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Updated: May 4, 2026

Identifying Microglia and Peripheral Infiltrating Macrophages in the Injured Spinal Cords Using Flow Cytometry
Published on: June 24, 2025
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.
Abstract:
Improving neurological outcome after spinal cord injury is a major clinical challenge because axons, once severed, do not regenerate but 'dieback' from the lesion site. Although microglia, the immunocompetent cells of the brain and spinal cord respond rapidly to spinal cord injury, their role in subsequent injury or repair remains unclear. To assess the role of microglia in spinal cord white matter injury we used time-lapse two-photon and spectral confocal imaging of green fluorescent protein-labelled microglia, yellow fluorescent protein-labelled axons, and Nile Red-labelled myelin of living murine spinal cord and revealed dynamic changes in white matter elements after laser-induced spinal cord injury in real time. Importantly, our model of acute axonal injury closely mimics the axonopathy described in well-characterized clinically relevant models of spinal cord injury including contusive-, compressive- and transection-based models. Time-lapse recordings revealed that microglia were associated with some acute pathophysiological changes in axons and myelin acutely after laser-induced spinal cord injury. These pathophysiological changes included myelin and axonal spheroid formation, spectral shifts in Nile Red emission spectra in axonal endbulbs detected with spectral microscopy, and 'bystander' degeneration of axons that survived the initial injury, but then succumbed to secondary degeneration. Surprisingly, modulation of microglial-mediated release of neurotoxic molecules failed to protect axons and myelin. In contrast, sterile stimulation of microglia with the specific toll-like receptor 2 agonist Pam2CSK4 robustly increased the microglial response to ablation, reduced secondary degeneration of central myelinated fibres, and induced an alternative (mixed M1:M2) microglial activation profile. Conversely, Tlr2 knock out: Thy1 yellow fluorescent protein double transgenic mice experienced greater axonal dieback than littermate controls. Thus, promoting an alternative microglial response through Pam2CSK4 treatment is neuroprotective acutely following laser-induced spinal cord injury. Therefore, anti-inflammatory treatments that target microglial activation may be counterintuitive after spinal cord injury.
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.
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