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Updated: Apr 9, 2026

A High-throughput Calcium-flux Assay to Study NMDA-receptors with Sensitivity to Glycine/D-serine and Glutamate
Published on: July 10, 2018
Calcium flux-independent NMDA receptor activity is required for Aβ oligomer-induced synaptic loss
J H Birnbaum1, J Bali2, L Rajendran2
11] Division of Psychiatry Research, University of Zurich, Schlieren, Switzerland [2] Graduate Program of the Zurich Neuroscience Center, University of Zurich, Schlieren, Switzerland.
Abstract:
Synaptic loss is one of the major features of Alzheimer's disease (AD) and correlates with the degree of dementia. N-methyl-D-aspartate receptors (NMDARs) have been shown to mediate downstream effects of the β-amyloid peptide (Aβ) in AD models. NMDARs can trigger intracellular cascades via Ca(2+) entry, however, also Ca(2+)-independent (metabotropic) functions of NMDARs have been described. We aimed to determine whether ionotropic or metabotropic NMDAR signaling is required for the induction of synaptic loss by Aβ. We show that endogenous Aβ as well as exogenously added synthetic Aβ oligomers induced dendritic spine loss and reductions in pre- and postsynaptic protein levels in hippocampal slice cultures. Synaptic alterations were mitigated by blocking glutamate binding to NMDARs using NMDAR antagonist APV, but not by preventing ion flux with Ca(2+) chelator BAPTA or open-channel blockers MK-801 or memantine. Aβ increased the activity of p38 MAPK, a kinase involved in long-term depression and inhibition of p38 MAPK abolished the loss of dendritic spines. Aβ-induced increase of p38 MAPK activity was prevented by APV but not by BAPTA, MK-801 or memantine treatment highlighting the role of glutamate binding to NMDARs but not Ca(2+) flux for synaptic degeneration by Aβ. We further show that treatment with the G protein inhibitor pertussis toxin (PTX) did not prevent dendritic spine loss in the presence of Aβ oligomers. Our data suggest that Aβ induces the activation of p38 MAPK and subsequent synaptic loss through Ca(2+) flux- and G protein-independent mechanisms.
Insights
Beta-amyloid (Aβ) triggers synaptic loss in Alzheimer's disease via N-methyl-D-aspartate receptors (NMDARs). This occurs through glutamate binding, not ion flux, activating p38 MAPK and causing dementia-related synaptic degeneration.
Area of Science:
- Neuroscience
- Molecular Biology
- Cell Biology
Background:
- Synaptic loss is a hallmark of Alzheimer's disease (AD), correlating with dementia severity.
- N-methyl-D-aspartate receptors (NMDARs) mediate beta-amyloid peptide (Aβ) effects in AD, with both Ca(2+) dependent and independent functions.
Purpose of the Study:
- To investigate whether ionotropic or metabotropic NMDAR signaling mediates Aβ-induced synaptic loss.
Main Methods:
- Utilized hippocampal slice cultures treated with endogenous and synthetic Aβ oligomers.
- Assessed synaptic alterations using NMDAR antagonists (APV), Ca(2+) chelators (BAPTA), open-channel blockers (MK-801, memantine), and p38 MAPK inhibitors.
- Examined G protein signaling using pertussis toxin (PTX).
Main Results:
- Aβ oligomers induced dendritic spine loss and reduced pre/postsynaptic protein levels.
- Synaptic loss was mitigated by blocking glutamate binding to NMDARs (APV), but not by preventing Ca(2+) flux.
- Aβ increased p38 MAPK activity, which was prevented by APV but not by Ca(2+) flux inhibitors, indicating a role for glutamate binding.
- G protein inhibition did not prevent Aβ-induced synaptic loss.
Conclusions:
- Aβ induces synaptic loss and p38 MAPK activation through NMDAR glutamate binding, independent of Ca(2+) flux and G protein signaling.
- These findings highlight a specific NMDAR signaling pathway involved in Aβ-mediated synaptic degeneration in Alzheimer's disease.
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