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Assessing Retinal Microglial Phagocytic Function In Vivo Using a Flow Cytometry-based Assay
Published on: October 18, 2016
Early life high fructose impairs microglial phagocytosis and neurodevelopment
Zhaoquan Wang1,2, Allie Lipshutz1, Celia Martínez de la Torre3,4
1Immunology Program, Sloan Kettering Institute, Memorial Sloan Kettering Cancer Center, New York, NY, USA.
Insights
High fructose intake impairs microglial phagocytosis, crucial for brain development. Blocking fructose uptake via GLUT5 in microglia prevents this dysfunction and rescues anxiety-like behaviors in adolescent mice.
Area of Science:
- Neuroscience
- Developmental Biology
- Metabolic Research
Background:
- High fructose consumption is linked to neurodevelopmental issues.
- Microglial phagocytosis is essential for proper brain development.
- The impact of early-life fructose exposure on microglial function is unknown.
Purpose of the Study:
- To investigate how high fructose consumption affects microglial phagocytosis in early life.
- To determine the role of the fructose transporter GLUT5 in mediating these effects.
- To explore the mechanistic link between fructose, microglial function, and adolescent anxiety.
Main Methods:
- Mice were fed high-fructose diets during pregnancy and neonatally.
- Microglial phagocytic activity was assessed in vivo and in vitro.
- Genetic deletion of GLUT5 in neonatal microglia was performed.
- Metabolic pathways and enzyme localization (hexokinase 2) were analyzed.
- Anxiety-like behaviors were evaluated in adolescent offspring.
Main Results:
- High fructose exposure decreased microglial phagocytic activity in neonatal mice.
- Deletion of GLUT5 in microglia normalized phagocytic function.
- High fructose increased GLUT5-dependent fructose uptake and altered microglial metabolism.
- Mice exposed to high fructose exhibited anxiety-like behaviors, which were rescued in GLUT5-deficient mice.
Conclusions:
- High fructose directly impairs neonatal microglial phagocytosis via GLUT5-mediated uptake.
- Altered microglial metabolism contributes to phagocytic dysfunction.
- Early-life high fructose exposure can lead to adolescent anxiety, mediated by GLUT5 and microglial function.
Abstract:
Despite the success of fructose as a low-cost food additive, epidemiological evidence suggests that high fructose consumption during pregnancy or adolescence is associated with disrupted neurodevelopment1-3. An essential step in appropriate mammalian neurodevelopment is the phagocytic elimination of newly formed neurons by microglia, the resident professional phagocyte of the central nervous system4. Whether high fructose consumption in early life affects microglial phagocytosis and whether this directly affects neurodevelopment remains unknown. Here we show that offspring born to female mice fed a high-fructose diet and neonates exposed to high fructose exhibit decreased phagocytic activity in vivo. Notably, deletion of the high-affinity fructose transporter GLUT5 (also known as SLC2A5) in neonatal microglia completely reversed microglia phagocytic dysfunction, suggesting that high fructose directly affects neonatal development by suppressing microglial phagocytosis. Mechanistically, we found that high-fructose treatment of mouse and human microglia suppresses phagocytosis capacity, which is rescued in GLUT5-deficient microglia. Additionally, we found that high fructose drives significant GLUT5-dependent fructose uptake and catabolism to fructose 6-phosphate, rewiring microglial metabolism towards a hypo-phagocytic state in part by enforcing mitochondrial localization of the enzyme hexokinase 2. Mice exposed to high fructose as neonates develop anxiety-like behaviour as adolescents-an effect that is rescued in GLUT5-deficient mice. Our findings provide a mechanistic explanation for the epidemiological observation that high-fructose exposure during early life is associated with increased prevalence of adolescent anxiety disorders.
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