Literature DB >> 12573139

NAD(P)H oxidase-derived reactive oxygen species as mediators of angiotensin II signaling.

Ibrahim R Hanna1, Yoshihiro Taniyama, Katalin Szöcs, Petra Rocic, Kathy K Griendling.   

Abstract

Angiotensin II has been shown to participate in both physiological processes, such as sodium and water homeostasis and vascular contraction, and pathophysiological processes, including atherosclerosis and hypertension. The effects of this molecule on vascular tissue are mediated at least in part by the modification of the redox milieu of its target cells. Angiotensin II has been shown to activate the vascular NAD(P)H oxidase(s) resulting in the production of reactive oxygen species, namely superoxide and hydrogen peroxide. In this article, we review what is known about the molecular steps that link angiotensin II and its receptor to production of reactive oxygen species and subsequent redox-mediated events, focusing on the structural and functional properties of the vascular NAD(P)H oxidases and their downstream mediators. As such, we provide a framework linking angiotensin II to crucial vascular pathologies, such as hypertension, atherosclerosis, and restenosis after angioplasty, by means of the NAD(P)H-dependent oxidases and their effector molecules.

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Year:  2002        PMID: 12573139     DOI: 10.1089/152308602762197443

Source DB:  PubMed          Journal:  Antioxid Redox Signal        ISSN: 1523-0864            Impact factor:   8.401


  71 in total

1.  Angiotensin II evokes sensory long-term facilitation of the carotid body via NADPH oxidase.

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Review 2.  Renin-angiotensin system blockers and modulation of radiation-induced brain injury.

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Journal:  Curr Drug Targets       Date:  2010-11       Impact factor: 3.465

Review 3.  Modifying radiation damage.

Authors:  Kwanghee Kim; William H McBride
Journal:  Curr Drug Targets       Date:  2010-11       Impact factor: 3.465

4.  Oxidative stress-dependent cyclooxygenase-2-derived prostaglandin f(2α) impairs endothelial function in renovascular hypertensive rats.

Authors:  Xiao Yu Tian; Wing Tak Wong; Fung Ping Leung; Yang Zhang; Yi-Xiang Wang; Hung Kay Lee; Chi Fai Ng; Zhen Yu Chen; Xiaoqiang Yao; Chak Leung Au; Chi Wai Lau; Paul M Vanhoutte; John P Cooke; Yu Huang
Journal:  Antioxid Redox Signal       Date:  2011-12-02       Impact factor: 8.401

5.  Temporal changes in the expression of mRNA of NADPH oxidase subunits in renal epithelial cells exposed to oxalate or calcium oxalate crystals.

Authors:  Saeed R Khan; Aslam Khan; Karen J Byer
Journal:  Nephrol Dial Transplant       Date:  2010-11-15       Impact factor: 5.992

6.  Increased ANG II sensitivity following recovery from acute kidney injury: role of oxidant stress in skeletal muscle resistance arteries.

Authors:  Shane A Phillips; Kimberly R Pechman; Ellen C Leonard; Jessica L Friedrich; Jing-Tan Bian; Alisa G Beal; David P Basile
Journal:  Am J Physiol Regul Integr Comp Physiol       Date:  2010-03-24       Impact factor: 3.619

Review 7.  Redox-dependent mechanisms in coronary collateral growth: the "redox window" hypothesis.

Authors:  June Yun; Petra Rocic; Yuh Fen Pung; Souad Belmadani; Ana Catarina Ribeiro Carrao; Vahagn Ohanyan; William M Chilian
Journal:  Antioxid Redox Signal       Date:  2009-08       Impact factor: 8.401

8.  Angiotensin II type 1 receptor blockade corrects cutaneous nitric oxide deficit in postural tachycardia syndrome.

Authors:  Julian M Stewart; Indu Taneja; June Glover; Marvin S Medow
Journal:  Am J Physiol Heart Circ Physiol       Date:  2007-11-09       Impact factor: 4.733

9.  Taurine protected kidney from oxidative injury through mitochondrial-linked pathway in a rat model of nephrolithiasis.

Authors:  Cheng Yang Li; Yao Liang Deng; Bing Hua Sun
Journal:  Urol Res       Date:  2009-06-10

10.  Failure of antioxidants to protect against angiotensin II-induced aortic rupture in aged apolipoprotein(E)-deficient mice.

Authors:  F Jiang; G T Jones; G J Dusting
Journal:  Br J Pharmacol       Date:  2007-09-10       Impact factor: 8.739

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