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Updated: Aug 5, 2026

Investigating Glycolysis in Primary Microglia Using Extracellular Flux Assay
Published on: April 10, 2026
The brain's sweet spot: why microglia can run on fructose metabolism
Yasmina Eshac1,2, Julieanne Cabang3, Jason Miska1,2
1Department of Neurological Surgery, Feinberg School of Medicine, Northwestern University, Chicago, IL, United States.
Abstract:
Microglia are the resident myeloid cells of the central nervous system (CNS), and their identity and function are shaped by developmental origin, local signaling, and metabolic specialization. The fructose transporter GLUT5 (SLC2A5) stands out as a selective and conserved microglial marker that remains strongly associated with resident microglia across homeostatic and disrupted CNS states. In the CNS, fructose appears to be regulated locally rather than reflecting circulating levels, raising the possibility that fructose metabolism serves a unique functional role in microglia. Recent studies suggest that this pathway has a meaningful functional role. Fructose availability in the CNS can directly reshape microglial behavior by altering phagocytosis, redox balance, metabolic state, and downstream immune signaling in contexts ranging from neurodevelopment to glioblastoma. Our recent study showed that microglia fructose metabolism in glioblastoma drives an immunosuppressive state, limiting antigen presentation and downstream anti-tumor immunity. In this review, we examine microglial identity and metabolism in the context of GLUT5 and fructose uptake, summarize evidence that fructose acts as a context-dependent regulator of microglial function, and discuss how this may reflect broader metabolic strategies used by resident cells in distinct fluid and tissue barriers. We propose that microglial fructose metabolism is not simply an incidental feature of these cells, but a biologically meaningful feature of CNS physiology with important implications for development, injury, and disease, though the mechanistic basis of this relationship remains an active area of investigation.
Insights
Microglia utilize fructose metabolism, regulated by GLUT5, to influence their function in the central nervous system (CNS). This metabolic pathway impacts immune responses in conditions from development to glioblastoma.
Area of Science:
- Neuroscience
- Immunology
- Metabolism
Background:
- Microglia are the primary immune cells of the central nervous system (CNS).
- Their identity and function are influenced by their origin, local signals, and metabolic processes.
- The fructose transporter GLUT5 (SLC2A5) is a conserved marker for resident microglia in both healthy and diseased CNS states.
Purpose of the Study:
- To review the role of GLUT5 and fructose uptake in microglial identity and metabolism.
- To summarize evidence on fructose as a regulator of microglial function.
- To discuss fructose metabolism in microglia within the context of broader cellular metabolic strategies.
Main Methods:
- Review of existing literature on microglial metabolism and fructose transport.
- Analysis of studies investigating GLUT5 expression and function in microglia.
- Examination of research on the functional consequences of fructose metabolism in microglial cells.
Main Results:
- Fructose metabolism, mediated by GLUT5, significantly impacts microglial behavior, including phagocytosis, redox balance, and immune signaling.
- In glioblastoma, microglial fructose metabolism promotes an immunosuppressive environment, hindering anti-tumor immunity.
- Fructose availability in the CNS appears locally regulated and plays a functional role in microglia.
Conclusions:
- Microglial fructose metabolism is a biologically significant feature of CNS physiology, not merely incidental.
- This pathway has implications for neurodevelopment, injury, and diseases like glioblastoma.
- Further research is needed to elucidate the mechanistic basis of microglial fructose metabolism and its functional outcomes.

