• Title of article

    Alterations in redox homeostasis and prostaglandins impair endothelial-dependent vasodilation in euglycemic autoimmune nonobese diabetic mice

  • Author/Authors

    Xiaofeng Ling، نويسنده , , Adela Cota-Gomez، نويسنده , , Natalia C. Flores، نويسنده , , Daniel Hernandez-Saavedra، نويسنده , , Joe M. McCord، نويسنده , , John C. Marecki، نويسنده , , Kathryn Haskins، نويسنده , , Marcia McDuffie، نويسنده , , Katherine Powers، نويسنده , , Jennifer Kench، نويسنده , , Masahiko Oka، نويسنده , , Ivan McMurtry، نويسنده , , Sonia C. Flores، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2005
  • Pages
    10
  • From page
    1089
  • To page
    1098
  • Abstract
    We report herein the novel observation that alterations in oxidant/antioxidant balance are evident and cause vascular dysfunction in aortae of prediabetic nonobese-diabetic mice (NOD). We found that nitrotyrosine, a biochemical marker of oxidant stress, was higher in the NOD aortae when compared to age-matched non-autoimmune BALB/c controls or the diabetes-resistant NOD congenic strain, NOD.Lc7. The oxidant stress was localized to the intimal and medial layers, and endothelium-dependent relaxation to acetylcholine was decreased in isolated aortic rings from NOD mice. Inhibition of nitric oxide synthesis caused an endothelium-dependent contraction, and treatment with either a selective thromboxane A2/prostaglandin H2 receptor antagonist or a non-isozyme-specific cyclooxygenase inhibitor reversed this effect. Aortic rings from NOD.Lc7 did not display the paradoxical vasoconstriction. Furthermore, the vascular dysfunction was caused by oxidative stress, as treatment with a superoxide dismutase mimetic in vivo or with native antioxidant enzymes ex vivo inhibited the tissue oxidant stress and restored endothelium-dependent relaxation. Endothelial function was also restored by the inhibitors of NAD(P)H oxidase, diphenylene iodonium or apocynin. Our studies indicate that an oxidant stress that occurs prior to the onset of diabetes in this mouse model contributes to endothelial dysfunction independently of overt diabetes.
  • Keywords
    SOD , NAD(P)H oxidase , Diabetes-resistant NOD.Lc7 , endothelial dysfunction , NOD mouse
  • Journal title
    Free Radical Biology and Medicine
  • Serial Year
    2005
  • Journal title
    Free Radical Biology and Medicine
  • Record number

    520316