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Published on: March 22, 2015
A Metabolomics Study of BPTES Altered Metabolism in Human Breast Cancer Cell Lines
G A Nagana Gowda1, Gregory A Barding1, Jin Dai1
1Department of Anesthesiology and Pain Medicine, Northwest Metabolomics Research Center, University of Washington, Seattle, WA, United States.
Abstract:
The Warburg effect is a well-known phenomenon in cancer, but the glutamine addiction in which cancer cells utilize glutamine as an alternative source of energy is less well known. Recent efforts have focused on preventing cancer cell proliferation associated with glutamine addiction by targeting glutaminase using the inhibitor BPTES (bis-2-(5-phenylacetamido-1,3,4-thiadiazol-2-yl)ethyl sulfide). In the current study, an investigation of the BPTES induced changes in metabolism was made in two human breast cancer cell lines, MCF7 (an estrogen receptor dependent cell line) and MDA-MB231 (a triple negative cell line), relative to the non-cancerous cell line, MCF10A. NMR spectroscopy combined with a recently established smart-isotope tagging approach enabled quantitative analysis of 41 unique metabolites representing numerous metabolite classes including carbohydrates, amino acids, carboxylic acids and nucleotides. BPTES induced metabolism changes in the cancer cell lines were especially pronounced under hypoxic conditions with up to 1/3 of the metabolites altered significantly (p < 0.05) relative to untreated cells. The BPTES induced changes were more pronounced for MCF7 cells, with 14 metabolites altered significantly (p < 0.05) compared to seven for MDA-MB231. Analyses of the results indicate that BPTES affected numerous metabolic pathways including glycolysis, TCA cycle, nucleotide and amino acid metabolism in cancer. The distinct metabolic responses to BPTES treatment determined in the two breast cancer cell lines offer valuable metabolic information for the exploration of the therapeutic responses to breast cancer.
Insights
Cancer cells
Area of Science:
- Metabolomics
- Cancer Biology
- Biochemistry
Background:
- The Warburg effect is a known cancer hallmark.
- Cancer cells exhibit glutamine addiction, utilizing glutamine for energy.
- Glutaminase inhibitors, like BPTES, target this addiction.
Purpose of the Study:
- Investigate BPTES-induced metabolic changes in breast cancer cells.
- Compare metabolic responses in estrogen receptor-dependent (MCF7) and triple-negative (MDA-MB231) cell lines.
- Analyze metabolic alterations relative to non-cancerous MCF10A cells.
Main Methods:
- Utilized Nuclear Magnetic Resonance (NMR) spectroscopy.
- Employed a smart-isotope tagging approach for quantitative metabolite analysis.
- Analyzed 41 unique metabolites across various classes.
Main Results:
- BPTES significantly altered metabolism in cancer cells, especially under hypoxia.
- MCF7 cells showed more pronounced changes (14 metabolites) than MDA-MB231 cells (7 metabolites).
- Affected pathways include glycolysis, TCA cycle, nucleotide, and amino acid metabolism.
Conclusions:
- BPTES impacts multiple metabolic pathways crucial for cancer cell survival.
- Distinct metabolic responses in different breast cancer subtypes provide therapeutic insights.
- Metabolic profiling aids in understanding and predicting therapeutic responses to BPTES.
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