Nitric oxide, oxidative stress, and progression of chronic renal failure

被引:239
作者
Modlinger, PS
Wilcox, CS
Aslam, S
机构
[1] Georgetown Univ, Med Ctr, Div Nephrol & Hypertens, Washington, DC 20007 USA
[2] Georgetown Univ, Med Ctr, Cardiovasc Kidney Inst, Washington, DC 20007 USA
关键词
D O I
10.1016/j.semnephrol.2004.04.007
中图分类号
R5 [内科学]; R69 [泌尿科学(泌尿生殖系疾病)];
学科分类号
1002 ; 100201 ;
摘要
Cellular injury or organ dysfunction from oxidative stress occurs when reactive oxygen species (ROS) accumulate in excess of the host defense mechanisms. The deleterious effect of ROS occurs from 2 principal actions. First, ROS can inactivate mitochondrial enzymes, damage DNA, or lead to apoptosis or cellular hypertrophy. Second, nitric oxide (NO), which is a principal endothelial-derived relaxing factor, reacts with superoxide anion (O2 -) to yield peroxynitrite (ONOO-), which is a powerful oxidant and nitrosating agent. The inactivation of NO by O 2 - creates NO deficiency. Oxidative stress can promote the production of vasoconstrictor molecules and primary salt retention by the kidney. Several hypertensive animal models showed increased activity of nicotine adenine dinucleotide phosphate (NADPH) oxidase, which is the chief source of O2 - in the vessel wall and kidneys. NO regulates renal blood flow, tubuloglomerular feedback (TGF), and pressure natriuresis. Animal models of NO deficiency develop hypertension, proteinuria, and glomerulosclerosis. Evidence is presented that chronic renal failure (CRF) is a state of NO deficiency secondary to decreased kidney NO production and/or increased bioinactivation of NO by O2 -. Patients with CRF show decreased endothelium-dependent vasodilatation to acetylcholine, have increased markers of oxidative stress, and diminished antioxidant activity. Therapy for oxidative stress has focused on antioxidants and agents that modify the renin-angiotensin system. The effects of such treatments are more compelling in animal models than in human studies. © 2004 Elsevier Inc. All rights reserved.
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页码:354 / 365
页数:12
相关论文
共 106 条
[41]  
Ikizler TA, 2002, CLIN NEPHROL, V58, P190
[42]  
ITO S, 1995, CURR OPIN NEPHROL HY, V4, P28
[43]   Physiology and biochemistry of endothelial function in children with chronic renal failure [J].
Kari, JA ;
Donald, AE ;
Vallance, DT ;
Bruckdorfer, KR ;
Leone, A ;
Mullen, MJ ;
Bunce, T ;
Dorado, B ;
Deanfield, JE ;
Rees, L .
KIDNEY INTERNATIONAL, 1997, 52 (02) :468-472
[44]  
KATOH T, 1994, J AM SOC NEPHROL, V4, P1690
[45]   A mouse model of angiotensin II slow pressor response: Role of oxidative stress [J].
Kawada, N ;
Imai, E ;
Karber, A ;
Welch, WJ ;
Wilcox, CS .
JOURNAL OF THE AMERICAN SOCIETY OF NEPHROLOGY, 2002, 13 (12) :2860-2868
[46]   Effects of dietary salt intake on plasma arginine [J].
Kitiyakara, C ;
Chabrashvili, T ;
Jose, P ;
Welch, WJ ;
Wilcox, CS .
AMERICAN JOURNAL OF PHYSIOLOGY-REGULATORY INTEGRATIVE AND COMPARATIVE PHYSIOLOGY, 2001, 280 (04) :R1069-R1075
[47]   Non-traditional cardiovascular disease risk factors in end-stage renal disease: oxidate stress and hyperhomocysteinemia [J].
Kitiyakara, C ;
Gonin, J ;
Massy, Z ;
Wilcox, CS .
CURRENT OPINION IN NEPHROLOGY AND HYPERTENSION, 2000, 9 (05) :477-487
[48]   Novel gp91phox homologues in vascular smooth muscle cells -: Nox1 mediates angiotensin II-induced superoxide formation and redox-sensitive signaling pathways [J].
Lassègue, B ;
Sorescu, D ;
Szöcs, K ;
Yin, QQ ;
Akers, M ;
Zhang, Y ;
Grant, SL ;
Lambeth, JD ;
Griendling, KK .
CIRCULATION RESEARCH, 2001, 88 (09) :888-894
[49]   Effect of a high-salt diet on oxidant enzyme activity in skeletal muscle microcirculation [J].
Lenda, DM ;
Boegehold, MA .
AMERICAN JOURNAL OF PHYSIOLOGY-HEART AND CIRCULATORY PHYSIOLOGY, 2002, 282 (02) :H395-H402
[50]   Production of superoxide through NADH oxidase in thick ascending limb of Henle's loop in rat kidney [J].
Li, N ;
Yi, FX ;
Spurrier, JL ;
Bobrowitz, CA ;
Zou, AP .
AMERICAN JOURNAL OF PHYSIOLOGY-RENAL PHYSIOLOGY, 2002, 282 (06) :F1111-F1119