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.

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.