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Updated: Oct 27, 2025

Studying TGF-β Signaling and TGF-β-induced Epithelial-to-mesenchymal Transition in Breast Cancer and Normal Cells
Published on: October 27, 2020
MicroRNA-495/TGF-β/FOXC1 axis regulates multidrug resistance in metaplastic breast cancer cells
Uttom Kumar1, Yunhui Hu2, Nahal Masrour1
1Division of Cancer, Imperial College Faculty of Medicine, Hammersmith Hospital Campus, Du Cane Road, London W12 0NN, UK.
Abstract:
Triple-negative metaplastic breast carcinoma (MBC) poses a significant treatment challenge due to lack of targeted therapies and chemotherapy resistance. We isolated a novel MBC cell line, BAS, which showed a molecular and phenotypic profile different from the only other metaplastic cell model, HS578T cells. To gain insight behind chemotherapeutic resistance, we generated doxorubicin (HS-DOX, BAS-DOX) and paclitaxel (HS-TX, BAS-TX) resistant derivatives of both cell lines. Drug sensitivity assays indicated a truly multidrug resistant (MDR) phenotype. Both BAS-DOX and BAS-TX showed up-regulation of FOXC1 and its experimental down-regulation re-sensitized cells to doxorubicin and paclitaxel. Experimental modulation of FOXC1 expression in MCF-7 and MDA-MB-231 cells corroborated its role in MDR. Genome-wide expression analyses identified gene expression signatures characterized by up-regulation of TGFB2, which encodes cytokine TGF-β2, in both BAS-DOX and BAS-TX cells. Pharmacological inhibition of the TGF-β pathway with galunisertib led to down-regulation of FOXC1 and increase in drug sensitivity in both BAS-DOX and BAS-TX cells. MicroRNA (miR) expression analyses identified high endogenous miR-495-3p levels in BAS cells that were downregulated in both BAS MDR cells. Transient expression of miR-495-3p mimic in BAS-DOX and BAS-TX cells caused downregulation of TGFB2 and FOXC1 and re-sensitized cells to doxorubicin and paclitaxel, whereas miR-495-3p inhibition in BAS cells led to increase in resistance to both drugs and up-regulation of TGFB2 and FOXC1. Together, these data suggest interplay between miR-495-3p, TGF-β2 and FOXC1 regulating MDR in MBC and open the exploration of novel therapeutic strategies.
Insights
Triple-negative metaplastic breast carcinoma (MBC) exhibits multidrug resistance (MDR). Researchers identified a novel pathway involving miR-495-3p, TGF-β2, and FOXC1 that regulates this resistance, offering new therapeutic targets.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Triple-negative metaplastic breast carcinoma (MBC) presents a significant therapeutic challenge due to limited targeted treatments and resistance to chemotherapy.
- Existing metaplastic breast carcinoma cell models are insufficient for comprehensive resistance studies.
Purpose of the Study:
- To investigate the mechanisms underlying multidrug resistance (MDR) in metaplastic breast carcinoma (MBC).
- To identify novel molecular targets for overcoming chemotherapy resistance in MBC.
Main Methods:
- Generated doxorubicin and paclitaxel resistant MBC cell lines (BAS and HS578T derivatives).
- Utilized gene expression analysis (genome-wide and specific microRNA profiling) and drug sensitivity assays.
- Experimentally modulated expression of FOXC1, TGFB2, and miR-495-3p.
Main Results:
- Resistant MBC cells (BAS-DOX, BAS-TX) exhibited upregulation of FOXC1 and TGFB2, and downregulation of miR-495-3p.
- Downregulating FOXC1 or inhibiting the TGF-β pathway re-sensitized resistant cells to chemotherapy.
- Restoring miR-495-3p levels reversed MDR by downregulating TGFB2 and FOXC1.
Conclusions:
- A novel interplay between miR-495-3p, TGF-β2, and FOXC1 is identified as a key regulator of MDR in MBC.
- This pathway represents a promising target for developing novel therapeutic strategies against chemoresistant metaplastic breast carcinoma.
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