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Updated: Apr 26, 2026

Induction and Analysis of Epithelial to Mesenchymal Transition
Published on: August 27, 2013
miR-30 as a tumor suppressor connects EGF/Src signal to ERG and EMT
C-J Kao1, A Martiniez1, X-B Shi2
1Department of Biochemistry and Molecular Medicine, University of California-Davis, Davis, CA, USA.
Abstract:
Src tyrosine kinase (Src) is implicated in the development of bone metastasis and castration resistance of prostate cancer. Src inhibitors are currently being tested in clinical trials for such diseases. Understanding the molecular and cellular actions of Src inhibitors holds the key to future improvement of this line of therapy. Here we describe the microRNA expression profiles modulated by two Src inhibitors and demonstrate that the miR-30 family members are the most prominently induced species. Consistent with its tumor suppressor role, miR-30 is downmodulated by oncogenic signals such as epidermal growth factor (EGF) and hepatocyte growth factor, and is generally underexpressed in prostate cancer specimens. A number of epithelial-to-mesenchymal transition (EMT)-associated genes are predicted targets of miR-30. Among these genes the Ets-related gene (ERG) is the most frequently overexpressed oncogene in prostate cancer activated by genomic fusion events between promoter upstream sequences of the TMPRSS2 and coding sequences of ERG. We showed by ERG 3' untranslated region reporter and mutagenesis assays that ERG is a direct target of miR-30. Overexpression of miR-30 in prostate cancer cells suppresses EMT phenotypes and inhibits cell migration and invasion. It also inhibits the in vitro and in vivo growth of VCaP cells, which depends on TMPRSS2-ERG for proliferation. TMPRSS2-ERG is generally regulated by androgen at the transcriptional level. Our finding reveals a new post-transcriptional mechanism of TMPRSS2-ERG regulation by Src and growth signals via miR-30 providing a rationale for targeting ERG-positive castration-resistant tumors with Src inhibitors.
Insights
Src inhibitors induce miR-30, a tumor suppressor that targets ERG. This finding reveals a new mechanism for regulating ERG in prostate cancer, offering a therapeutic strategy for castration-resistant tumors.
Area of Science:
- Molecular oncology
- Cancer therapeutics
- Gene regulation
Background:
- Src tyrosine kinase (Src) plays a role in prostate cancer bone metastasis and castration resistance.
- Src inhibitors are under clinical investigation for these conditions.
- Understanding Src inhibitor mechanisms is crucial for improving therapy.
Purpose of the Study:
- To investigate microRNA (miRNA) expression profiles modulated by Src inhibitors.
- To identify specific miRNAs and their targets involved in prostate cancer progression.
- To elucidate a novel regulatory pathway for ERG in castration-resistant prostate cancer.
Main Methods:
- Analysis of miRNA expression profiles after Src inhibitor treatment.
- Bioinformatic prediction and experimental validation of miRNA targets (e.g., ERG).
- Cell-based assays (in vitro) and in vivo studies to assess the functional impact of miR-30.
Main Results:
- miR-30 family members were the most significantly induced miRNAs by Src inhibitors.
- miR-30 directly targets the oncogene Ets-related gene (ERG), which is frequently overexpressed in prostate cancer.
- Overexpression of miR-30 suppressed epithelial-to-mesenchymal transition (EMT), reduced cell migration and invasion, and inhibited tumor growth in VCaP cells.
Conclusions:
- Src inhibitors induce tumor-suppressive miR-30, which targets ERG.
- This identifies a post-transcriptional regulatory mechanism of TMPRSS2-ERG by Src and growth signals via miR-30.
- Targeting ERG-positive castration-resistant prostate tumors with Src inhibitors is a promising therapeutic strategy.
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