Related Experiment Video
Updated: Aug 10, 2026

Myelin Oligodendrocyte Glycoprotein MOG35-55 Induced Experimental Autoimmune Encephalomyelitis EAE in C57BL/6 Mice
Published on: April 15, 2014
Platelet-Activating Factor Receptors Mediate Excitatory Postsynaptic Hippocampal Injury in Experimental Autoimmune
Matthew J Bellizzi1, Jasmine S Geathers2, Kevin C Allan2
1Center for Neural Development and Disease and Department of Neurology (Neuroimmunology Division), University of Rochester Medical Center, Rochester, New York 14642, Matthew_Bellizzi@urmc.rochester.edu.
Abstract:
Gray matter degeneration contributes to progressive disability in multiple sclerosis (MS) and can occur out of proportion to measures of white matter disease. Although white matter pathology, including demyelination and axon injury, can lead to secondary gray matter changes, we hypothesized that neurons can undergo direct excitatory injury within the gray matter independent of these. We tested this using a model of experimental autoimmune encephalomyelitis (EAE) with hippocampal degeneration in C57BL/6 mice, in which immunofluorescent staining showed a 28% loss of PSD95-positive excitatory postsynaptic puncta in hippocampal area CA1 compared with sham-immunized controls, despite preservation of myelin and VGLUT1-positive excitatory axon terminals. Loss of postsynaptic structures was accompanied by appearance of PSD95-positive debris that colocalized with the processes of activated microglia at 25 d after immunization, and clearance of debris was followed by persistently reduced synaptic density at 55 d. In vitro, addition of activated BV2 microglial cells to hippocampal cultures increased neuronal vulnerability to excitotoxic dendritic damage following a burst of synaptic activity in a manner dependent on platelet-activating factor receptor (PAFR) signaling. In vivo treatment with PAFR antagonist BN52021 prevented PSD95-positive synapse loss in hippocampi of mice with EAE but did not affect development of EAE or local microglial activation. These results demonstrate that postsynaptic structures can be a primary target of injury within the gray matter in autoimmune neuroinflammatory disease, and suggest that this may occur via PAFR-mediated modulation of activity-dependent synaptic physiology downstream of microglial activation.
Significance Statement:
Unraveling gray matter degeneration is critical for developing treatments for progressive disability and cognitive impairment in multiple sclerosis (MS). In a mouse model of MS, we show that neurons can undergo injury at their synaptic connections within the gray matter, independent of the white matter pathology, demyelination, and axon injury that have been the focus of most current and emerging treatments. Damage to excitatory synapses in the hippocampus occurs in association with activated microglia, which can promote excitotoxic injury via activation of receptors for platelet-activating factor, a proinflammatory signaling molecule elevated in the brain in MS. Platelet-activating factor receptor blockade protected synapses in the mouse model, identifying a potential target for neuroprotective treatments in MS.
Insights
Gray matter degeneration in multiple sclerosis (MS) involves direct injury to excitatory synapses, independent of white matter damage. Microglia activate platelet-activating factor receptor (PAFR) signaling, leading to synapse loss, but PAFR blockade protects synapses.
Area of Science:
- Neuroscience
- Immunology
- Pathology
Background:
- Gray matter degeneration contributes to progressive disability in multiple sclerosis (MS).
- This degeneration can occur independently of white matter pathology, such as demyelination and axon injury.
- Neurons may suffer direct excitatory injury within gray matter.
Purpose of the Study:
- To investigate direct neuronal injury in gray matter in a mouse model of MS.
- To determine the role of microglia and platelet-activating factor receptor (PAFR) signaling in this injury.
- To assess the therapeutic potential of PAFR blockade for protecting synapses in MS.
Main Methods:
- Used experimental autoimmune encephalomyelitis (EAE) model in C57BL/6 mice with hippocampal degeneration.
- Quantified synaptic density using immunofluorescent staining for PSD95 and VGLUT1.
- Utilized in vitro microglial-neuronal co-cultures and in vivo treatment with PAFR antagonist BN52021.
Main Results:
- Observed a 28% loss of PSD95-positive excitatory postsynaptic puncta in the hippocampus (area CA1) in EAE mice.
- Found that activated microglia and PSD95-positive debris colocalized with synaptic loss.
- In vitro, activated microglia increased neuronal vulnerability to excitotoxicity via PAFR signaling.
- In vivo, BN52021 prevented synapse loss without affecting EAE development or microglial activation.
Conclusions:
- Postsynaptic structures are primary targets of gray matter injury in autoimmune neuroinflammatory disease.
- Microglial activation promotes excitotoxic injury via PAFR-mediated signaling.
- PAFR blockade offers a potential neuroprotective strategy for MS by preserving synaptic integrity.
More Related Videos
10:50Visualizing Impairment of the Endothelial and Glial Barriers of the Neurovascular Unit during Experimental Autoimmune Encephalomyelitis In Vivo
Published on: March 26, 2019
08:17Author Spotlight: Unveiling the Pathway Linking Obesity to Autoimmune Inflammation in Multiple Sclerosis
Published on: February 23, 2024
Related Concept Videos
Encephalitis l: Introduction
Encephalitis ll: Pathophysiology