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Updated: Aug 15, 2025

A Neuronal and Astrocyte Co-Culture Assay for High Content Analysis of Neurotoxicity
Published on: May 5, 2009
Myelinating Co-Culture as a Model to Study Anti-NMDAR Neurotoxicity
Mercedeh Farhat Sabet1, Sumanta Barman1, Mathias Beller2
1Department of Neurology, Medical Faculty, Heinrich-Heine-Universität Düsseldorf, 40225 Düsseldorf, Germany.
Abstract:
Anti-NMDA receptor (NMDAR) encephalitis is frequently associated with demyelinating disorders (e.g., multiple sclerosis (MS), neuromyelitis optica spectrum disorder (NMOSD), myelin oligodendrocyte glycoprotein-associated disease (MOGAD)) with regard to clinical presentation, neuropathological and cerebrospinal fluid findings. Indeed, autoantibodies (AABs) against the GluN1 (NR1) subunit of the NMDAR diminish glutamatergic transmission in both neurons and oligodendrocytes, leading to a state of NMDAR hypofunction. Considering the vital role of oligodendroglial NMDAR signaling in neuron-glia communication and, in particular, in tightly regulated trophic support to neurons, the influence of GluN1 targeting on the physiology of myelinated axon may be of importance. We applied a myelinating spinal cord cell culture model that contains all major CNS cell types, to evaluate the effects of a patient-derived GluN1-specific monoclonal antibody (SSM5) on neuronal and myelin integrity. A non-brain reactive (12D7) antibody was used as the corresponding isotype control. We show that in cultures at the late stage of myelination, prolonged treatment with SSM5, but not 12D7, leads to neuronal damage. This is characterized by neurite blebbing and fragmentation, and a reduction in the number of myelinated axons. However, this significant toxic effect of SSM5 was not observed in earlier cultures at the beginning of myelination. Anti-GluN1 AABs induce neurodegenerative changes and associated myelin loss in myelinated spinal cord cultures. These findings may point to the higher vulnerability of myelinated neurons towards interference in glutamatergic communication, and may refer to the disturbance of the NMDAR-mediated oligodendrocyte metabolic supply. Our work contributes to the understanding of the emerging association of NMDAR encephalitis with demyelinating disorders.
Insights
Autoantibodies targeting the NMDAR subunit GluN1 cause neurodegeneration and myelin loss in mature spinal cord cultures. This highlights the vulnerability of myelinated neurons to disrupted glutamatergic signaling, potentially explaining links between NMDAR encephalitis and demyelinating disorders.
Area of Science:
- Neuroimmunology
- Neurobiology
- Cellular Neuroscience
Background:
- Anti-NMDA receptor (NMDAR) encephalitis often co-occurs with demyelinating disorders like multiple sclerosis (MS).
- Autoantibodies (AABs) against the NMDAR GluN1 subunit reduce glutamatergic transmission, causing NMDAR hypofunction.
- Oligodendroglial NMDAR signaling is crucial for neuron-glia communication and neuronal trophic support.
Purpose of the Study:
- To investigate the impact of anti-GluN1 AABs on neuronal and myelin integrity in a CNS cell culture model.
- To evaluate the effects of a patient-derived anti-GluN1 monoclonal antibody (SSM5) on myelinated axons.
Main Methods:
- Utilized a myelinating spinal cord cell culture model containing key CNS cell types.
- Treated cultures at different myelination stages with SSM5 (anti-GluN1) or a control antibody (12D7).
- Assessed neuronal damage, neurite integrity, and myelinated axon counts.
Main Results:
- Prolonged SSM5 treatment induced neuronal damage, including neurite blebbing and fragmentation, in late-stage myelination cultures.
- A significant reduction in myelinated axons was observed following SSM5 treatment.
- These toxic effects were not apparent in cultures at the early stage of myelination.
Conclusions:
- Anti-GluN1 AABs can cause neurodegenerative changes and myelin loss in mature myelinated spinal cord cultures.
- Myelinated neurons appear more vulnerable to disruptions in glutamatergic communication.
- Findings suggest NMDAR hypofunction may impair oligodendrocyte metabolic support, contributing to demyelinating disorders.

