Toll-like receptor 2-mediated alternative activation of microglia is protective after spinal cord injury

David P Stirling1, Karen Cummins, Manoj Mishra

  • 11 Department of Clinical Neurosciences, Hotchkiss Brain Institute, University of Calgary, Calgary, Alberta Canada.

Insights

Microglia play a complex role in spinal cord injury. Stimulating microglia with Pam2CSK4 reduces secondary axonal degeneration, suggesting a neuroprotective effect and challenging traditional anti-inflammatory approaches.

Area of Science:

  • Neuroscience
  • Immunology
  • Regenerative Medicine

Background:

  • Spinal cord injury (SCI) leads to axonal dieback and poor neurological outcomes due to limited regeneration.
  • The precise role of microglia, the resident immune cells in the central nervous system, in SCI pathophysiology and repair remains incompletely understood.
  • Existing research on microglial involvement in SCI is often confounded by the complexity of injury models and the dynamic nature of microglial responses.

Purpose of the Study:

  • To investigate the real-time dynamics of microglia and their impact on white matter integrity following acute spinal cord injury.
  • To elucidate the specific pathophysiological changes in axons and myelin mediated by microglia post-injury.
  • To evaluate the therapeutic potential of modulating microglial activation states for neuroprotection after SCI.

Main Methods:

  • Utilized time-lapse two-photon and spectral confocal microscopy in living murine spinal cords.
  • Employed fluorescent labeling for microglia (green), axons (yellow), and myelin (Nile Red).
  • Induced acute axonal injury using a laser ablation model that closely mimics clinical SCI scenarios, followed by Pam2CSK4 stimulation or Toll-like receptor 2 (Tlr2) knockout.

Main Results:

  • Microglia were observed to be involved in acute axonal and myelin spheroid formation and secondary degeneration of surviving axons.
  • Modulating microglial neurotoxic molecule release did not protect axons or myelin.
  • Sterile stimulation of microglia with Pam2CSK4 significantly reduced secondary degeneration and promoted an alternative (M1:M2) activation profile, demonstrating neuroprotection.
  • Tlr2 knockout mice exhibited increased axonal dieback, indicating a protective role for Tlr2-mediated microglial activation.

Conclusions:

  • Microglial activation plays a critical role in the secondary degeneration of axons following spinal cord injury.
  • Targeting Toll-like receptor 2 and promoting an alternative microglial activation state via Pam2CSK4 is neuroprotective in acute SCI.
  • Current anti-inflammatory strategies targeting microglia may be counterproductive, necessitating a re-evaluation of therapeutic approaches for spinal cord injury.