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Updated: Apr 23, 2026

Studying Triple Negative Breast Cancer Using Orthotopic Breast Cancer Model
Published on: March 20, 2020
Use of proton pump inhibitors as adjunct treatment for triple-negative breast cancers. An introductory study
Wayne Goh1, Inna Sleptsova-Freidrich, Nenad Petrovic
1School of Pharmacy and Medical Sciences, University of South Australia, Adelaide, Australia.
Purpose:
Triple negative breast cancers (estrogen, progesterone and human epidermal growth factor 2 (HER2) receptor-negative) are among the most aggressive forms of cancers with limited treatment options. Doxorubicin is one of the agents found in many of the current cancer treatment protocols, although its use is limited by dose-dependent cardiotoxicity. This work investigates one of the ways to suppress cancer growth by inhibiting tumor cell ability to remove acid accumulated during its metabolism by proton pump inhibitor esomeprazole (a drug with extensive clinical use) which could serve as an addition to doxorubicin therapy.
Methods:
In this work, we have investigated growth suppression of triple-negative breast cancer cells MDA-MB-468 by esomeprazole and doxorubicin by trypan blue exclusion assay. Measurement of acidification of treated cancer cells was performed using intracellular pH-sensitive probe, BCECF-AM. Finally, expression of gastric type proton pump (H+/K+ ATPase, a target for esomeprazole) on MDA-MB-468 cells was detected by immunofluorescence and Western blotting.
Results:
We have found that esomeprazole suppresses growth of triple-negative breast cancer cell in vitro in a dose-dependent manner through increase in their intracellular acidification. In contrast, esomeprazole did not have significant effect on non-cancerous breast epithelial MCF-10A cells. Esomeprazole increases doxorubicin effects suggesting that dual treatments might be possible. In addition, response of MDA-MB-468 cells to esomeprazole could be mediated by gastric type proton pump (H+/K+ ATPase) in cancer cells contrary to previous beliefs that this proton pump expression is restricted to parietal cells of the stomach epithelia.
Conclusion:
This study provides first evidence that adjunct use of esomeprazole in breast cancer treatment might be a possible to combat adverse effects of doxorubicin and increase its effectiveness.
Insights
Proton pump inhibitor esomeprazole shows potential in treating aggressive triple-negative breast cancer by increasing intracellular acidity. This approach may enhance doxorubicin effectiveness and mitigate its side effects.
Area of Science:
- Oncology
- Pharmacology
- Cell Biology
Background:
- Triple-negative breast cancer (TNBC) is aggressive with limited therapeutic options.
- Doxorubicin is a common chemotherapy, but its use is limited by cardiotoxicity.
- Esomeprazole, a proton pump inhibitor, is explored for its potential anti-cancer effects.
Purpose of the Study:
- To investigate the efficacy of esomeprazole in suppressing TNBC growth.
- To determine if esomeprazole can enhance doxorubicin therapy for TNBC.
- To explore the mechanism of esomeprazole action, including its effect on intracellular pH and proton pump expression.
Main Methods:
- MDA-MB-468 TNBC cells were treated with esomeprazole and doxorubicin.
- Cell viability was assessed using the trypan blue exclusion assay.
- Intracellular acidification was measured using the BCECF-AM probe.
- Expression of H+/K+ ATPase (proton pump) was analyzed by immunofluorescence and Western blotting.
Main Results:
- Esomeprazole dose-dependently suppressed TNBC cell growth in vitro.
- Esomeprazole increased intracellular acidification in TNBC cells.
- Esomeprazole enhanced the effects of doxorubicin, suggesting synergistic potential.
- H+/K+ ATPase was detected in TNBC cells, indicating a potential target for esomeprazole.
Conclusions:
- Adjunct use of esomeprazole may combat adverse effects of doxorubicin and increase its effectiveness in breast cancer treatment.
- Esomeprazole's anti-cancer activity in TNBC is mediated by increased intracellular acidification.
- The presence of H+/K+ ATPase in TNBC cells opens new therapeutic avenues.
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