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Updated: Jul 8, 2026

A Preclinical Mouse Model of Osteosarcoma to Define the Extracellular Vesicle-mediated Communication Between Tumor and Mesenchymal Stem Cells
Published on: May 6, 2018
In vitro modeling of nutritional and mitochondria-targeted therapies for osteosarcoma
Abstract:
Osteosarcoma is the most common pediatric bone tumor yet has limited treatment options, especially for metastatic cases with a 20% adjusted 5-year survival rate. Current therapies are non-specific, involving primary tumor resection with DNA-damaging chemotherapies like methotrexate, doxorubicin, and cisplatin. Few effective treatment options exist for metastases. Targeting metabolism involving cancers reduced mitochondrial functionality remains underexplored in osteosarcoma. We investigated the therapeutic potential in human osteosarcoma primary and metastatic cell lines of metabolic modulating drugs including metformin, cycloheximide, mitochondrial ETC inhibitors (antimycin A, metformin), dichloroacetate, and imipridones (ONC201, ONC206) on mitochondrial function and cell viability, individually and combined under various nutrient conditions across our lines. Results confirmed osteosarcoma cells are more dependent on glucose than osteoblasts but also require mitochondrial function for survival, highlighting the therapeutic potential of metabolic pathways. Osteosarcoma cell viability was reduced when any metabolic drug treatment was combined with conditions forcing reliance on mitochondrial OXPHOS capacity. Combination metabolic therapies, particularly ONC201/ONC206/metformin in 143B cells, and to a lesser extent DCA and ONC201 with either ONC206 or antimycin A, showed enhanced cytotoxicity compared to single agents, with a good therapeutic index based on minimal toxicity to normal osteoblast cells. The degree of effectiveness varied across cell lines, underscoring the importance of personalized treatment strategies. RNA-Seq transcriptome analysis revealed that effective nutrient and metabolic drug treatments triggered widespread regulatory changes in osteosarcoma cells involving increased translation/splicing with decreased mitochondrial processes such as cholesterol biosynthesis. These results demonstrate the utility of developing combined metabolic and chemotherapeutic treatments for osteosarcoma.
Insights
Metabolic drug combinations show promise for treating osteosarcoma, a rare pediatric cancer. Targeting cancer cell metabolism, especially mitochondrial function, offers new therapeutic avenues for improved patient survival rates.
Area of Science:
- Oncology
- Metabolic Pathways
- Mitochondrial Function
Background:
- Osteosarcoma is a common pediatric bone cancer with poor survival rates for metastatic cases.
- Current treatments lack specificity and are ineffective against metastases.
- Targeting cancer metabolism, particularly mitochondrial function, is an underexplored therapeutic strategy for osteosarcoma.
Purpose of the Study:
- To investigate the therapeutic potential of metabolic modulating drugs in human osteosarcoma cell lines.
- To assess the impact of these drugs on mitochondrial function and cell viability, individually and in combination.
- To explore combination therapies for enhanced osteosarcoma treatment.
Main Methods:
- Tested metabolic drugs (metformin, cycloheximide, antimycin A, dichloroacetate, ONC201, ONC206) on osteosarcoma and osteoblast cell lines.
- Evaluated drug effects on mitochondrial function and cell viability under various nutrient conditions.
- Utilized RNA-Seq transcriptome analysis to understand cellular regulatory changes.
Main Results:
- Osteosarcoma cells rely on both glucose and mitochondrial function for survival.
- Combined metabolic therapies, especially ONC201/ONC206/metformin, significantly reduced osteosarcoma cell viability.
- Effective treatments showed enhanced cytotoxicity with minimal toxicity to normal osteoblast cells.
- Transcriptome analysis revealed significant regulatory changes in response to metabolic interventions.
Conclusions:
- Metabolic pathways represent a promising therapeutic target for osteosarcoma.
- Combination metabolic therapies offer enhanced efficacy compared to single agents.
- Personalized treatment strategies are crucial due to varying effectiveness across cell lines.
- Developing combined metabolic and chemotherapeutic treatments is a viable strategy for osteosarcoma.
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