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Updated: Jul 1, 2026

Investigating Glycolysis in Primary Microglia Using Extracellular Flux Assay
Published on: April 10, 2026
GLUT1-driven glycolytic reprogramming in microglia promotes neuroinflammation and cognitive deficits in
Hui Guo1, Hongling Li2, Hu Han2
1Department of Emergency Medicine, Hebei Medical University Third Hospital, Shijiazhuang, Hebei, China; Department of Emergency Medicine, Hebei General Hospital, Shijiazhuang, Hebei, China.
Background:
Sepsis-associated encephalopathy (SAE) is a severe neurological complication driven by microglial neuroinflammation. Proinflammatory microglial activation requires glycolytic reprogramming, but whether GLUT1 governs this process in SAE remains unclear.
Methods:
In vitro, LPS-stimulated BV2 microglia were transfected with siRNA targeting GLUT1 or GLUT3. Glucose uptake (2-NBDG), glycolytic flux (ECAR, lactate), mitochondrial respiration (OCR), glycolytic enzyme expression (HK2, PFKFB3, PKM2, LDHA), and inflammatory cytokine release were assessed. In vivo, SAE was induced in C57BL/6 mice by cecal ligation and puncture (CLP). Hippocampal GLUT1 knockdown was achieved via stereotactic lentivirus injection. Cognitive function, neuronal damage, neuroinflammation, cerebral lactate/ATP levels, and glycolytic protein expression were evaluated.
Results:
LPS significantly upregulated GLUT1, but not GLUT3, in BV2 cells. GLUT1 knockdown markedly suppressed LPS-enhanced glucose uptake, ECAR, lactate production, and expression of HK2, PFKFB3, PKM2, and LDHA, while restoring OCR and reducing TNF-α, IL-1β, and IL-6 secretion. GLUT3 knockdown showed no such effects. In SAE mice, hippocampal GLUT1 expression was increased. Hippocampal GLUT1 knockdown ameliorated cognitive deficits, attenuated hippocampal neuronal loss and Nissl body damage, reduced cerebral inflammatory cytokines and lactate, restored ATP content, and abrogated CLP-induced upregulation of glycolytic enzymes.
Conclusions:
GLUT1 is a critical metabolic checkpoint driving microglial glycolytic reprogramming and proinflammatory activation in SAE. Targeted GLUT1 knockdown in microglia alleviates neuroinflammation and cognitive impairment in experimental SAE models. These findings provide a proof-of-concept that metabolic checkpoint targeting may counteract microglial pro-inflammatory activation.
Insights
Glucose transporter 1 (GLUT1) drives neuroinflammation in sepsis-associated encephalopathy (SAE). Targeting GLUT1 in microglia reduces inflammation and cognitive deficits in SAE models, offering a potential therapeutic strategy.
Area of Science:
- Neuroscience
- Immunology
- Metabolism
Background:
- Sepsis-associated encephalopathy (SAE) involves microglial neuroinflammation.
- Microglial activation in SAE depends on glycolytic reprogramming.
- The role of glucose transporter 1 (GLUT1) in this process is not fully understood.
Purpose of the Study:
- To investigate the role of GLUT1 in microglial metabolic reprogramming and neuroinflammation in SAE.
- To evaluate the therapeutic potential of targeting GLUT1 in experimental SAE models.
Main Methods:
- In vitro: LPS-stimulated BV2 microglia treated with siRNA targeting GLUT1 or GLUT3.
- In vivo: Cecal ligation and puncture (CLP) model of SAE in mice with hippocampal GLUT1 knockdown.
- Assessed glucose uptake, glycolysis, mitochondrial respiration, inflammatory cytokine release, cognitive function, neuronal damage, and cerebral metabolites.
Main Results:
- LPS upregulated GLUT1 in microglia; GLUT1 knockdown suppressed glycolysis and inflammation.
- GLUT1 knockdown in SAE mice improved cognitive function and reduced neuronal damage and neuroinflammation.
- Targeting GLUT1 normalized cerebral lactate/ATP levels and glycolytic enzyme expression.
Conclusions:
- GLUT1 is a key metabolic regulator of microglial activation in SAE.
- Targeted GLUT1 knockdown ameliorates SAE-induced neuroinflammation and cognitive impairment.
- Metabolic checkpoint targeting represents a promising strategy against microglial pro-inflammatory activation.
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