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Early life high fructose exposure disrupts microglia function and impedes neurodevelopment
Insights
High fructose intake disrupts brain development by impairing microglia function, leading to cognitive and anxiety issues. Blocking fructose transport in neonates rescues these negative effects on neurodevelopment.
Area of Science:
- Neuroscience
- Developmental Biology
- Metabolic Disorders
Background:
- Epidemiological studies link high fructose consumption during pregnancy and adolescence to neurodevelopmental disruptions.
- Microglia, the brain's immune cells, are crucial for synaptic pruning during neurodevelopment.
- The impact of early-life high fructose exposure on microglia function and neurodevelopment is not well understood.
Approach:
- Investigated the effects of high fructose diet on microglia density, apoptotic cell clearance, and synaptic pruning in vivo.
- Utilized genetic deletion of the fructose transporter SLC2A5 (GLUT5) to assess direct fructose effects.
- Employed in vivo and in vitro fructose tracing (NMR and mass spectrometry) to analyze metabolic pathways.
- Assessed cognitive function and anxiety-like behaviors in mice exposed to high fructose.
Key Points:
- High fructose consumption in early life decreases microglial density, impairs apoptotic cell clearance, and reduces synaptic pruning.
- Deletion of GLUT5 in neonates fully reverses high fructose-induced microglia dysfunction.
- High fructose alters microglia metabolism via GLUT5-dependent uptake and catabolism, promoting a hypo-phagocytic state.
- Neonatal high fructose exposure causes cognitive deficits and anxiety-like behaviors, which are rescued by GLUT5 deficiency.
Conclusions:
- Early-life high fructose exposure directly impairs microglia function, compromising essential neurodevelopmental processes like synaptic pruning.
- GLUT5 is a key mediator of fructose's detrimental effects on microglia and subsequent neurodevelopment.
- This study provides a mechanistic link between early fructose exposure and the increased prevalence of adolescent anxiety disorders.
Abstract:
Despite the success of fructose as a low-cost food additive, recent epidemiological evidence suggests that high fructose consumption by pregnant mothers or during adolescence is associated with disrupted neurodevelopment 1-7 . An essential step in appropriate mammalian neurodevelopment is the synaptic pruning and elimination of newly-formed neurons by microglia, the central nervous system's (CNS) resident professional phagocyte 8-10 . Whether early life high fructose consumption affects microglia function and if this directly impacts neurodevelopment remains unknown. Here, we show that both offspring born to dams fed a high fructose diet and neonates exposed to high fructose exhibit decreased microglial density, increased uncleared apoptotic cells, and decreased synaptic pruning in vivo . Importantly, deletion of the high affinity fructose transporter SLC2A5 (GLUT5) in neonates completely reversed microglia dysfunction, suggesting that high fructose directly affects neonatal development. Mechanistically, we found that high fructose treatment of both mouse and human microglia suppresses synaptic pruning and phagocytosis capacity which is fully reversed in GLUT5-deficient microglia. Using a combination of in vivo and in vitro nuclear magnetic resonance- and mass spectrometry-based fructose tracing, we found that high fructose drives significant GLUT5-dependent fructose uptake and catabolism, rewiring microglia metabolism towards a hypo-phagocytic state. Importantly, mice exposed to high fructose as neonates exhibited cognitive defects and developed anxiety-like behavior which were rescued in GLUT5-deficient animals. Our findings provide a mechanistic explanation for the epidemiological observation that early life high fructose exposure is associated with increased prevalence of adolescent anxiety disorders.
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