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A Rat Model of Middle Cerebral Artery Occlusion/Reperfusion Without Damaging the Anatomical Structure of Cerebral Vessels
Published on: May 17, 2024
Endothelial dysfunction in rat mesenteric resistance artery after transient middle cerebral artery occlusion
Sonia Martinez-Revelles1, Francesc Jiménez-Altayó, Laura Caracuel
1Departament de Farmacologia, Terapèutica i Toxicologia, Institut de Neurociències, Facultat de Medicina, Universitat Autònoma de Barcelona, 08193 Bellaterra, Spain.
Abstract:
Stroke triggers a local and systemic inflammatory response leading to the production of cytokines that can influence blood vessel reactivity. In this study, we aimed to assess whether cerebral ischemia/reperfusion could affect vasoconstriction and vasodilatation on mesenteric resistance arteries (MRA) from Wistar Kyoto rats. The right middle cerebral artery was occluded (90 min) and reperfused (24 h). Sham-operated animals were used as controls. Plasma levels of interleukin (IL)-6 and IL-1beta were measured at 24 h. Vasoconstrictor and vasodilator responses were recorded in a wire myograph. Protein expression was determined by Western blot and immunofluorescence, and superoxide anion (O(2)(.)) production was evaluated by ethidium fluorescence. In MRA, ischemia/reperfusion increased plasma levels of IL-6, O2. production, protein expression of cyclooxygenase-2, and protein tyrosine nitrosylation, but it impaired acetylcholine (ACh) vasodilatation without modifying the vasodilatations to sodium nitroprusside or the contractions to phenylephrine and KCl. Superoxide dismutase (SOD) and indomethacin reversed the impairment of ACh relaxation induced by ischemia/reperfusion. However, N(omega)-nitro-l-arginine methyl ester affected similarly ACh-induced vasodilatations in MRA of ischemic and sham-operated rats. Protein expression of endothelial and inducible nitric-oxide synthase, copper/zinc SOD, manganese SOD, and extracellular SOD was similar in both groups of rats. Our results show MRA endothelial dysfunction 24 h after brain ischemia/reperfusion. Excessive production of O2. in MRA mediates endothelial dysfunction, and the increase in plasma cytokine levels after brain ischemia/reperfusion might be involved in this effect.
Insights
Stroke-induced brain ischemia/reperfusion causes endothelial dysfunction in mesenteric arteries. This dysfunction is linked to increased superoxide production and inflammatory cytokines, impacting blood vessel reactivity.
Area of Science:
- Cardiovascular Research
- Neuroscience
- Inflammation Biology
Background:
- Stroke induces local and systemic inflammation, affecting cytokine production.
- Cytokines can influence blood vessel reactivity, but their impact on mesenteric arteries post-stroke is unclear.
Purpose of the Study:
- To investigate the effects of cerebral ischemia/reperfusion on vasoconstriction and vasodilation in mesenteric resistance arteries (MRA).
- To determine the role of inflammatory cytokines and oxidative stress in stroke-induced vascular dysfunction.
Main Methods:
- Inducing cerebral ischemia/reperfusion in Wistar Kyoto rats, with sham-operated controls.
- Measuring plasma cytokine levels (IL-6, IL-1beta).
- Assessing vascular responses in MRA using wire myography, Western blot, immunofluorescence, and superoxide anion detection.
Main Results:
- Ischemia/reperfusion increased plasma IL-6, MRA superoxide production, cyclooxygenase-2 expression, and protein tyrosine nitrosylation.
- Acetylcholine-induced vasodilation was impaired in MRA post-stroke, while responses to sodium nitroprusside and phenylephrine were unaffected.
- Superoxide dismutase and indomethacin treatments restored acetylcholine-induced vasodilation, indicating superoxide mediation.
Conclusions:
- Brain ischemia/reperfusion leads to endothelial dysfunction in mesenteric resistance arteries 24 hours post-event.
- Excessive superoxide anion production in MRA is a key mediator of this endothelial dysfunction.
- Elevated plasma cytokine levels following stroke may contribute to the observed vascular effects.
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