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Published on: December 5, 2017
Cerebral microvascular responses to hypercholesterolemia: roles of NADPH oxidase and P-selectin
Mami Ishikawa1, Karen Y Stokes, John H Zhang
1Department of Molecular and Cellular Physiology, Louisiana State University Health Sciences Center, Shreveport, La 71130-3932, USA.
Insights
High cholesterol (hypercholesterolemia) increases harmful interactions between blood cells and brain vessels, worsening stroke outcomes. This oxidant-dependent process involves P-selectin and is exacerbated by ischemia-reperfusion injury.
Area of Science:
- Neuroscience
- Cardiovascular Biology
- Pathophysiology
Background:
- Hypercholesterolemia is a known risk factor for cardiovascular diseases.
- Its role in stroke pathogenesis remains controversial.
- Understanding hypercholesterolemia's impact on cerebral microcirculation is crucial.
Purpose of the Study:
- To investigate how hypercholesterolemia affects cerebral microcirculation.
- To examine interactions between blood cells and the endothelium.
- To assess oxidant production under resting and ischemia-reperfusion (I/R) conditions.
Main Methods:
- Intravital videomicroscopy in mice on normal (ND) or cholesterol-enriched diets (HCD).
- Monitoring platelet and leukocyte-endothelial cell interactions.
- Measuring oxidant production using dihydrorhodamine-123.
- Utilizing P-selectin immunoneutralization and GPIIb/IIIa blocking antibodies.
- Assessing responses in mice deficient in NADPH oxidase subunit gp91(phox).
Main Results:
- Hypercholesterolemia (HCD) increased platelet and leukocyte adhesion in cerebral venules.
- Enhanced oxidant production correlated with these interactions in HCD mice.
- P-selectin mediated these HCD-induced interactions and oxidant production.
- NADPH oxidase played a role in the recruitment responses.
- Ischemia-reperfusion (I/R) exacerbated inflammatory and prothrombotic responses in HCD mice.
Conclusions:
- Hypercholesterolemia induces oxidant-dependent, P-selectin-mediated blood cell-vessel wall interactions in the brain.
- These interactions contribute to stroke pathogenesis.
- Hypercholesterolemia worsens the damaging effects of ischemia-reperfusion on the brain.
Abstract:
Although hypercholesterolemia is widely accepted as a major risk factor for coronary artery and peripheral vascular diseases, its role in the pathogenesis of stroke is controversial. The objectives of this study were to determine how hypercholesterolemia affects the cerebral microcirculation under resting conditions and after ischemia-reperfusion (I/R). Platelet- and leukocyte-endothelial cell interactions and oxidant production (using the oxidant-sensitive fluorochrome dihydrorhodamine-123) were monitored by intravital videomicroscopy in the cerebral microvasculature of mice placed on either a normal (ND) or cholesterol-enriched diet (HCD). Platelets labeled with carboxyfluorescein diacetate succinimidyl ester (CFDASE) and leukocytes labeled with rhodamine 6G were seen to roll and firmly adhere, with a corresponding increase in oxidant production, in venules of mice on HCD, but not ND. Immunoneutralization of P-selectin attenuated the platelet- and leukocyte-endothelial cell interactions and the enhanced oxidant production associated with HCD. A GPIIb/IIIa blocking antibody did not alter the blood cell-vessel wall interactions to HCD. Mice deficient in the NADPH oxidase subunit gp91(phox) exhibited significantly blunted platelet and leukocyte recruitment responses to HCD. Focal I/R also elicited inflammatory and prothrombogenic responses in cerebral venules and these were exaggerated in mice on HCD. These results implicate an oxidant-dependent, P-selectin-mediated mechanism in the blood cell-vessel wall interactions induced by hypercholesterolemia in the brain and demonstrate that the deleterious effects of I/R on the brain are exacerbated by this cardiovascular risk factor.
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