibit NSCLC cell growth.
Insights
Maternally expressed gene 3 (Meg3) and miR-3163 coordinate to suppress Skp2 translation in non-small cell lung cancer (NSCLC) cells. This mechanism inhibits NSCLC cell growth, offering potential therapeutic targets.
Area of Science:
- Molecular Biology
- Oncology
- Gene Regulation
Background:
- Maternally expressed gene 3 (Meg3) is a long non-coding RNA implicated in tumorigenesis.
- Skp2 promotes cancer cell growth by degrading p27, a CDK inhibitor, particularly in non-small cell lung cancer (NSCLC).
- The regulatory relationship between Meg3 and Skp2 in NSCLC remains uncharacterized.
Purpose of the Study:
- To investigate the regulatory relationship between Meg3 and Skp2 in NSCLC.
- To elucidate the mechanism by which Meg3 influences Skp2 expression and function.
- To explore the potential cooperative roles of Meg3 and microRNAs in NSCLC pathogenesis.
Main Methods:
- Comparative analysis of Meg3 and Skp2 levels in NSCLC tissues versus non-tumor tissues.
- In vitro experiments involving Meg3 overexpression and depletion in NSCLC cells.
- Bioinformatic analysis and luciferase reporter assays to assess mRNA-protein interactions.
- Fluorescent in situ hybridization to determine co-localization of Meg3 and miR-3163.
Main Results:
- NSCLC tissues exhibit higher Skp2 and lower Meg3 levels compared to non-tumor tissues, with an inverse correlation.
- Meg3 overexpression reduces Skp2 protein and increases p27 protein in NSCLC cells, while Meg3 depletion has the opposite effect, without altering Skp2 mRNA levels.
- Bioinformatics and luciferase assays confirm that miR-3163 binds to Skp2 mRNA, inhibiting its translation.
- Meg3 enhances miR-3163's inhibitory effect on Skp2 translation, with both molecules co-localizing in NSCLC cells.
Conclusions:
- Meg3 regulates Skp2 protein levels post-transcriptionally in NSCLC.
- Meg3 and miR-3163 cooperate to suppress Skp2 mRNA translation in NSCLC cells.
- This coordinated suppression mechanism by Meg3 and miR-3163 inhibits NSCLC cell growth, suggesting a novel therapeutic strategy.
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