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Updated: Mar 10, 2026

Establishment of an Extracellular Acidic pH Culture System
Published on: November 19, 2017
Acidic tumor microenvironment abrogates the efficacy of mTORC1 inhibitors
Seraina Faes1, Adrian P Duval1,2, Anne Planche1
1Lausanne University Hospital CHUV and University of Lausanne, Pavillon 4, Av. de Beaumont, 1011, Lausanne, Switzerland.
Background:
Blocking the mechanistic target of rapamycin complex-1 (mTORC1) with chemical inhibitors such as rapamycin has shown limited clinical efficacy in cancer. The tumor microenvironment is characterized by an acidic pH which interferes with cancer therapies. The consequences of acidity on the anti-cancer efficacy of mTORC1 inhibitors have not been characterized and are thus the focus of our study.
Methods:
Cancer cell lines were treated with rapamycin in acidic or physiological conditions and cell proliferation was investigated. The effect of acidity on mTORC1 activity was determined by Western blot. The anticancer efficacy of rapamycin in combination with sodium bicarbonate to increase the intratumoral pH was tested in two different mouse models and compared to rapamycin treatment alone. Histological analysis was performed on tumor samples to evaluate proliferation, apoptosis and necrosis.
Results:
Exposing cancer cells to acidic pH in vitro significantly reduced the anti-proliferative effect of rapamycin. At the molecular level, acidity significantly decreased mTORC1 activity, suggesting that cancer cell proliferation is independent of mTORC1 in acidic conditions. In contrast, the activation of mitogen-activated protein kinase (MAPK) or AKT were not affected by acidity, and blocking MAPK or AKT with a chemical inhibitor maintained an anti-proliferative effect at low pH. In tumor mouse models, the use of sodium bicarbonate increased mTORC1 activity in cancer cells and potentiated the anti-cancer efficacy of rapamycin. Combining sodium bicarbonate with rapamycin resulted in increased tumor necrosis, increased cancer cell apoptosis and decreased cancer cell proliferation as compared to single treatment.
Conclusions:
Taken together, these results emphasize the inefficacy of mTORC1 inhibitors in acidic conditions. They further highlight the potential of combining sodium bicarbonate with mTORC1 inhibitors to improve their anti-tumoral efficacy.
Insights
Acidity reduces the effectiveness of mTORC1 inhibitors in cancer treatment. Combining these inhibitors with sodium bicarbonate enhances anti-cancer efficacy by normalizing tumor pH and boosting mTORC1 activity.
Area of Science:
- Oncology
- Cancer Biology
- Tumor Microenvironment
Background:
- Mechanistic target of rapamycin complex-1 (mTORC1) inhibitors show limited clinical efficacy in cancer.
- Tumor microenvironment acidity can interfere with cancer therapies.
- The impact of acidity on mTORC1 inhibitor efficacy is not well understood.
Purpose of the Study:
- To investigate the consequences of acidic tumor microenvironment on the anti-cancer efficacy of mTORC1 inhibitors.
- To determine if modulating intratumoral pH can improve the effectiveness of mTORC1 inhibitors.
Main Methods:
- Cancer cell lines were treated with rapamycin under acidic and physiological conditions to assess proliferation.
- mTORC1 activity was measured by Western blot.
- The combination of rapamycin and sodium bicarbonate was tested in mouse models, with histological analysis of tumor samples.
Main Results:
- Acidic pH significantly reduced rapamycin's anti-proliferative effect and decreased mTORC1 activity in vitro.
- MAPK and AKT activation remained unaffected by acidity, and their inhibition retained anti-proliferative effects.
- Sodium bicarbonate increased mTORC1 activity and potentiated rapamycin's anti-cancer efficacy in vivo, leading to increased necrosis and apoptosis, and decreased proliferation.
Conclusions:
- mTORC1 inhibitors are ineffective under acidic tumor conditions.
- Combining sodium bicarbonate with mTORC1 inhibitors is a promising strategy to enhance anti-tumoral efficacy.
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