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Updated: May 13, 2026

Isolation and Flow Cytometric Assessment of Neuroimmune Interactions in a Mini-Stroke Murine Model
Published on: June 20, 2025
Cerebral endothelial expression of Robo1 affects brain infiltration of polymorphonuclear neutrophils during mouse
Sandhya Gangaraju1, Khadeejah Sultan, Shawn N Whitehead
1Institute for Biological Sciences, National Research Council Canada, 1200 Montreal Road, Bldg M54, Ottawa, ON K1A 0R6, Canada.
Abstract:
Increased brain infiltration of polymorphonuclear neutrophils (PMNs) occurs early after stroke and is important in eliciting brain inflammatory response during stroke recovery. In order to understand the molecular mechanism of PMN entry, we investigated the expression and requirement for Slit1, a chemorepulsive guidance cue, and its cognate receptor, Robo1, in a long-term recovery mouse model of cerebral ischemia. The expression levels of Robo1 were significantly decreased bilaterally at 24h following reperfusion. Robo1 expression levels remained suppressed in the ipsilateral cortex until 28d post MCAO-reperfusion, while the levels of Robo1 in the contralateral cortex recovered to the level of sham-operated mouse by 7d reperfusion. Circulating PMNs express high levels of Slit1, but not Robo1. Influx of PMNs into the ischemic core area occurred early (24h) after cerebral ischemia, when endothelial Robo1 expression was significantly reduced in the ischemic brain, indicating that Robo1 may form a repulsive barrier to PMN entry into the brain parenchyma. Indeed, blocking Slit1 on PMNs in a transwell migration assay in combination with an antibody blocking of Robo1 on human umbilical vein endothelial cells (HUVEC) significantly increased PMN transmigration during oxygen glucose deprivation, an in vitro model of ischemia. Collectively, in the normal brain, the presence of Slit1 on PMNs, and Robo1 on cerebral endothelial cells, generated a repulsive force to prevent the infiltration of PMNs into the brain. During stroke recovery, a transient reduction in Robo1 expression on the cerebral endothelial cells allowed the uncontrolled infiltration of Slit1-expressing PMNs into the brain causing inflammatory reactions.
Insights
During stroke recovery, reduced Robo1 on brain cells allows inflammatory PMNs to enter, worsening brain damage. This study reveals Robo1
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Polymorphonuclear neutrophils (PMNs) infiltrate the brain early after stroke, contributing to inflammation.
- Understanding the molecular mechanisms of PMN entry is crucial for stroke recovery research.
Purpose of the Study:
- To investigate the role of Slit1 and its receptor Robo1 in PMN brain infiltration following cerebral ischemia.
- To elucidate the molecular mechanisms governing PMN entry into the ischemic brain.
Main Methods:
- Utilized a long-term recovery mouse model of cerebral ischemia (MCAO-reperfusion).
- Assessed Robo1 expression levels in brain tissue at various time points post-reperfusion.
- Conducted transwell migration assays using human umbilical vein endothelial cells (HUVECs) and PMNs under oxygen-glucose deprivation.
Main Results:
- Robo1 expression was significantly decreased in the ischemic brain early after reperfusion and remained suppressed in the ipsilateral cortex.
- PMNs express Slit1, while cerebral endothelial cells express Robo1.
- Blocking Slit1 on PMNs and Robo1 on HUVECs increased PMN transmigration in vitro, suggesting a repulsive barrier function.
Conclusions:
- In normal brains, Slit1 on PMNs and Robo1 on endothelial cells create a repulsive barrier preventing PMN infiltration.
- During stroke recovery, reduced Robo1 expression on endothelial cells compromises this barrier, allowing uncontrolled PMN entry and inflammatory reactions.
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