Vacuolar ATPase driven potassium transport in highly metastatic breast cancer cells

Sarah A Salyer1, Jordan R Olberding, Anthony A Distler

  • 1Department of Medicine, University of Louisville, Louisville, KY, USA.

Insights

Cardiac glycosides like ouabain affect breast cancer cell proliferation. Notably, MDA-MB453 cells, lacking Na-K ATPase, exhibit unique ion regulation, suggesting distinct metabolic pathways in cancer cells.

Area of Science:

  • Oncology
  • Cell Biology
  • Biochemistry

Background:

  • Breast cancer is a leading cause of death in women.
  • Cardiac glycosides (CGs) show potential in cancer treatment.
  • CGs exert cellular effects through the Na(+), K(+) ATPase (Na-K).

Purpose of the Study:

  • To investigate the effect of ouabain, a CG, on breast cancer cell proliferation.
  • To explore the role of Na-K ATPase and ion channels in cancer cell metabolism.
  • To identify potential therapeutic targets in breast cancer.

Main Methods:

  • Treatment of four breast cancer cell lines and one non-cancerous cell line with ouabain.
  • Measurement of cell proliferation via bromodeoxyuridine incorporation.
  • Analysis of Na-K ATPase subunit expression using Western blot.
  • Assessment of potassium uptake and intracellular potassium levels.
  • Evaluation of voltage-gated potassium channel (KCNQ2) and vacuolar H-ATPase (V-ATPase) activity.

Main Results:

  • Ouabain inhibited proliferation in most cell lines, except MDA-MB453, which lacked Na-K protein and mRNA.
  • MDA-MB453 cells showed higher potassium uptake, intracellular potassium, and KCNQ2 expression.
  • KCNQ2 inhibition affected MDA-MB453 cell growth and ion uptake.
  • Elevated V-ATPase activity was observed in cancer cells, with inhibition impacting MDA-MB453 ion homeostasis.
  • MDA-MB453 cells exhibit absence of Na-K, high KCNQ2 expression, and sensitivity to V-ATPase inhibitors.

Conclusions:

  • Breast cancer cells display distinct metabolic pathways for maintaining intracellular ion homeostasis.
  • The absence of Na-K ATPase and altered ion channel activity characterize specific cancer cell types like MDA-MB453.
  • V-ATPase and KCNQ2 represent potential therapeutic targets in certain breast cancers.

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