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Updated: Jul 6, 2026

Two-vessel Occlusion Mouse Model of Cerebral Ischemia-reperfusion
Published on: March 1, 2019
Cerebral microvascular dysfunction in metabolic syndrome is exacerbated by ischemia-reperfusion injury
Nathalie Obadia1, Marcos Adriano Lessa1, Anissa Daliry1
1Laboratory of Cardiovascular Investigation, Oswaldo Cruz Foundation, Avenida Brasil, 4365, Rio de Janeiro, RJ, 21045-900, Brazil.
Background:
Metabolic syndrome (MetS) is associated with an increased risk of cerebrovascular diseases, including cerebral ischemia. Microvascular dysfunction is an important feature underlying the pathophysiology of cerebrovascular diseases. In this study, we aimed to investigate the impacts of ischemia and reperfusion (IR) injury on the cerebral microvascular function of rats with high-fat diet-induced MetS.
Results:
We examined Wistar rats fed a high-fat diet (HFD) or normal diet (CTL) for 20 weeks underwent 30 min of bilateral carotid artery occlusion followed by 1 h of reperfusion (IR) or sham surgery. Microvascular blood flow was evaluated on the parietal cortex surface through a cranial window by laser speckle contrast imaging, functional capillary density, endothelial function and endothelial-leukocyte interactions by intravital videomicroscopy. Lipid peroxidation was assessed by TBARs analysis, the expression of oxidative enzymes and inflammatory markers in the brain tissue was analyzed by real-time PCR. The cerebral IR in MetS animals induced a functional capillary rarefaction (HFD IR 117 ± 17 vs. CTL IR 224 ± 35 capillary/mm2; p < 0.05), blunted the endothelial response to acetylcholine (HFD IR -16.93% vs. CTL IR 16.19% from baseline inner diameter p < 0.05) and increased the endothelial-leukocyte interactions in the venules in the brain. The impact of ischemia on the cerebral microvascular blood flow was worsened in MetS animals, with a marked reduction of cerebral blood flow, exposing brain tissue to a higher state of hypoxia.
Conclusions:
Our results demonstrate that during ischemia and reperfusion, animals with MetS are more susceptible to alterations in the cerebral microcirculation involving endothelial dysfunction and oxidative stress events.
Insights
Metabolic syndrome worsens cerebral ischemia-reperfusion injury by impairing microvascular function and increasing hypoxia. This study highlights increased susceptibility in MetS animals to cerebral microcirculation damage.
Area of Science:
- Neuroscience
- Cardiovascular Science
- Metabolic Science
Background:
- Metabolic syndrome (MetS) elevates cerebrovascular disease risk, particularly cerebral ischemia.
- Microvascular dysfunction is a key factor in cerebrovascular disease development.
- High-fat diet-induced MetS in rats serves as a model for studying these effects.
Purpose of the Study:
- To investigate the impact of ischemia-reperfusion (IR) injury on cerebral microvascular function in rats with MetS.
- To compare the cerebral microvascular response to IR in MetS rats versus control rats.
Main Methods:
- Wistar rats were fed high-fat diets (HFD) or normal diets (CTL) for 20 weeks.
- Cerebral IR was induced via carotid artery occlusion followed by reperfusion, or sham surgery.
- Cerebral microvascular blood flow, capillary density, endothelial function, and leukocyte-endothelial interactions were assessed using laser speckle contrast imaging and intravital videomicroscopy.
Main Results:
- MetS rats exhibited significantly reduced functional capillary density post-IR compared to controls (117 vs. 224 capillary/mm²).
- Endothelial function was blunted in MetS rats, showing impaired response to acetylcholine (-16.93% vs. 16.19% change).
- Increased endothelial-leukocyte interactions and worsened cerebral blood flow reduction were observed in MetS rats during IR, leading to greater hypoxia.
Conclusions:
- MetS exacerbates cerebral microcirculation damage during ischemia-reperfusion.
- Animals with MetS show heightened susceptibility to endothelial dysfunction and oxidative stress in the brain's microvasculature.
- These findings underscore the detrimental role of MetS in cerebral IR injury.
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