Opioid growth factor - opioid growth factor receptor axis inhibits proliferation of triple negative breast cancer

Ian S Zagon1, Nancy K Porterfield, Patricia J McLaughlin

  • 1Department of Neural & Behavioral Sciences, Penn State University College of Medicine, Hershey, PA 17033, USA. Isz1@psu.edu

Insights

The opioid growth factor (OGF)-opioid growth factor receptor (OGFr) axis inhibits triple-negative breast cancer (TNBC) cell proliferation. This pathway is present in TNBC cells and may offer a novel therapeutic approach.

Area of Science:

  • Oncology
  • Molecular Biology
  • Pharmacology

Background:

  • Triple-negative breast cancer (TNBC) lacks estrogen, progesterone, and HER2 receptors, disproportionately affecting younger women and women of color.
  • New therapeutic strategies are urgently needed for TNBC due to its aggressive nature and limited treatment options.
  • The opioid growth factor (OGF)-opioid growth factor receptor (OGFr) axis regulates cell proliferation and is a potential target for cancer therapy.

Purpose of the Study:

  • To investigate the presence and function of the OGF-OGFr axis in human TNBC and other breast cancer cell lines.
  • To determine the effect of OGF on TNBC cell proliferation and its interaction with chemotherapy.
  • To explore the OGF-OGFr axis as a novel therapeutic target for breast cancer.

Main Methods:

  • Examined OGF-OGFr axis presence and function in TNBC (MDA-MD-231, BT-20) and hormone receptor-positive (SK-BR-3, MCF-7) cell lines.
  • Utilized antibody neutralization and gene knockdown to confirm peptide and receptor specificity.
  • Assessed OGF's effect on cell proliferation, DNA synthesis, and response to paclitaxel, investigating requirements for protein and RNA synthesis.

Main Results:

  • The OGF-OGFr axis was detected and functional in all tested breast cancer cell lines, including TNBC.
  • OGF treatment inhibited TNBC cell proliferation in a dose-dependent, receptor-mediated, and reversible manner.
  • OGF reduced cell death induced by paclitaxel, indicating a potential protective effect against chemotherapy toxicity.

Conclusions:

  • The OGF-OGFr signaling pathway is active in TNBC and represents a novel biological target.
  • OGF demonstrates anti-proliferative effects on breast cancer cells and can modulate chemotherapy response.
  • Targeting the OGF-OGFr axis offers a promising new therapeutic avenue for TNBC treatment.

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