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Updated: May 2, 2026

Induction of Mesenchymal-Epithelial Transitions in Sarcoma Cells
Published on: April 7, 2017
Bioenergetic properties of human sarcoma cells help define sensitivity to metabolic inhibitors
Sameer H Issaq1, Beverly A Teicher2, Anne Monks1
1Molecular Pharmacology Branch; Leidos Biomedical Research, Inc.; Frederick National Laboratory for Cancer Research; Frederick, MD USA.
Abstract:
Sarcomas represent a diverse group of malignancies with distinct molecular and pathological features. A better understanding of the alterations associated with specific sarcoma subtypes is critically important to improve sarcoma treatment. Renewed interest in the metabolic properties of cancer cells has led to an exploration of targeting metabolic dependencies as a therapeutic strategy. In this study, we have characterized key bioenergetic properties of human sarcoma cells in order to identify metabolic vulnerabilities between sarcoma subtypes. We have also investigated the effects of compounds that inhibit glycolysis or mitochondrial respiration, either alone or in combination, and examined relationships between bioenergetic parameters and sensitivity to metabolic inhibitors. Using 2-deoxy-D-glucose (2-DG), a competitive inhibitor of glycolysis, oligomycin, an inhibitor of mitochondrial ATP synthase, and metformin, a widely used anti-diabetes drug and inhibitor of complex I of the mitochondrial respiratory chain, we evaluated the effects of metabolic inhibition on sarcoma cell growth and bioenergetic function. Inhibition of glycolysis by 2-DG effectively reduced the viability of alveolar rhabdomyosarcoma cells vs. embryonal rhabdomyosarcoma, osteosarcoma, and normal cells. Interestingly, inhibitors of mitochondrial respiration did not significantly affect viability, but were able to increase sensitivity of sarcomas to inhibition of glycolysis. Additionally, inhibition of glycolysis significantly reduced intracellular ATP levels, and sensitivity to 2-DG-induced growth inhibition was related to respiratory rates and glycolytic dependency. Our findings demonstrate novel relationships between sarcoma bioenergetics and sensitivity to metabolic inhibitors, and suggest that inhibition of metabolic pathways in sarcomas should be further investigated as a potential therapeutic strategy.
Insights
Targeting cancer cell metabolism, specifically glycolysis, shows promise for treating certain sarcomas. Inhibiting glycolysis with 2-deoxy-D-glucose (2-DG) reduced sarcoma cell viability, especially in alveolar rhabdomyosarcoma.
Area of Science:
- Oncology
- Cancer Metabolism
- Biochemistry
Background:
- Sarcomas are diverse cancers requiring subtype-specific treatments.
- Targeting cancer cell metabolic dependencies is a promising therapeutic strategy.
- Understanding sarcoma bioenergetics can reveal unique vulnerabilities.
Purpose of the Study:
- To characterize bioenergetic properties of human sarcoma cells.
- To identify metabolic vulnerabilities across sarcoma subtypes.
- To evaluate the efficacy of glycolysis and mitochondrial respiration inhibitors.
Main Methods:
- Utilized 2-deoxy-D-glucose (2-DG), oligomycin, and metformin to inhibit glycolysis and mitochondrial respiration.
- Assessed sarcoma cell viability, intracellular ATP levels, and bioenergetic function.
- Correlated bioenergetic parameters with sensitivity to metabolic inhibitors.
Main Results:
- 2-deoxy-D-glucose (2-DG) significantly reduced viability in alveolar rhabdomyosarcoma cells compared to other sarcoma subtypes and normal cells.
- Mitochondrial respiration inhibitors alone did not affect viability but enhanced sensitivity to glycolysis inhibition.
- Glycolysis inhibition reduced intracellular ATP levels, with sensitivity linked to respiratory and glycolytic rates.
Conclusions:
- Novel relationships exist between sarcoma bioenergetics and metabolic inhibitor sensitivity.
- Targeting metabolic pathways, particularly glycolysis, warrants further investigation as a sarcoma therapy.
- Metabolic profiling can guide the development of targeted sarcoma treatments.

