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Updated: Jan 3, 2026

Identifying Microglia and Peripheral Infiltrating Macrophages in the Injured Spinal Cords Using Flow Cytometry
Published on: June 24, 2025
A critical role for microglia in maintaining vascular integrity in the hypoxic spinal cord
Sebok K Halder1, Richard Milner2
1Department of Molecular Medicine, The Scripps Research Institute, La Jolla, CA 92037.
Abstract:
Hypoxic preconditioning reduces disease severity in a mouse model of multiple sclerosis (MS), in part by enhancing the barrier properties of spinal cord blood vessels. Because other studies have shown that similar levels of hypoxia transiently increase permeability of central nervous system (CNS) blood vessels, the goal of this study was to define the impact of chronic mild hypoxia (CMH, 8% O2) on the integrity of spinal cord blood vessels and the responses of neighboring glial cells. Using extravascular fibrinogen as a marker of vascular disruption, we found that CMH triggered transient vascular leak in spinal cord blood vessels, particularly in white matter, which was associated with clustering and activation of Mac-1-positive microglia around disrupted vessels. Microglial depletion with the colony stimulating factor-1 receptor (CSF-1R) inhibitor PLX5622, while having no effect under normoxic conditions, profoundly increased vascular leak in both white and gray matter during CMH, and this was associated with disruption of astrocyte-vascular coupling and enhanced loss of tight junction proteins. Microglial repair of leaky blood vessels was blocked by a peptide that inhibits the interaction between fibrinogen and its Mac-1 integrin receptor. These findings highlight an important role for microglia in maintaining vascular integrity in the hypoxic spinal cord and suggest that a fibrinogen-Mac-1 interaction underpins this response. As relative hypoxia is experienced in many situations including high altitude, lung disease, obstructive sleep apnea, and age-related CNS ischemia/hypoxia, our findings have important implications regarding the critical role of microglia in maintaining vascular integrity in the CNS.
Insights
Chronic mild hypoxia causes temporary spinal cord blood vessel leaks in mice. Microglia normally protect these vessels, but their depletion worsens leaks, highlighting their crucial role in maintaining central nervous system vascular integrity.
Area of Science:
- Neuroscience
- Vascular Biology
- Immunology
Background:
- Hypoxic preconditioning can reduce multiple sclerosis (MS) severity by improving spinal cord blood vessel barrier function.
- However, similar hypoxia levels can transiently increase central nervous system (CNS) blood vessel permeability, creating a paradox.
Purpose of the Study:
- To investigate the effects of chronic mild hypoxia (CMH) on spinal cord blood vessel integrity.
- To understand the role of glial cells, particularly microglia, in responding to CMH-induced vascular changes.
Main Methods:
- Utilized a mouse model subjected to chronic mild hypoxia (8% O2).
- Assessed vascular integrity using extravascular fibrinogen as a marker.
- Investigated microglial roles using depletion with a colony-stimulating factor-1 receptor (CSF-1R) inhibitor (PLX5622).
- Examined astrocyte-vascular coupling and tight junction protein expression.
Main Results:
- CMH induced transient vascular leak in spinal cord blood vessels, predominantly in white matter.
- Leaky vessels were associated with Mac-1-positive microglia clustering and activation.
- Microglial depletion significantly exacerbated vascular leak in both white and gray matter under CMH.
- This exacerbation involved disrupted astrocyte-vascular coupling and increased tight junction protein loss.
- Blocking the fibrinogen-Mac-1 interaction inhibited microglial repair of leaky vessels.
Conclusions:
- Microglia play a critical role in maintaining spinal cord vascular integrity during chronic mild hypoxia.
- A fibrinogen-Mac-1 interaction is essential for this microglial-mediated vascular repair.
- These findings have implications for CNS conditions involving relative hypoxia, such as high altitude exposure, lung disease, and age-related ischemia.
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