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Updated: Jul 15, 2025

Profiling of Estrogen-regulated MicroRNAs in Breast Cancer Cells
Published on: February 21, 2014
MiR-206 inhibits estrogen signaling and ovarian cancer cell migration without affecting GPER
Carlotta Boscaro1, Giovanni Eugenio Ramaschi2, Lucia Trevisi2
1Department of Medicine, University of Padova, Italy.
Aims:
Estrogen-regulated pathways are involved in the etiology and progression of epithelial ovarian cancer (EOC), but the relative contribution of estrogen receptor isoforms is unclear. Only a subset of patients responds to antiestrogens including tamoxifen. Based on our previous evidence that miR-206 behaves as an oncosuppressor in EOC, we hypothesized that miR-206 would interfere with G protein-coupled estrogen receptor (GPER)-mediated signaling and cell motility.
Main Methods:
PFKFB3 and FAK proteins from OC cells challenged with selective estrogen receptor agonist and antagonist were measured by Western blotting. Cell proliferation and motility were analyzed by MTT and Boyden chamber, respectively. Estrogen-dependent cells were transfected with miR-206 mimic or control using Lipofectamine.
Key Findings:
The migration of SKOV3 and OVCAR5 cells significantly increased following treatment with 17β-estradiol (E2) and the selective GPER agonist G1. However, tamoxifen failed to inhibit E2 effect and even promoted SKOV3 cell migration. Estrogen receptor ligands did not affect SKOV3 proliferation. The GPER antagonist G15 significantly prevented E2-mediated upregulation of PFKFB3 expression, while G1 concentration-dependently upregulated PFKFB3 levels. Consistent with the functional link between PFKFB3 and FAK activation, E2 and G1 increased FAK phosphorylation at Tyr397. Transfection with miR-206 abolished estrogen-induced EOC migration and down-regulated PFKFB3 protein levels. Notably, miR-206 transfection reduced ERα protein abundance, whereas GPER amount was unchanged.
Significance:
By blocking estrogen signaling and G1-induced EOC cell invasiveness with no direct interference with GPER levels, miR-206 mimics have the potential to act as pathway-selective antagonists and deserve further testing as RNA therapeutics in estrogen-dependent EOC.
Insights
MicroRNA-206 (miR-206) inhibits epithelial ovarian cancer (EOC) cell migration by blocking estrogen signaling, offering potential as an RNA therapeutic. This study investigated miR-206
Area of Science:
- Molecular Oncology
- Epigenetics
- RNA Therapeutics
Background:
- Estrogen receptor pathways are implicated in epithelial ovarian cancer (EOC) development and progression.
- The specific roles of estrogen receptor isoforms and response to antiestrogens like tamoxifen remain unclear.
- Previous research suggests miR-206 acts as an oncosuppressor in EOC.
Purpose of the Study:
- To investigate the hypothesis that miR-206 interferes with G protein-coupled estrogen receptor (GPER)-mediated signaling and cell motility in EOC.
- To explore the potential of miR-206 as a therapeutic agent in estrogen-dependent EOC.
Main Methods:
- Western blotting was used to measure PFKFB3 and FAK protein levels in EOC cells treated with estrogen receptor agonists/antagonists.
- Cell proliferation and motility were assessed using MTT assays and Boyden chamber experiments, respectively.
- EOC cells were transfected with miR-206 mimics or control using Lipofectamine.
Main Results:
- 17β-estradiol (E2) and the GPER agonist G1 increased EOC cell migration, while tamoxifen was ineffective and promoted migration in one cell line.
- E2-induced upregulation of PFKFB3 and FAK phosphorylation was blocked by the GPER antagonist G15 and by miR-206 transfection.
- miR-206 transfection reduced estrogen-induced EOC cell migration and decreased ERα protein levels without affecting GPER.
Conclusions:
- miR-206 effectively blocks estrogen signaling and GPER-induced EOC cell invasiveness.
- miR-206 mimics function as pathway-selective antagonists without directly altering GPER levels.
- miR-206 holds promise as an RNA therapeutic for estrogen-dependent EOC.
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