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Rat Model of Widespread Cerebral Cortical Demyelination Induced by an Intracerebral Injection of Pro-Inflammatory Cytokines
Published on: September 21, 2021
Defective fractalkine-CX3CR1 signaling aggravates neuroinflammation and affects recovery from cuprizone-induced
Andrew S Mendiola1, Kaira A Church1, Sandra M Cardona1,2
1Department of Molecular Microbiology & Immunology, The University of Texas at San Antonio, San Antonio, Texas, USA.
Abstract:
Microglia have been implicated in multiple sclerosis (MS) pathogenesis. The fractalkine receptor CX3CR1 limits the activation of pathogenic microglia and the human polymorphic CX3CR1I249/M280 (hCX3CR1I249/M280 ) variant increases disease progression in models of MS. However, the role of hCX3CR1I249/M280 variant on microglial activation and central nervous system repair mechanisms remains unknown. Therefore, using transgenic mice expressing the hCX3CR1I249/M280 variant, we aimed to determine the contribution of defective CX3CR1 signaling to neuroinflammation and remyelination in the cuprizone model of focal demyelination. Here, we report that mice expressing hCX3CR1I249/M280 exhibit marked demyelination and microgliosis following acute cuprizone treatment. Nanostring gene expression analysis in demyelinated lesions showed that hCX3CR1I249/M280 but not CX3CR1-deficient mice up-regulated the cuprizone-induced gene profile linked to inflammatory, oxidative stress, and phagocytic pathways. Although CX3CR1-deficient (CX3CR1-KO) and fractalkine-deficient (FKN-KO) mice displayed a comparable demyelination and microglial activation phenotype to hCX3CR1I249/M280 mice, only CX3CR1-deficient and CX3CR1-WT mice showed significant myelin recovery 1 week from cuprizone withdrawal. Confocal microscopy showed that hCX3CR1I249/M280 variant inhibits the generation of cells involved in myelin repair. Our results show that defective fractalkine signaling contributes to regional differences in demyelination, and suggest that the CX3CR1 pathway activity may be a key mechanism for limiting toxic gene responses in neuroinflammation. Cover Image for this issue: https://doi.org/10.1111/jnc.15416.
Insights
The human CX3CR1 variant exacerbates multiple sclerosis-like demyelination by impairing microglial function and central nervous system repair. This defective fractalkine signaling hinders myelin recovery and promotes neuroinflammation.
Area of Science:
- Neuroscience
- Immunology
- Pathology
Background:
- Microglia play a critical role in multiple sclerosis (MS) pathogenesis.
- The fractalkine receptor CX3CR1 regulates microglial activation.
- A human polymorphic variant, hCX3CR1I249/M280, is associated with increased MS disease progression.
Purpose of the Study:
- To investigate the impact of the hCX3CR1I249/M280 variant on microglial activation.
- To determine the role of defective CX3CR1 signaling in central nervous system repair mechanisms.
- To analyze the contribution of the hCX3CR1I249/M280 variant to neuroinflammation and remyelination in a mouse model of demyelination.
Main Methods:
- Utilized transgenic mice expressing the hCX3CR1I249/M280 variant.
- Employed the cuprizone model of focal demyelination.
- Conducted Nanostring gene expression analysis and confocal microscopy.
Main Results:
- Mice expressing hCX3CR1I249/M280 showed increased demyelination and microgliosis.
- hCX3CR1I249/M280 mice upregulated inflammatory, oxidative stress, and phagocytic gene profiles.
- The hCX3CR1I249/M280 variant inhibited the generation of myelin repair cells, impairing myelin recovery.
Conclusions:
- Defective fractalkine signaling via the hCX3CR1I249/M280 variant contributes to demyelination.
- CX3CR1 pathway activity is crucial for limiting detrimental gene responses in neuroinflammation.
- The hCX3CR1I249/M280 variant negatively impacts central nervous system repair mechanisms in MS models.
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