A novel SRC-2-dependent regulation of epithelial-mesenchymal transition in breast cancer cells

Olivera Bozickovic1, Linn Skartveit2, Agnete S T Engelsen3

  • 1Department of Clinical Science, University of Bergen, N-5021 Bergen, Norway; Hormone Laboratory, Haukeland University Hospital, N-5021 Bergen, Norway; KG Jebsen Center for Diabetes Research, Department of Clinical Science, University of Bergen, N-5021 Bergen, Norway.

Insights

Steroid receptor coactivator 2 (SRC-2) and SRC-3 play crucial roles in breast cancer cell development. These proteins are essential for epithelial-mesenchymal transition (EMT), regulating distinct gene sets.

Area of Science:

  • Molecular Biology
  • Cancer Research
  • Genetics

Background:

  • Steroid receptor coactivator 2 (SRC-2) is a nuclear receptor coactivator involved in estrogen receptor alpha (ERα) activity in breast cancer.
  • The precise transcriptional role of SRC-2 in breast cancer remains unclear, necessitating further investigation.
  • Distinguishing SRC-2's function from the known oncogene SRC-3 is critical for understanding breast cancer progression.

Purpose of the Study:

  • To elucidate the specific transcriptional role of SRC-2 in MCF-7 breast cancer cells.
  • To identify unique target genes regulated by SRC-2.
  • To compare the transcriptional functions of SRC-2 and SRC-3 in breast cancer.

Main Methods:

  • Gene expression analysis in cells depleted of SRC-2 or SRC-3.
  • Three-dimensional cell culture to assess cellular morphology.
  • Correlation analysis of SRC-2 expression with clinical breast cancer gene sets.

Main Results:

  • SRC-2 and SRC-3 regulate largely distinct gene sets.
  • Both SRC proteins are involved in maintaining the hybrid epithelial/mesenchymal (E/M) phenotype, impacting cellular structure and development.
  • SRC-2 depletion uniquely upregulates Lyn kinase, an epithelial-mesenchymal transition (EMT) biomarker.

Conclusions:

  • SRC-2 and SRC-3 are essential for EMT in breast cancer cells, each controlling unique transcriptional programs.
  • SRC-2 and SRC-3 contribute to maintaining the hybrid E/M phenotype.
  • SRC-2 exhibits unique transcriptional effects, including the regulation of EMT biomarkers like Lyn kinase.

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