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Updated: Jun 13, 2026

Profiling of Estrogen-regulated MicroRNAs in Breast Cancer Cells
Published on: February 21, 2014
MicroRNA cluster 221-222 and estrogen receptor alpha interactions in breast cancer
Gianpiero Di Leva1, Pierluigi Gasparini, Claudia Piovan
1Department of Molecular Virology, Immunology and Medical Genetics and Comprehensive Cancer Center, Ohio State University, 460 West, 12th Ave, Columbus, OH 43210, USA.
Background:
Several lines of evidence have suggested that estrogen receptor alpha (ERalpha)-negative breast tumors, which are highly aggressive and nonresponsive to hormonal therapy, arise from ERalpha-positive precursors through different molecular pathways. Because microRNAs (miRNAs) modulate gene expression, we hypothesized that they may have a role in ER-negative tumor formation.
Methods:
Gene expression profiles were used to highlight the global changes induced by miRNA modulation of ERalpha protein. miRNA transfection and luciferase assays enabled us to identify new targets of miRNA 206 (miR-206) and miRNA cluster 221-222 (miR-221-222). Northern blot, luciferase assays, estradiol treatment, and chromatin immunoprecipitation were performed to identify the miR-221-222 transcription unit and the mechanism implicated in its regulation.
Results:
Different global changes in gene expression were induced by overexpression of miR-221-222 and miR-206 in ER-positive cells. miR-221 and -222 increased proliferation of ERalpha-positive cells, whereas miR-206 had an inhibitory effect (mean absorbance units [AU]: miR-206: 500 AU, 95% confidence interval [CI]) = 480 to 520; miR-221: 850 AU, 95% CI = 810 to 873; miR-222: 879 AU, 95% CI = 850 to 893; P < .05). We identified hepatocyte growth factor receptor and forkhead box O3 as new targets of miR-206 and miR-221-222, respectively. We demonstrated that ERalpha negatively modulates miR-221 and -222 through the recruitment of transcriptional corepressor partners: nuclear receptor corepressor and silencing mediator of retinoic acid and thyroid hormone receptor.
Conclusions:
These findings suggest that the negative regulatory loop involving miR-221-222 and ERalpha may confer proliferative advantage and migratory activity to breast cancer cells and promote the transition from ER-positive to ER-negative tumors.
Insights
MicroRNAs (miRNAs) play a role in aggressive breast cancer development. Specifically, miR-221-222 promotes ER-positive cell proliferation, potentially driving the transition to ER-negative tumors.
Area of Science:
- Molecular Biology
- Oncology
- Gene Regulation
Background:
- Estrogen receptor alpha (ERalpha)-negative breast tumors are aggressive and resistant to hormonal therapy.
- These tumors are thought to originate from ERalpha-positive precursors via distinct molecular pathways.
- MicroRNAs (miRNAs) are regulators of gene expression, prompting investigation into their role in ER-negative tumor formation.
Purpose of the Study:
- To investigate the role of specific miRNAs in the transition of ER-positive to ER-negative breast cancer.
- To identify novel miRNA targets and regulatory mechanisms involved in breast cancer progression.
Main Methods:
- Gene expression profiling to analyze global changes induced by miRNA modulation.
- miRNA transfection and luciferase assays to identify miRNA targets.
- Northern blot, estradiol treatment, and chromatin immunoprecipitation to elucidate regulatory mechanisms.
Main Results:
- Overexpression of miR-221-222 increased proliferation in ERalpha-positive cells, while miR-206 inhibited it.
- Hepatocyte growth factor receptor and forkhead box O3 were identified as new targets of miR-206 and miR-221-222, respectively.
- ERalpha was found to negatively regulate miR-221 and -222 transcription via corepressor recruitment.
Conclusions:
- A negative regulatory loop between miR-221-222 and ERalpha may enhance breast cancer cell proliferation and migration.
- This regulatory loop could be a key mechanism promoting the transition from ER-positive to ER-negative breast tumors.
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