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.

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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