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PMID: 11872908 Published · ppublish English Journal Article Research Support, U.S. Gov't, P.H.S.

Manganese superoxide dismutase deficiency exacerbates cerebral infarction after focal cerebral ischemia/reperfusion in mice: implications for the production and role of superoxide radicals.

Stroke ·Vol. 33 ·No. 3 ·2002-03-00 ·Pages 809-15

Kim GW, Kondo T, Noshita N, Chan PH

Abstract

Superoxide anion radicals (O2*-) are implicated in ischemia/reperfusion injury, although a direct relationship has not been elucidated. Recently, a specific method of hydroethidine (HEt) oxidation by O2*- was developed to detect O2*- production in a variety of experimental brain injury models. To clarify the role of O2*- in the mechanism of ischemia/reperfusion, we investigated O2*- production after ischemia/reperfusion and ischemia/reperfusion injury in mutant mice deficient in mitochondrial manganese superoxide dismutase (MnSOD) and in wild-type littermates. Ischemia/reperfusion was performed for 60 minutes using intraluminal suture blockade of the middle cerebral artery in the mutant or wild-type mice. We evaluated fluorescent kinetics of HEt or ethidium, the oxidized form of HEt, in brains after an intravenous injection of HEt, followed by measurement of cellular O2*- production using specific HEt oxidation by O2*- before and after ischemia/reperfusion. Furthermore, we compared O2*- production and subsequent infarct volume in the mice using triphenyltetrazolium chloride after ischemia/reperfusion. HEt oxidation to ethidium is primarily a result of mitochondrially produced O2*- under physiological conditions. Cerebral ischemia/reperfusion produced O2*- prominently in neurons shortly after reperfusion, followed by a delayed increase in endothelial cells. A deficiency in MnSOD in mutant mice increased mitochondrial O2*- production and exacerbated cerebral infarction, worsening neurological deficits after ischemia/reperfusion. These results suggest that mitochondrial O2*- production may be a critical step underlying the mechanism of ischemia/reperfusion injury and that MnSOD may protect against ongoing oxidative cell death after ischemia/reperfusion.

MeSH Terms
Animals Cerebral Infarction/pathology,physiopathology Cytoprotection Disease Models, Animal Ethidium/analysis,metabolism Heterozygote Homozygote Male Mice Mice, Knockout Mice, Mutant Strains Mitochondria/metabolism Oxidative Stress Phenanthridines/metabolism Reperfusion Injury/physiopathology Superoxide Dismutase/deficiency,genetics,metabolism Superoxide Dismutase-1 Superoxides/metabolism Survival Rate
Chemicals
Phenanthridines Superoxides hydroethidine Sod1 protein, mouse Superoxide Dismutase Superoxide Dismutase-1 superoxide dismutase 2 Ethidium
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Kim Gyung W
Department of Neurosurgery, Stanford University School of Medicine, Stanford, Calif, USA.
Kondo Takeo
Noshita Nobuo
Chan Pak H
Article Info
Journal
Stroke
Abbr.
Stroke
ISSN
1524-4628
Published
2002-03-00
Pages
809-15
Language
English
Region
United States
NLM ID
0235266
Subset
IM
Grants
NINDS NIH HHS · N01 NS 82386 · United States
NINDS NIH HHS · NS 14534 · United States
NINDS NIH HHS · NS 25372 · United States
NINDS NIH HHS · NS 36147 · United States
NINDS NIH HHS · NS 38653 · United States
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