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Updated: Jul 31, 2026

Preparation of Oligomeric β-amyloid1-42 and Induction of Synaptic Plasticity Impairment on Hippocampal Slices
Published on: July 15, 2010
Activation of microglia by secreted amyloid precursor protein evokes release of glutamate by cystine exchange and
1Department of Geriatrics, University of Arkansas for Medical Sciences, Little Rock, Arkansas, USA. BargerStevenW@exchange.uams.edu
Abstract:
Microglial activation as part of a chronic inflammatory response is a prominent component of Alzheimer's disease. Secreted forms of the beta-amyloid precursor protein (sAPP) previously were found to activate microglia, elevating their neurotoxic potential. To explore neurotoxic mechanisms, we analyzed microglia-conditioned medium for agents that could activate glutamate receptors. Conditioned medium from primary rat microglia activated by sAPP caused a calcium elevation in hippocampal neurons, whereas medium from untreated microglia did not. This response was sensitive to the NMDA receptor antagonist, aminophosphonovaleric acid. Analysis of microglia-conditioned by HPLC revealed dramatically higher concentrations of glutamate in cultures exposed to sAPP. Indeed, the glutamate levels in sAPP-treated cultures were substantially higher than those in cultures treated with amyloid beta-peptide. This sAPP-evoked glutamate release was completely blocked by inhibition of the cystine-glutamate antiporter by alpha-aminoadipate or use of cystine-free medium. Furthermore, a sublethal concentration of sAPP compromised synaptic density in microglia-neuron cocultures, as evidenced by neuronal connectivity assay. Finally, the neurotoxicity evoked by sAPP in microglia-neuron cocultures was attenuated by inhibitors of either the neuronal nitric oxide synthase (N(G)-propyl-L-arginine) or inducible nitric oxide synthase (1400 W). Together, these data indicate a scenario by which microglia activated by sAPP release excitotoxic levels of glutamate, probably as a consequence of autoprotective antioxidant glutathione production within the microglia, ultimately causing synaptic degeneration and neuronal death.
Insights
Secreted amyloid precursor protein (sAPP) activates microglia, leading to glutamate release and neurotoxicity in Alzheimer's disease. This process contributes to synaptic degeneration and neuronal death, highlighting a key inflammatory mechanism.
Area of Science:
- Neuroscience
- Cell Biology
- Pathology
Background:
- Microglial activation is central to Alzheimer's disease (AD) chronic inflammation.
- Secreted amyloid precursor protein (sAPP) activates microglia, increasing neurotoxicity.
Purpose of the Study:
- To investigate the neurotoxic mechanisms by which sAPP-activated microglia harm neurons.
- To identify agents in microglia-conditioned medium that activate glutamate receptors.
Main Methods:
- Analysis of microglia-conditioned medium for glutamate levels using HPLC.
- Assessment of calcium elevation in hippocampal neurons.
- Neuronal connectivity assays in microglia-neuron cocultures.
- Pharmacological inhibition of glutamate transport and nitric oxide synthase.
Main Results:
- sAPP-activated microglia released significantly higher glutamate concentrations.
- sAPP-induced glutamate release was blocked by inhibiting the cystine-glutamate antiporter.
- sAPP compromised synaptic density and caused neurotoxicity in cocultures.
- Neurotoxicity was attenuated by nitric oxide synthase inhibitors.
Conclusions:
- Microglia activated by sAPP release excitotoxic glutamate levels, contributing to AD pathogenesis.
- This glutamate release is linked to microglial glutathione production.
- sAPP-induced microglial activation drives synaptic degeneration and neuronal death in AD.
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