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Rett syndrome microglia damage dendrites and synapses by the elevated release of glutamate
1Department of Pathology, Laboratory Medicine, Medical Investigation of Neurodevelopmental Disorders Institute, University of California Davis Medical Center, Sacramento, California 95817, USA.
Abstract:
MECP2, an X-linked gene encoding the epigenetic factor methyl-CpG-binding protein-2, is mutated in Rett syndrome (RTT) and aberrantly expressed in autism. Most children affected by RTT are heterozygous Mecp2(-/+) females whose brain function is impaired postnatally due to MeCP2 deficiency. Recent studies suggest a role of glia in causing neuronal dysfunction via a non-cell-autonomous effect in RTT. Here we report a potent neurotoxic activity in the conditioned medium (CM) obtained from Mecp2-null microglia. Hippocampal neurons treated with CM from Mecp2-null microglia showed an abnormal stunted and beaded dendritic morphology, and signs of microtubule disruption and damage of postsynaptic glutamatergic components within 24 h. We identified that the toxic factor in the CM is glutamate, because (1) Mecp2-null microglia released a fivefold higher level of glutamate, (2) blockage of microglial glutamate synthesis by a glutaminase inhibitor abolished the neurotoxic activity, (3) blockage of microglial glutamate release by gap junction hemichannel blockers abolished the neurotoxic activity, and (4) glutamate receptor antagonists blocked the neurotoxicity of the Mecp2-null microglia CM. We further identified that increased levels of glutaminase and connexin 32 in Mecp2-null microglia are responsible for increased glutamate production and release, respectively. In contrast, the CM from highly pure Mecp2-null astrocyte cultures showed no toxic effect. Our results suggest that microglia may influence the onset and progression of RTT and that microglia glutamate synthesis or release could be a therapeutic target for RTT.
Insights
Microglia lacking MECP2 release excess glutamate, causing neurotoxicity in Rett syndrome (RTT). Targeting microglial glutamate may offer a therapeutic strategy for RTT.
Area of Science:
- Neuroscience
- Genetics
- Cell Biology
Background:
- Mutations in MECP2 cause Rett syndrome (RTT), a neurodevelopmental disorder.
- MeCP2 deficiency impairs brain function, with glia potentially contributing to neuronal dysfunction in RTT.
Purpose of the Study:
- To investigate the neurotoxic potential of microglia in the context of MECP2 deficiency.
- To identify the specific mechanisms and factors responsible for microglial-induced neurotoxicity in RTT models.
Main Methods:
- Cultured Mecp2-null microglia and astrocytes.
- Treatment of hippocampal neurons with conditioned medium (CM).
- Assessment of neuronal morphology, microtubule integrity, and postsynaptic components.
- Measurement of glutamate levels and inhibition of synthesis/release pathways.
- Analysis of glutaminase and connexin 32 expression.
Main Results:
- CM from Mecp2-null microglia induced stunted and beaded dendritic morphology in neurons.
- Glutamate was identified as the toxic factor, with Mecp2-null microglia releasing fivefold higher levels.
- Inhibition of microglial glutamate synthesis or release abolished neurotoxicity.
- Increased glutaminase and connexin 32 in Mecp2-null microglia correlated with higher glutamate production and release.
Conclusions:
- Mecp2-null microglia exert a potent neurotoxic effect mediated by glutamate.
- Microglial glutamate dysregulation may play a significant role in the pathogenesis of Rett syndrome.
- Targeting microglial glutamate synthesis or release presents a potential therapeutic avenue for RTT.
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