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Stereological and Flow Cytometry Characterization of Leukocyte Subpopulations in Models of Transient or Permanent Cerebral Ischemia
Published on: December 28, 2014
Cerebral mast cells regulate early ischemic brain swelling and neutrophil accumulation
Daniel Strbian1, Marja-Liisa Karjalainen-Lindsberg, Turgut Tatlisumak
1Department of Neurology, Helsinki University Central Hospital and Neuroscience Program, University of Helsinki, Helsinki, Finland.
Abstract:
We previously observed degranulated mast cells (MC) in association with perivascular brain edema formation during focal cerebral ischemia. Brain MC are typically located perivascularly and contain potent fast-acting vasoactive and proteolytic substances. We examined in a rat model of transient middle cerebral artery occlusion (MCAO) whether, in the early phase of ischemia, MC regulate microcirculation, the blood-brain barrier (BBB) permeability, and edema formation. First, animals received MC inhibitor (cromoglycate), MC-degranulating drug (compound 48/80), or saline. Thereafter, we performed transient MCAO in gene-manipulated MC-deficient rats and their wild-type (WT) littermates, calculating brain swelling, visualizing BBB leakage by intravenously administered Evans blue albumin, and determining neutrophil infiltration with light microscopy. Cerebral blood flow, monitored by laser-Doppler flowmetry in separate experiments, was similar among pharmacological treatments. Ischemic swelling resulted in increased hemispheric volume of 13.4%+/-1.0% in controls, 8.1%+/-0.4% (39% reduction) after cromoglycate, and 25.2%+/-2.0% (89% increase) after compound 48/80 (P<0.05). Early ischemic BBB leakage was reduced by 51% after cromoglycate, and 50% enhanced by compound 48/80 (P<0.05). The cromoglycate group showed 37% less postischemic neutrophil infiltration than did controls (P<0.05). Furthermore, MC-deficient rats responded to focal ischemia with 58% less brain swelling (6.7%+/-1.2%) than did their WT littermates (15.8%+/-1.4%, P<0.05). Blood-brain barrier damage was 47% lower in MC-deficient rats than in the WT (P<0.05). Neutrophil infiltration after MCAO was decreased 47% in MC-deficient rats in comparison to WT (P<0.05). Pharmacological MC inhibition thus appears to deserve further investigation regarding reduction of brain swelling and inflammation early after stroke.
Insights
Inhibition of mast cells (MC) significantly reduces brain swelling and blood-brain barrier damage following ischemic stroke. This suggests MC inhibition is a promising therapeutic strategy for stroke recovery.
Area of Science:
- Neuroscience
- Immunology
- Pathology
Background:
- Mast cells (MC) are perivascular cells in the brain containing vasoactive and proteolytic substances.
- Previous observations linked degranulated MC to perivascular brain edema in focal cerebral ischemia.
Purpose of the Study:
- To investigate the role of mast cells (MC) in regulating microcirculation, blood-brain barrier (BBB) permeability, and edema formation during the early phase of focal cerebral ischemia.
- To assess the therapeutic potential of MC inhibition in mitigating ischemic brain injury.
Main Methods:
- A rat model of transient middle cerebral artery occlusion (MCAO) was employed.
- Pharmacological interventions included MC inhibitor (cromoglycate) and MC-degranulating agent (compound 48/80).
- Gene-manipulated MC-deficient rats and wild-type (WT) littermates were used to evaluate brain swelling, BBB leakage (Evans blue albumin), and neutrophil infiltration.
Main Results:
- MC inhibition with cromoglycate significantly reduced ischemic brain swelling (39% reduction) and BBB leakage (51% reduction).
- MC-deficient rats exhibited substantially less brain swelling (58% reduction) and BBB damage (47% reduction) compared to WT littermates.
- Both pharmacological MC inhibition and genetic deficiency of MC led to decreased post-ischemic neutrophil infiltration.
Conclusions:
- Mast cells play a crucial role in the early pathogenesis of ischemic stroke, contributing to brain swelling, BBB disruption, and inflammation.
- Pharmacological inhibition of mast cells demonstrates significant neuroprotective effects in a preclinical stroke model.
- Targeting mast cells represents a potential therapeutic avenue for reducing brain injury and inflammation in the acute phase of stroke.
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