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Induction of serine racemase expression and D-serine release from microglia by amyloid beta-peptide
Sheng-Zhou Wu1, Angela M Bodles, Mandy M Porter
1Department of Neurobiology & Developmental Sciences, University of Arkansas for Medical Sciences, Little Rock, Arkansas, USA. sbarger@uams.edu
Abstract:
BACKGROUND: Roles for excitotoxicity and inflammation in Alzheimer's disease have been hypothesized. Proinflammatory stimuli, including amyloid beta-peptide (Abeta), elicit a release of glutamate from microglia. We tested the possibility that a coagonist at the NMDA class of glutamate receptors, D-serine, could respond similarly. METHODS: Cultured microglial cells were exposed to Abeta. The culture medium was assayed for levels of D-serine by HPLC and for effects on calcium and survival on primary cultures of rat hippocampal neurons. Microglial cell lysates were examined for the levels of mRNA and protein for serine racemase, the enzyme that forms D-serine from L-serine. The racemase mRNA was also assayed in Alzheimer hippocampus and age-matched controls. A microglial cell line was transfected with a luciferase reporter construct driven by the putative regulatory region of human serine racemase. RESULTS: Conditioned medium from Abeta-treated microglia contained elevated levels of D-serine. Bioassays of hippocampal neurons with the microglia-conditioned medium indicated that Abeta elevated a NMDA receptor agonist that was sensitive to an antagonist of the D-serine/glycine site (5,7-dicholorokynurenic acid; DCKA) and to enzymatic degradation of D-amino acids by D-amino acid oxidase (DAAOx). In the microglia, Abeta elevated steady-state levels of dimeric serine racemase, the apparent active form of the enzyme. Promoter-reporter and mRNA analyses suggest that serine racemase is transcriptionally induced by Abeta. Finally, the levels of serine racemase mRNA were elevated in Alzheimer's disease hippocampus, relative to age-matched controls. CONCLUSIONS: These data suggest that Abeta could contribute to neurodegeneration through stimulating microglia to release cooperative excitatory amino acids, including D-serine.
Insights
Amyloid beta-peptide (Abeta) stimulates microglia to release D-serine, a coagonist of NMDA receptors. This finding suggests Abeta may contribute to Alzheimer's disease neurodegeneration by increasing excitotoxicity.
Area of Science:
- Neuroscience
- Molecular Biology
- Pathology
Background:
- Alzheimer's disease (AD) pathogenesis may involve excitotoxicity and inflammation.
- Amyloid beta-peptide (Abeta), a key player in AD, triggers glutamate release from microglia.
- The role of D-serine, an NMDA receptor coagonist, in this process was investigated.
Purpose of the Study:
- To determine if amyloid beta-peptide (Abeta) stimulates microglia to release D-serine.
- To investigate the impact of Abeta-induced D-serine release on neuronal excitotoxicity.
- To examine the regulation of serine racemase, the enzyme producing D-serine, by Abeta.
Main Methods:
- Primary microglial cultures were exposed to Abeta.
- D-serine levels in conditioned media were measured using HPLC.
- Neuronal excitotoxicity was assessed using primary rat hippocampal neuron cultures.
- Serine racemase mRNA and protein levels were analyzed in microglia and human hippocampus.
- Reporter assays were used to study serine racemase gene regulation.
Main Results:
- Abeta treatment increased D-serine levels in microglial conditioned media.
- The conditioned media enhanced NMDA receptor activity in hippocampal neurons.
- Abeta elevated serine racemase levels and activity in microglia.
- Serine racemase mRNA was upregulated by Abeta and elevated in Alzheimer's disease hippocampus.
Conclusions:
- Microglia release D-serine in response to Abeta stimulation.
- Abeta-induced D-serine release may contribute to NMDA receptor-mediated excitotoxicity in AD.
- Upregulation of serine racemase by Abeta suggests a molecular mechanism linking Abeta to D-serine production in AD pathogenesis.
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