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August 13, 2026Cancers0 citationsOpen Access

Fatty Acid Metabolism Rewires Glioblastoma Progression and Treg-Mediated Immune Resistance

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NCNowreen Islam ChowdhuryHEHeba A. EwidaMAMahmoud S. Ahmed

Key Points

  • This research aims to understand how fatty acid metabolism influences glioblastoma progression and immune resistance through regulatory T cells.
  • Pre-clinical and clinical studies analyze the role of fatty acid metabolism in glioblastoma growth and immune regulation.
  • Investigated the impact of lipid uptake and metabolic pathways on tumor and immune cell behavior within the tumor microenvironment.
  • Assessed the relationship between regulatory T cells enrichment and responsiveness to immune checkpoint inhibitors.
  • Fatty acid metabolism supports glioblastoma cell growth and therapeutic resistance.
  • High levels of regulatory T cells in glioblastoma correlate with reduced effectiveness of immune checkpoint inhibitors.
  • Targeting lipid-driven pathways shows promise in enhancing immunotherapy outcomes for glioblastoma.

Abstract

Glioblastoma (GBM) is one of the most aggressive and treatment-resistant cancers, shaped by a tumor microenvironment (TME) that is both metabolically demanding and strongly immunosuppressive. GBM relies heavily on fatty acid (FA) metabolism to sustain growth of rapidly dividing tumor cells and survive metabolic stress. GBM cells enhance lipid uptake, activate sterol regulatory element-binding protein 1 (SREBP-1)-driven lipogenesis, store excess lipids in droplets to prevent toxicity, and depend on fatty acid oxidation (FAO) to generate adenosine triphosphate (ATP) and maintain redox balance, particularly under nutrient-limited conditions. GBM TME is also consistently enriched with regulatory T cells (Tregs), which maintain suppressive activity despite the nutrient restrictions that impair effector T cells (Teffs). In hypoxia and nutrient limitation within the TME, Tregs can adapt by using FAO, lactate oxidation, and OXPHOS, supported by forkhead box P3 (Foxp3)-dependent metabolic programming, cluster of differentiation 36 (CD36)-mediated FA uptake, and hypoxia-related signals. At the same time, programmed cell death protein 1 (PD-1)/programmed death-ligand 1 (PD-L1) signaling reduces glycolytic activity in Teffs and contributes to metabolic dysfunction, while also supporting the stability of oxidative metabolism in Tregs. Evidence from pre-clinical and clinical studies suggests a possible association between Treg enrichment in GBM and reduced responsiveness to immune checkpoint inhibitors (ICIs), although this relationship is not yet fully defined. Overall, current findings point to FA metabolism as a shared metabolic axis that supports both tumor progression and Treg-mediated immune resistance. Targeting lipid-driven pathways may offer an opportunity to disrupt these advantages and improve the effectiveness of existing immunotherapies for GBM.

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Cite This Study

Chowdhury et al. (2026) studied this question.

synapsesocial.com/papers/6a7d768a2b0e0cff3f63ff12https://doi.org/10.3390/cancers18162573
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