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Induction of Mesenchymal-Epithelial Transitions in Sarcoma Cells
Published on: April 7, 2017
RhoGDIβ inhibition via miR-200c/AUF1/SOX2/miR-137 axis contributed to lncRNA MEG3 downregulation-mediated malignant
Yichao Yang1, Zhongxian Tian2, Lijiong He2
1Department of Nutrition and Food Hygiene, School of Public Health, Guangzhou Medical University, Guangdong, Guangzhou, China.
Abstract:
Nickel pollution is a recognized factor contributing to lung cancer. Understanding the molecular mechanisms of its carcinogenic effects is crucial for lung cancer prevention and treatment. Our previous research identified the downregulation of a long noncoding RNA, maternally expressed gene 3 (MEG3), as a key factor in transforming human bronchial epithelial cells (HBECs) into malignant cells following nickel exposure. In our study, we found that deletion of MEG3 also reduced the expression of RhoGDIβ. Notably, artificially increasing RhoGDIβ levels counteracted the malignant transformation caused by MEG3 deletion in HBECs. This indicates that the reduction in RhoGDIβ contributes to the transformation of HBECs due to MEG3 deletion. Further exploration revealed that MEG3 downregulation led to enhanced c-Jun activity, which in turn promoted miR-200c transcription. High levels of miR-200c subsequently increased the translation of AUF1 protein, stabilizing SOX2 messenger RNA (mRNA). This stabilization affected the regulation of miR-137, SP-1 protein translation, and the suppression of RhoGDIβ mRNA transcription and protein expression, leading to cell transformation. Our study underscores the co-regulation of RhoGDIβ expression by long noncoding RNA MEG3, multiple microRNAs (miR-200c and miR-137), and RNA-regulated transcription factors (c-Jun, SOX2, and SP1). This intricate network of molecular events sheds light on the nature of lung tumorigenesis. These novel findings pave the way for developing targeted strategies for the prevention and treatment of human lung cancer based on the MEG3/RhoGDIβ pathway.
Insights
Nickel pollution causes lung cancer by downregulating maternally expressed gene 3 (MEG3). Loss of MEG3 reduces RhoGDIβ, promoting malignant transformation and lung tumorigenesis.
Area of Science:
- Molecular Biology
- Cancer Research
- Environmental Health
Background:
- Nickel exposure is a risk factor for lung cancer.
- Maternally expressed gene 3 (MEG3) downregulation is implicated in nickel-induced cell transformation.
- Understanding the molecular pathways is vital for lung cancer prevention.
Purpose of the Study:
- To elucidate the molecular mechanisms by which MEG3 loss contributes to nickel-induced lung cell transformation.
- To identify key regulatory molecules and pathways involved in this process.
Main Methods:
- Investigated the role of MEG3 in regulating RhoGDIβ expression in human bronchial epithelial cells (HBECs).
- Analyzed the impact of MEG3 downregulation on transcription factors and microRNA activity.
- Utilized molecular biology techniques to assess protein and mRNA expression levels.
Main Results:
- MEG3 deletion led to reduced RhoGDIβ expression, causing HBEC malignant transformation.
- MEG3 downregulation enhanced c-Jun activity, promoting miR-200c transcription.
- miR-200c stabilized SOX2 mRNA, impacting miR-137, SP-1, and RhoGDIβ expression, ultimately driving cell transformation.
Conclusions:
- MEG3/RhoGDIβ pathway is crucial in nickel-induced lung tumorigenesis.
- A complex regulatory network involving lncRNA, microRNAs, and transcription factors controls RhoGDIβ expression.
- Findings offer potential targets for lung cancer prevention and treatment.
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