Notch pathway promotes ovarian cancer growth and migration via CXCR4/SDF1α chemokine system

R Chiaramonte1, M Colombo1, G Bulfamante2

  • 1Department of Health Sciences, Università degli Studi di Milano, via A. Di Rudinì 8, I-20142, Milan, Italy.

Insights

Notch signaling promotes ovarian cancer growth and migration by activating CXCR4/SDF1α signaling. Inhibiting Notch may offer a new therapeutic strategy for ovarian cancer targeting this axis.

Area of Science:

  • Gynecologic Oncology
  • Molecular Biology
  • Cancer Signaling Pathways

Background:

  • Ovarian cancer is a deadly gynecological malignancy with complex molecular pathogenesis.
  • Notch signaling dysregulation is linked to poor survival in ovarian cancer.
  • CXCR4/SDF1α signaling is implicated in ovarian cancer progression and metastasis.

Purpose of the Study:

  • To investigate the cooperative role of Notch and CXCR4/SDF1α signaling in ovarian cancer growth, survival, and migration.
  • To determine if Notch signaling influences CXCR4/SDF1α expression in ovarian cancer cells.
  • To explore the therapeutic potential of targeting the Notch pathway in ovarian cancer.

Main Methods:

  • Ovarian cancer cell lines were treated with γ-secretase inhibitors to block Notch signaling or transfected to upregulate Notch1 expression.
  • Expression levels of Notch pathway components, CXCR4, and SDF1α were analyzed.
  • Immunohistochemistry was used to detect Notch activation (HES6) and CXCR4/SDF1α expression in ovarian cancer specimens.

Main Results:

  • Notch activity significantly influenced ovarian cancer cell growth and survival.
  • Notch signaling positively regulated the expression of CXCR4 and SDF1α.
  • CXCR4/SDF1α signaling mediated the effects of the Notch pathway on cell growth and migration.
  • Notch activation, indicated by HES6, correlated positively with high CXCR4 and SDF1α expression in patient samples.

Conclusions:

  • Notch signaling impacts ovarian cancer cell biology by modulating the CXCR4/SDF1α axis.
  • Targeting Notch signaling may represent a rational therapeutic strategy to inhibit ovarian cancer progression.
  • The Notch-CXCR4/SDF1α axis is a potential therapeutic target for ovarian cancer treatment.

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