Oxygen radical-mediated reduction in basal and agonist-evoked NO release in isolated rat heart.
暂无分享,去创建一个
D. Kass | J. Zweier | A. L'Abbate | Y. Xia | N. Paolocci | G. Ambrosio | R. Biondi | R. Rossi | M. Bettini | C. Lee | C. O. Berlowitz | Yong Xia | Giuseppe Ambrosio | Jay L. Zweier | Carlos O. Berlowitz | David A. Kass | Roberto Biondi | Chang Il Lee | Antonio L'Abbate
[1] J. Zweier,et al. Endothelial dysfunction does not require loss of endothelial nitric oxide synthase. , 2000, American journal of physiology. Heart and circulatory physiology.
[2] D. Sorescu,et al. NAD(P)H oxidase: role in cardiovascular biology and disease. , 2000, Circulation research.
[3] U. Flögel,et al. Contribution of NO to ischemia-reperfusion injury in the saline-perfused heart: a study in endothelial NO synthase knockout mice. , 1999, Journal of molecular and cellular cardiology.
[4] R Busse,et al. NO: the primary EDRF. , 1999, Journal of molecular and cellular cardiology.
[5] P. Vanhoutte,et al. The alternative: EDHF. , 1999, Journal of molecular and cellular cardiology.
[6] R. Nadeau,et al. Demonstration of the production of oxygen-centered free radicals during electrolysis using E.S.R. spin-trapping techniques: effects on cardiac function in the isolated rat heart. , 1998, Free radical biology & medicine.
[7] J. Zweier,et al. Decreased Nitric-oxide Synthase Activity Causes Impaired Endothelium-dependent Relaxation in the Postischemic Heart* , 1997, The Journal of Biological Chemistry.
[8] J. Devynck,et al. Nitric oxide production by endothelial cells: comparison of three methods of quantification. , 1997, Life sciences.
[9] R. Schulz,et al. Generation of peroxynitrite contributes to ischemia-reperfusion injury in isolated rat hearts. , 1997, Cardiovascular research.
[10] J. Zweier,et al. Measurement of Nitric Oxide and Peroxynitrite Generation in the Postischemic Heart , 1996, The Journal of Biological Chemistry.
[11] M. Curtis,et al. Mechanism of 5‐hydroxytryptamine‐induced coronary vasodilatation assessed by direct detection of nitric oxide production in guinea‐pig isolated heart , 1996, British journal of pharmacology.
[12] D. Fulton,et al. Cytochrome P450‐dependent effects of bradykinin in the rat heart , 1995, British journal of pharmacology.
[13] M. Hess,et al. Sustain inhibition of nitric oxide by NG-nitro-l-arginine improves myocardial function following ischemia/reperfusion in isolated perfused rat heart , 1995 .
[14] K. Yoshida,et al. Spontaneous nitric oxide release accounts for the potent pharmacological actions of FK409. , 1994, European journal of pharmacology.
[15] T. Onodera,et al. Characterization of exogenous hydroxyl radical effects on myocardial function, metabolism and ultrastructure. , 1994, Journal of molecular and cellular cardiology.
[16] A. M. Lefer,et al. The Role of L‐Arginine in Ameliorating Reperfusion Injury After Myocardial Ischemia in the Cat , 1992, Circulation.
[17] M. Marcus,et al. Effect of an arginine analogue on acetylcholine-induced coronary microvascular dilatation in dogs. , 1991, The American journal of physiology.
[18] D. Harrison,et al. Chronic treatment with polyethylene-glycolated superoxide dismutase partially restores endothelium-dependent vascular relaxations in cholesterol-fed rabbits. , 1991, Circulation research.
[19] V. P. Chacko,et al. Glycolytic inhibition and calcium overload as consequences of exogenously generated free radicals in rabbit hearts. , 1991, The Journal of clinical investigation.
[20] R. Nadeau,et al. Myocardial dysfunction and norepinephrine release in the isolated rat heart injured by electrolysis-induced oxygen free radicals. , 1991, Journal of molecular and cellular cardiology.
[21] J. Remacle,et al. Comparative study of oxygen toxicity in human fibroblasts and endothelial cells , 1990, Journal of cellular physiology.
[22] J. Schrader,et al. Control of coronary vascular tone by nitric oxide. , 1990, Circulation research.
[23] B. Freeman,et al. Apparent hydroxyl radical production by peroxynitrite: implications for endothelial injury from nitric oxide and superoxide. , 1990, Proceedings of the National Academy of Sciences of the United States of America.
[24] N. Dhalla,et al. Mechanism for depression of heart sarcolemmal Ca2+ pump by oxygen free radicals. , 1989, The American journal of physiology.
[25] J. Schrader,et al. Nitric oxide release from the isolated guinea pig heart. , 1988, European journal of pharmacology.
[26] D. Stewart,et al. Free radicals inhibit endothelium-dependent dilation in the coronary resistance bed. , 1988, The American journal of physiology.
[27] J. Schrader,et al. Quantitative and kinetic characterization of nitric oxide and EDRF released from cultured endothelial cells. , 1988, Biochemical and biophysical research communications.
[28] G. Lutty,et al. Measurement of endothelial cell free radical generation: evidence for a central mechanism of free radical injury in postischemic tissues. , 1988, Proceedings of the National Academy of Sciences of the United States of America.
[29] M. Feelisch,et al. Correlation between nitric oxide formation during degradation of organic nitrates and activation of guanylate cyclase. , 1987, European journal of pharmacology.
[30] M. Weisfeldt,et al. Direct measurement of free radical generation following reperfusion of ischemic myocardium , 1987 .
[31] P. Vanhoutte,et al. Superoxide anions and hyperoxia inactivate endothelium-derived relaxing factor. , 1986, The American journal of physiology.
[32] S. Moncada,et al. Superoxide anion is involved in the breakdown of endothelium-derived vascular relaxing factor , 1986, Nature.
[33] U. Förstermann,et al. The role of endothelial and non‐endothelial prostaglandins in the relaxation of isolated blood vessels of the rabbit induced by acetylcholine and bradykinin , 1986, British journal of pharmacology.
[34] G. Ghai,et al. Myocardial alterations due to free-radical generation. , 1984, The American journal of physiology.
[35] D. Ku. Coronary vascular reactivity after acute myocardial ischemia. , 1982, Science.