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Published on: June 30, 2021
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.
Abstract:
Breast cancer is the second leading cause of death in women and thus has received a great deal of attention by researchers. Recent studies suggested decreased occurrence of cancer in patients treated with cardiac glycosides (CGs) for heart conditions. Because CGs induce their cellular effects via the Na(+), K(+) ATPase (Na-K), we treated four breast cancer cell lines (MCF-7, T47D, MDA-MB453, and MDA-MB231) and a non-cancerous breast ductal epithelial cell line (MCF-10A) with ouabain, a well-characterized CG, and measured cell proliferation by measuring bromodeoxyuridine incorporation. Ouabain (1μM) decreased cell proliferation in all cell lines studied except MDA-MB453 cells. Western blot of Na-K α and β subunits showed α1, α3, and β1 expression in all cell lines except MDA-MB453 cells where Na-K protein and mRNA were absent. Potassium uptake, measured as rubidium ((86)Rb) flux, and intracellular potassium were both significantly higher in MDA-MB453 cells compared to MCF-10A cells. RT-qPCR suggested a 7 fold increase in voltage-gated potassium channel (KCNQ2) expression in MDA-MB453 cells compared to MCF-10A cells. Inhibition of KCNQ2 prevented cell growth and (86)Rb uptake in MDA-MB453 cells but not in MCF-10A cells. All cancer cells had significantly higher vacuolar H-ATPase (V-ATPase) activity than MCF-10A cells. Inhibition of V-ATPase decreased (86)Rb uptake and intracellular potassium in MDA-MB453 cells but not in MCF-10A cells. The findings point to the absence of Na-K, high hERG and KCNQ2 expression, elevated V-ATPase activity and sensitivity to V-ATPase inhibitors in MDA-MB453. We conclude that cancer cells exhibit fundamentally different metabolic pathways for maintenance of intracellular ion homeostasis.
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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