Nitrate tolerance as a model of vascular dysfunction: Roles for mitochondrial aldehyde dehydrogenase and mitochondrial oxidative stress

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作者
Andreas Daiber
Matthias Oelze
Philip Wenzel
Jennifer M. Dias Wickramanayake
Swenja Schuhmacher
Thomas Jansen
Karl J. Lackner
Michael Torzewski
Thomas Münzel
机构
[1] Johannes-Gutenberg-Universität Mainz,II. Medizinische Klinik, Labor für Molekulare Kardiologie
[2] Johannes-Gutenberg-Universität Mainz,Institut für Klinische Chemie und Laboratoriumsmedizin
来源
Pharmacological Reports | 2009年 / 61卷
关键词
organic nitrate; superoxide; peroxynitrite; mitochondrial aldehyde dehydrogenase; mitochondrial oxidative stress; vascular dysfunction;
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摘要
Organic nitrates are a group of very effective anti-ischemic drugs. They are used for the treatment of patients with stable angina, acute myocardial infarction and chronic congestive heart failure. Amajor therapeutic limitation inherent to organic nitrates is the development of tolerance, which occurs during chronic treatment with these agents. The mechanisms underlying nitrate tolerance remain incompletely defined and are likely multifactorial. One mechanism seems to be a diminished bioconversion of nitroglycerin, another seems to be the induction of vascular oxidative stress, and a third may include neurohumoral adaptations. Recent studies have revealed that mitochondrial reactive oxygen species (ROS) formation and a subsequent oxidative inactivation of nitrate reductase, the mitochondrial aldehyde dehydrogenase (ALDH-2), play an important role in the development of nitrate and crosstolerance. The present review focus first on the role of oxidative stress and second on the role of ALDH-2 in organic nitrate bioactivation leading to the development of tolerance and cross-tolerance (endothelial dysfunction) in response to nitroglycerin treatment. Recently, the role of mitochondrial oxidative stress in the development of nitrate tolerance was demonstrated in a mouse model with a heterozygous deletion of manganese superoxide dismutase (MnSOD+/−), which is the mitochondrial isoform of this enzyme. Studies from our own laboratory have provided evidence for cross-talk between mitochondrial and cytosolic (Nox-dependent) sources of ROS. We close this review by focusing on the protective properties of the organic nitrate pentaerithrityl tetranitrate, which upregulates enzymes that have strong antioxidative activity, such as heme oxygenase-1 and ferritin, thereby preventing the development of tolerance and endothelial dysfunction.
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页码:33 / 48
页数:15
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[1]  
Abou-Mohamed G(2004)Roles of superoxide, peroxynitrite, and protein kinase c in the development of tolerance to nitroglycerin J Pharmacol Exp Ther 308 289-299
[2]  
Johnson JA(1992)Mechanisms of action of the organic nitrates in the treatment of myocardial ischemia Am J Cardiol 70 30B-42B
[3]  
Jin L(1977)Nitric oxide activates guanylate cyclase and increases guanosine 3’:5’-cyclic monophosphate levels in various tissue preparations Proc Natl Acad Sci USA 74 3203-3207
[4]  
El-Remessy AB(2005)Redox regulation of vascular prostanoid synthesis by the nitric oxide-superoxide system Biochem Biophys Res Commun 338 536-542
[5]  
Do K(1996)Nitric oxide, superoxide, and peroxynitrite: The good, the bad, and ugly Am J Physiol Cell Physiol 271 C1424-1437
[6]  
Kaesemeyer WH(1999)Absence of nitrate tolerance after long-term treatment with ramipril: An endotheliumdependent mechanism J Cardiovasc Pharmacol 34 547-553
[7]  
Caldwell RB(2005)Lipoic acid–the drug of the future? Pharmacol Rep 57 570-577
[8]  
Caldwell RW(2005)Triggering mitochondrial radical release: A new function for NADPH oxidases Hypertension 45 847-848
[9]  
Abrams J(2000)Endothelial dysfunction in cardiovascular diseases: The role of oxidant stress Circ Res 87 840-844
[10]  
Arnold WP(2008)Activation of aldehyde dehydrogenase-2 reduces ischemic damage to the heart Science 321 1493-1495