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Published on: July 22, 2014
Selective cerebral vascular dysfunction in Mn-SOD-deficient mice
F M Faraci1, M L Modrick, C M Lynch
1Department of Internal Medicine, E318-2-GH Carver College of Medicine, University of Iowa, Iowa City, IA 52242-1081, USA. frank-faraci@uiowa.edu
Abstract:
We tested the hypothesis that the mitochondrial form of superoxide dismutase [manganese superoxide dismutase (Mn-SOD)] protects the cerebral vasculature. Basilar arteries (baseline diameter approximately 140 microm) from mice were isolated, cannulated, and pressurized to measure vessel diameter. In arteries from C57BL/6 mice preconstricted with U-46619, acetylcholine (ACh; an endothelium-dependent vasodilator) produced dilation that was similar in male and female mice and abolished by an inhibitor of nitric oxide synthase. Vasodilation to ACh was not altered in heterozygous male or female Mn-SOD-deficient (Mn-SOD+/-) mice compared with wild-type littermate controls (Mn-SOD+/+). Constriction of the basilar artery to arginine vasopressin, but not KCl or U-46619, was increased in Mn-SOD+/- mice (P<0.05), and this effect was prevented by tempol, a scavenger of superoxide. We also examined responses of cerebral (pial) arterioles (branches of the middle cerebral artery, control diameter approximately 30 microm) to ACh in anesthetized mice using a cranial window. Responses to ACh, but not nitroprusside (an endothelium-independent agonist), were reduced (P<0.05) in cerebral arterioles in Mn-SOD+/- mice, and this effect was prevented by tempol. Thus these are the first data on the role of Mn-SOD in cerebral circulation. In the basilar artery, ACh produced nitric oxide-mediated dilation that was similar in male and female mice. Under normal conditions in cerebral arteries, responses to ACh were not altered but constrictor responses were selectively enhanced in Mn-SOD+/- mice. In the cerebral microcirculation, there was superoxide-mediated impairment of responses to ACh.
Insights
Manganese superoxide dismutase (Mn-SOD) deficiency impairs cerebral artery constriction and reduces vasodilation in microcirculation. Superoxide radicals contribute to these vascular dysfunctions, highlighting Mn-SOD's protective role.
Area of Science:
- Cardiovascular Physiology
- Neuroscience
- Biochemistry
Background:
- Mitochondrial manganese superoxide dismutase (Mn-SOD) is crucial for cellular defense against oxidative stress.
- The role of Mn-SOD in regulating cerebral vascular function remains incompletely understood.
Purpose of the Study:
- To investigate the protective role of Mn-SOD in the cerebral vasculature.
- To determine the impact of Mn-SOD deficiency on cerebral artery and arteriole function.
Main Methods:
- Isolated mouse basilar arteries and pial arterioles were used to assess vascular responses.
- Vessel diameter changes were measured under pressurized conditions and in vivo using a cranial window.
- Responses to acetylcholine (vasodilator) and other constricting agents were evaluated in wild-type and Mn-SOD-deficient mice.
Main Results:
- Mn-SOD deficiency did not alter acetylcholine-induced vasodilation in basilar arteries but increased constriction to arginine vasopressin.
- In cerebral microcirculation, Mn-SOD deficiency reduced acetylcholine-induced vasodilation, an effect prevented by superoxide scavenging.
- Superoxide radicals were implicated in the impairment of vascular responses in Mn-SOD-deficient mice.
Conclusions:
- Mn-SOD plays a significant role in protecting the cerebral vasculature from oxidative stress.
- Superoxide contributes to impaired vasodilation in the cerebral microcirculation of Mn-SOD-deficient mice.
- These findings underscore the importance of Mn-SOD in maintaining cerebral vascular homeostasis.
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