Role of oxidative stress in the pathogenesis of acute pancreatitis.
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[1] G. Mann,et al. Amino acid transport by small intestinal, hepatic, and pancreatic epithelia. , 1995, Gastroenterology.
[2] L. Hunt,et al. Evidence for early oxidative stress in acute pancreatitis , 1995, International journal of pancreatology : official journal of the International Association of Pancreatology.
[3] A. Dabrowski,et al. Nitric oxide contributes to multiorgan oxidative stress in acute experimental pancreatitis. , 1994, Scandinavian journal of gastroenterology.
[4] A. Satoh,et al. Role of Nitric Oxide in the Pancreatic Blood Flow Response to Caerulein , 1994, Pancreas.
[5] A. Dabrowski,et al. The effect of nafamostat mesilate (FUT-175) and gabexate mesilate (FOY) on multiorgan oxidant-antioxidant balance in acute experimental pancreatitis. , 1994, Journal of Physiology and Pharmacology.
[6] M. Büchler,et al. Oxygen radicals in experimental acute pancreatitis. , 1994, Hepato-gastroenterology.
[7] M. Lerch,et al. Experimental animal models of acute pancreatitis. , 1994, International journal of pancreatology : official journal of the International Association of Pancreatology.
[8] S. Muallem,et al. Depletion of intracellular Ca2+ stores activates nitric-oxide synthase to generate cGMP and regulate Ca2+ influx. , 1994, The Journal of biological chemistry.
[9] S Moncada,et al. Nitric oxide synthases in mammals. , 1994, The Biochemical journal.
[10] J. Stachura,et al. Nitric oxide in pancreatic secretion and hormone-induced pancreatitis in rats , 1994, International journal of pancreatology : official journal of the International Association of Pancreatology.
[11] P. Borm,et al. Cell and tissue responses to oxidative damage. , 1993, Laboratory investigation; a journal of technical methods and pathology.
[12] I. Nordback,et al. Pancreatitis in Finland between 1970 and 1989. , 1993, Gut.
[13] R. McCloy,et al. Vitamin C status in patients with acute pancreatitis , 1993, The British journal of surgery.
[14] S. Ito,et al. Radioimmunoreactive Plasma Bradykinin Levels and Histological Changes During the Course of Cerulein‐Induced Pancreatitis in Rats , 1993, Pancreas.
[15] B. Tiran,et al. Pathological events in experimental acute pancreatitis prevented by the bradykinin antagonist, Hoe 140 , 1993, British journal of pharmacology.
[16] A. Dabrowski,et al. Oxidative stress. An early phenomenon characteristic of acute experimental pancreatitis. , 1992, International journal of pancreatology : official journal of the International Association of Pancreatology.
[17] J. Rehfeld,et al. Effects of gastric fundectomy and antrectomy on the exocrine pancreas in the hamster , 1992, International journal of pancreatology : official journal of the International Association of Pancreatology.
[18] L. Ferrell,et al. Effects of Antioxidants and Free Radical Scavengers in Three Different Models of Acute Pancreatitis , 1992, Pancreas.
[19] S. Moncada,et al. Bradykinin and ATP stimulate L-arginine uptake and nitric oxide release in vascular endothelial cells. , 1991, Biochemical and biophysical research communications.
[20] H. Sies. Oxidative stress: from basic research to clinical application. , 1991, The American journal of medicine.
[21] B. Halliwell. Reactive oxygen species in living systems: source, biochemistry, and role in human disease. , 1991, The American journal of medicine.
[22] T. Manabe,et al. Effect of a new synthetic ascorbic acid derivative as a free radical scavenger on the development of acute pancreatitis in mice. , 1991, Gut.
[23] M. Büchler,et al. Oxygen free radicals in acute pancreatitis of the rat. , 1990, Gut.
[24] L. Ferrell,et al. Pancreatic exocrine secretion in acute experimental pancreatitis. , 1990, Gastroenterology.
[25] Takeshi Kobayashi,et al. The role of oxygen free radicals in experimental acute pancreatitis in the rat , 1989, International journal of pancreatology : official journal of the International Association of Pancreatology.
[26] G. Adler,et al. Time Course and Cellular Source of Pancreatic Regeneration Following Acute Pancreatitis in the Rat , 1986, Pancreas.
[27] J. Cameron,et al. The pathogenesis of acute pancreatitis. The source and role of oxygen-derived free radicals in three different experimental models. , 1985, Annals of surgery.
[28] J. Cameron,et al. The Role of Oxygen‐derived Free Radicals in the Pathogenesis of Acute Pancreatitis , 1984, Annals of surgery.
[29] M. Kotb,et al. Amelioration of the physiologic and biochemical changes of acute pancreatitis using an anti-TNF-alpha polyclonal antibody. , 1994, American journal of surgery.
[30] R. Ferriani,et al. Basic FGF activates phospholipase D in endothelial cells in the absence of inositol-lipid hydrolysis. , 1994, The American journal of physiology.
[31] M. Büchler,et al. The role of oxygen radicals in experimental acute pancreatitis. , 1992, Free radical biology & medicine.
[32] B. Neuschwander‐Tetri,et al. Glutathione monoethyl ester ameliorates caerulein-induced pancreatitis in the mouse. , 1992, The Journal of clinical investigation.
[33] G. Ohshio,et al. Functional changes of the exocrine perfused rat pancreas in cerulein-induced pancreatitis. , 1992, Digestion.
[34] J. Grendell,et al. Intracellular Events in the Pathogenesis of Acute Pancreatitis , 1991, Pancreas.
[35] T. Kyogoku,et al. Changes in lipid peroxide and oxygen radical scavengers in cerulein-induced acute pancreatitis. Imbalance between the offense and defense systems. , 1990, Digestion.
[36] A. Dabrowski,et al. Oxygen radicals mediate depletion of pancreatic sulfhydryl compounds in rats with cerulein-induced acute pancreatitis. , 1990, Digestion.
[37] A. Thompson,et al. The site of bradykinin release in acute experimental pancreatitis. , 1969, Archives of surgery.