Beyond Glycolysis: Targeting Non-Glycolytic Metabolic Pathways in Brain Tumors for Therapeutic Innovation: A Narrative Review.
This narrative review synthesizes preclinical and translational evidence that fatty acid oxidation, amino acid metabolism, mitochondrial dynamics, oxidative phosphorylation, and the kynurenine–AHR axis support brain-tumor survival, resistance, and immune evasion and may provide combination-treatment targets.
Open original publication →What the AI sees
This narrative review synthesizes preclinical and translational evidence that fatty acid oxidation, amino acid metabolism, mitochondrial dynamics, oxidative phosphorylation, and the kynurenine–AHR axis support brain-tumor survival, resistance, and immune evasion and may provide combination-treatment targets.
Research significance
The reviewed evidence suggests that inhibiting selected non-glycolytic metabolic dependencies may sensitize metabolically defined brain tumors to radiotherapy, immunotherapy, or other treatments; this remains an inferred therapeutic strategy requiring brain-penetrant agents, biomarkers, and prospective clinical validation.
Source abstract
BACKGROUND AND AIMS: Metabolic reprogramming is a hallmark of brain tumors, extending beyond the classical Warburg effect. While glycolysis has been extensively studied, gliomas and pediatric high-grade brain cancers demonstrate remarkable metabolic plasticity. This review aims to highlight non-glycolytic metabolic pathways that sustain tumor growth, contribute to therapy resistance, and offer translational potential in neuro-oncology. METHODS: We conducted a comprehensive synthesis of recent preclinical and translational studies focusing on non-glycolytic metabolic dependencies in brain tumors. Particular emphasis was placed on fatty acid oxidation (FAO), amino acid metabolism, mitochondrial dynamics, and immune metabolic interfaces. RESULTS: Emerging evidence indicates that FAO supports ATP synthesis and redox balance under hypoxic conditions. Glutaminolysis and serine/glycine metabolism maintain nucleotide and antioxidant pools essential for tumor survival. Mitochondrial fusion-fission dynamics and Complex I mutations enhance oxidative phosphorylation (OXPHOS) adaptability. Targeting these metabolic nodes, individually or in combination, reduces tumor growth, reverses drug resistance and sensitizes tumors to radiotherapy and immunotherapy. Additionally, the tryptophan-kynurenine-AHR axis contributes to immune evasion, underscoring the interplay between metabolism and tumor immunology. DISCUSSION: Non-glycolytic metabolism represents an emerging frontier for precision neuro-oncology. The integration of metabolic inhibitors with conventional or immune-based therapies shows promise in preclinical models. However, overcoming metabolic plasticity and therapeutic resistance will require patient stratification, blood-brain barrier penetrant inhibitors, and biomarker-guided clinical trials. These insights underscore the need to translate metabolic vulnerabilities into clinically actionable strategies. CONCLUSION: Non-glycolytic metabolic pathways, including lipid, nucleotide, and amino acid metabolism, offer promising therapeutic targets to overcome tumor survival and therapy resistance in brain tumors. However, despite encouraging preclinical evidence, the clinical development of such targeted metabolic therapies remains in its early stages.