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Published on: March 28, 2021
Investigating a signature of temozolomide resistance in GBM cell lines using metabolomics
Patrick-Denis St-Coeur1, Julie J Poitras1, Miroslava Cuperlovic-Culf2
1Department of Chemistry and Biochemistry, Université de Moncton, 18 Antonine-Maillet Avenue, Moncton, NB, E1A 3E9, Canada.
Abstract:
Glioblastoma multiforme (GBM) is the most common form of malignant glioma. Current therapeutic approach to treat this malignancy involves a combination of surgery, radiotherapy and chemotherapy with temozolomide. Numerous mechanisms contributing to inherent and acquired resistance to this chemotherapeutic agent have been identified and can lead to treatment failure. This study undertook a metabolomics-based approach to characterize the metabolic profiles observed in temozolomide-sensitive and temozolomide-resistant GBM cell lines as well as in a small sub-set of primary GBM tumors. This approach was also utilized to explore the metabolic changes modulated upon cell treatment with temozolomide and lomeguatrib, an MGMT inhibitor with temozolomide-sensitizing potential. Metabolites previously explored for their potential role in chemoresistance including glucose, citrate and isocitrate demonstrated elevated levels in temozolomide-resistant GBM cells. In addition, a signature of metabolites comprising alanine, choline, creatine and phosphorylcholine was identified as up-regulated in sensitive GBM cell line across different treatments. These results present the metabolic profiles associated with temozolomide response in selected GBM models and propose interesting leads that could be leveraged for the development of therapeutic or diagnostic tools to impact temozolomide response in GBMs.
Insights
Metabolomics reveals distinct metabolic profiles in glioblastoma multiforme (GBM) cell lines, identifying key metabolites associated with temozolomide resistance and sensitivity. These findings could lead to new diagnostic or therapeutic tools for GBM treatment.
Area of Science:
- Neuro-oncology
- Metabolomics
- Cancer Metabolism
Background:
- Glioblastoma multiforme (GBM) is the most aggressive primary brain tumor.
- Current treatments combine surgery, radiation, and temozolomide chemotherapy.
- Drug resistance significantly limits treatment efficacy in GBM.
Purpose of the Study:
- To characterize metabolic profiles in temozolomide-sensitive and resistant GBM models.
- To investigate metabolic changes induced by temozolomide and an MGMT inhibitor (lomeguatrib).
- To identify potential metabolic biomarkers for predicting temozolomide response.
Main Methods:
- Utilized a metabolomics-based approach.
- Analyzed GBM cell lines (sensitive and resistant) and primary GBM tumors.
- Assessed metabolic profiles before and after treatment with temozolomide and lomeguatrib.
Main Results:
- Elevated levels of glucose, citrate, and isocitrate were observed in temozolomide-resistant GBM cells.
- A distinct metabolic signature (alanine, choline, creatine, phosphorylcholine) was upregulated in temozolomide-sensitive GBM cells.
- Metabolic profiles differed between sensitive and resistant GBM models and were modulated by treatment.
Conclusions:
- Metabolic profiling provides insights into temozolomide response in GBM.
- Identified specific metabolites linked to chemoresistance and sensitivity.
- These metabolic signatures offer potential for developing novel therapeutic or diagnostic strategies for GBM.
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