ArticleCancer & metabolism2024
Glutaminolysis is associated with mitochondrial pathway activation and can be therapeutically targeted in glioblastoma.
Article in Cancer & metabolism, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 8 papers.
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Who cites it
8 citing papers in PubMed.
- Beyond Glycolysis: Targeting Non-Glycolytic Metabolic Pathways in Brain Tumors for Therapeutic Innovation: A Narrative Review.Health science reports · 2026Article
- Article
- Metabolic gene expression-based stratification and prognostic risk predictive model of head and neck squamous cell carcinoma.NPJ systems biology and applications · 2026Article
- Checkpoint inhibitor-associated pneumonitis in non-small cell lung cancer: a cohort study with transcriptomic analysis of inflammatory mechanisms.BMC pulmonary medicine · 2025Article
- Targeting the Mitochondria in High-Grade Gliomas.Cancers · 2025Review
- Review
- Lactate-coated polyurea-siRNA dendriplex: a gene therapy-directed and metabolism-based strategy to impair glioblastoma (GBM).Cancer gene therapy · 2025Article
- Metabolism of glioblastoma: a review of metabolic adaptations and metabolic therapeutic interventions.Frontiers in oncology · 2025Review
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Authors and funding
19 authors.
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Abstract
backgroundGlioblastoma is an aggressive cancer that originates from abnormal cell growth in the brain and requires metabolic reprogramming to support tumor growth. Metabolic reprogramming involves the upregulation of various metabolic pathways. Although the activation of specific metabolic pathways in glioblastoma cell lines has been documented, the comprehensive profile of metabolic reprogramming and the role of each pathway in glioblastoma tissues in patients remain elusive.
methodsWe analyzed 38 glioblastoma tissues. As a test set, we examined 20 tissues from Kyushu University Hospital, focusing on proteins related to several metabolic pathways, including glycolysis, the one-carbon cycle, glutaminolysis, and the mitochondrial tricarboxylic acid cycle. Subsequently, we analyzed an additional 18 glioblastoma tissues from Kagoshima University Hospital as a validation set. We also validated our findings using six cell lines, including U87, LN229, U373, T98G, and two patient-derived cells.
resultsThe levels of mitochondria-related proteins (COX1, COX2, and DRP1) were correlated with each other and with glutaminolysis-related proteins (GLDH and GLS1). Conversely, their expression was inversely correlated with that of glycolytic proteins. Notably, inhibiting the glutaminolysis pathway in cell lines with high GLDH and GLS1 expression proved effective in suppressing tumor growth.
conclusionsOur findings confirm that glioblastoma tissues can be categorized into glycolytic-dominant and mitochondrial-dominant types, as previously reported. The mitochondrial-dominant type is also glutaminolysis-dominant. Therefore, inhibiting the glutaminolysis pathway may be an effective treatment for mitochondrial-dominant glioblastoma.
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