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Updated: May 13, 2026

Profiling of Estrogen-regulated MicroRNAs in Breast Cancer Cells
Published on: February 21, 2014
MicroRNA-93 regulates NRF2 expression and is associated with breast carcinogenesis
Bhupendra Singh1, Amruta M Ronghe, Anwesha Chatterjee
1Division of Pharmacology and Toxicology, School of Pharmacy, University of Missouri-Kansas City, Kansas City, MO 64108, USA.
Abstract:
MicroRNAs (miRNA) are small non-coding RNAs that regulate the expression of approximately 60% of all human genes and play important roles in disease processes. Recent studies have demonstrated a link between dysregulated expression of miRNAs and breast carcinogenesis. Long-term estrogen exposure is implicated in development of human breast cancers, yet underlying mechanisms remain elusive. We have recently demonstrated that antioxidant vitamin C (vit C) prevents estrogen-induced breast tumor development. In this study, we investigated the role of vit C in the regulation of microRNA-93 (miR-93) and its target gene(s) in a rat model of mammary carcinogenesis. Female August Copenhagen Irish (ACI) rats were treated with vit C in the presence or absence of 17β-estradiol (E2) for 8 months. We demonstrate an increased expression of the miR-93 in E2-treated mammary tissues and in human breast cell lines and vit C treatment reverted E2-mediated increase in miR-93 levels. MiRNA target prediction programs suggest one of the target genes of miR-93 to be nuclear factor erythroid 2-related factor 2 (NRF2). In contrast with miR-93 expression, NRF2 protein expression was significantly decreased in E2-treated mammary tissues, mammary tumors, and in breast cancer cell lines, and its expression was significantly increased after vit C treatment. Ectopic expression of miR-93 decreased protein expression of NRF2 and NRF2-regulated genes. Furthermore, miR-93 decreased apoptosis, increased colony formation, mammosphere formation, cell migration and DNA damage in breast epithelial cells, whereas silencing of miR-93 in these cells inhibited these carcinogenic processes. Taken together, our findings suggest an oncogenic potential of miR-93 during E2-induced breast carcinogenesis.
Insights
Vitamin C prevents estrogen-induced breast cancer by regulating microRNA-93 (miR-93). This study shows miR-93 promotes cancer development, while vitamin C normalizes its levels and restores protective gene expression.
Area of Science:
- Molecular Biology
- Oncology
- Biochemistry
Background:
- MicroRNAs (miRNAs) are key regulators of gene expression implicated in various diseases, including breast cancer.
- Estrogen exposure is linked to breast cancer, but the precise molecular mechanisms are not fully understood.
- Antioxidant vitamin C has shown promise in preventing estrogen-induced breast tumor development.
Purpose of the Study:
- To investigate the role of vitamin C in regulating microRNA-93 (miR-93) and its downstream targets in a rat model of estrogen-induced mammary carcinogenesis.
- To explore the potential oncogenic function of miR-93 in breast cancer development.
Main Methods:
- A rat model (ACI rats) was used, with treatments including 17β-estradiol (E2) and vitamin C over 8 months.
- MiRNA expression levels, protein expression of target genes (NRF2), and various cellular processes (apoptosis, proliferation, migration, DNA damage) were analyzed.
- In vitro studies involved ectopic expression and silencing of miR-93 in breast epithelial cells.
Main Results:
- Estrogen (E2) significantly increased miR-93 expression in mammary tissues and cell lines; vitamin C treatment reversed this effect.
- NRF2 protein expression, a predicted target of miR-93, was decreased by E2 and increased by vitamin C.
- Overexpression of miR-93 promoted cancer-associated phenotypes (increased proliferation, migration, mammosphere formation; decreased apoptosis), while miR-93 silencing inhibited these processes.
Conclusions:
- miR-93 exhibits oncogenic potential in estrogen-driven breast carcinogenesis.
- Vitamin C mitigates estrogen's pro-carcinogenic effects, partly by modulating miR-93 and NRF2 pathways.
- Targeting miR-93 may offer a therapeutic strategy for estrogen-related breast cancers.
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