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Endothelium
Journal of Endothelial Cell Research
Volume 9, 2002 - Issue 3
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Research Article

Inhibition of NADPH Oxidase Activation in Endothelial Cells by ortho -Methoxy-Substituted Catechols

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Pages 191-203 | Published online: 13 Jul 2009

References

  • Abid R.M., Kachra Z., Spokes K.C., and Aird W.C. (2000) NADPH oxidase activity is required for endothelial cell proliferation and migration. Federation of European Biochemical Societies Letters, 486, 252–256.
  • Akard L.P., English D., and Gabig T.G. (1988) Rapid deactivation of NADPH oxidase in neutrophils; continuous replacement by newly activated enzyme sustains the respiratory burst. Blood, 72, 322–327.
  • Al-Mehdi A.B., Zhao G., Dodia C., Tozawa K., Costa K., Muzykantov V., Ross C., Blecha F., Dinauer M., and Fisher A.B. (1998) Endothelial NADPH oxidase as the source of oxidants in lungs exposed to ischemia or high KC. Circulation Research, 83, 730–737.
  • Azumi H., Inoue N., Takeshita S., Rikitake Y., Kawashima S., Hayashi Y., Itoh H., and Yokoyama M. (1999) Expression of NADH/NADPH oxidase p22phox in human coronary arteries. Circulation, 100, 1494–1498.
  • Babior B.M. (1999) NADPH oxidase: An update. Blood, 93, 1464–1476.
  • Babior B.M. (2000) The NADPH oxidase of endothelial cells. IUBMB Life, 50, 267–269.
  • Bauscher M., and Mantele W.J. (1992) Electrochemical and infrared spectroscopic characterization of redox reactions of p-quinone. Physical Chemistry, 96, 11101–11108.
  • Bayrakutan U., Blayney L., and Shah A.M. (2000) Molecular characterization and localization of the NAD(P)H oxidase components gp91-phox and p22-phox in endothelial cells. Arteriosclerosis, Thrombosis and Vascular Biology, 20, 1903–1911.
  • Bayraktutan U., Draper N., Lang D., and Shah A.M. (1998) Expression of a functional neutrophil-typeNADPHoxidase in cultured rat coronary microvascular endothelial cells. Cardiovascular Research, 38, 256–262.
  • Bhunia A.K., Arai T., Bulkey G., and Chatterjee S. (1998) Lactosylceramide mediates tumor necrosis factor-®-induced intercellular adhesion molecule-1 (ICAM-1) expression and the adhesion of neutrophil in human umbilical vein endothelial cells. Journal of Biological Chemistry, 273, 34349–34357.
  • Clark R.A., Vollp B.D., Leidal K.G., and Nauseef W.M. (1990) Two cytosolic components of the human neutrophil respiratory burst oxidase translocate to the plasma membrane during cell activation. Journal of Clinical Investigation, 85, 714–721.
  • Fisher A.B., Al-Mehdi A.B., and Muzykantov V. (1999) Activation of endothelial NADPH oxidase as the source of a reactive oxygen species in lung ischemia. Chest, 116, 25S–26S.
  • Gorlach A., Brandes R.P., Nguyen K., Amidi M., Dehghani A.F., and Busse R. (2000) A gp91phox containing NADPH oxidase selectively expressed in endothelial cells is a major source of oxygen radical generation in the arterial wall. Circulation Research, 87, 26–32.
  • Hohler B., Holzapfel B., and Kummer W. (2000) NADPH oxidase subunits and superoxide production by porcine pulmonary endothelial cells. Histochemistry and Cell Biology, 114, 29–37.
  • Holland J.A., Meyer J.W., Schmitt M.E., Sauro M.D., Johnson D.K., Abdul-Karim R.W., Patel V., Ziegler L.M., Schillinger K.J., Small R.F., and Lemanski L.F. (1997) Low-density lipoprotein stimulated peroxide production and endocytosis in cultured human endothelial cells: Mechanisms of action. Endothelium, 5, 191–207.
  • Holland J.A., Pritchard K.A., Rogers N.J., and Stemerman M.B. (1988) Perturbation of cultured human endothelial cells by atherogenic levels of low density lipoprotein. American Journal of Pathology, 132, 474–478.
  • Holland J.A., Ziegler L.M., and Meyer J.W. (1996) Atherogenic levels of low density lipoprotein increase hydrogen peroxide generation in cultured human endothelial cells: Possible mechanism of heightened endocytosis. Journal of Cellular Physiology, 166, 144–151.
  • Hu Q., Zheng G., Zweier J.L., Deshpande S., Irani K., and Ziegelstein R.C. (2000) NADPH oxidase activation increases the sensitivity of intracellular Ca2+ stores to inositol 1,4,5-triphosphate in human endothelial cells. Journal of Biological Chemistry, 275, 15749–15757.
  • Inanami O., Johnson J.L., and Babior B.M. (1998) The leukocyte NADPH oxidase subunit p47phox : The role of cysteine residues. Archives Biochemistry and Biophysics, 350, 36–40.
  • Jones S.A., O'Donnell V.B., Wood J.D., Broughton J.P., Hughes E.J., and Jones O.T.G. (1996) Expression of phagocyte NADPH oxidase components in human endothelial cells. American Journal of Physiology, 271, H1626–H1634.
  • Kashiwagi A., Shinozaki K., Nishio Y., Maegawa H., Maeno Y., Kanazawa A., Kojima H., Haneda M., Hidaka H., Yasuda H., and Kikkawa R. (1999) Endothelium-specific activation of NAD(P)H oxidase in aortas of exogenously hyperinsulinemic rats. American Journal of Physiology, 277(6 Pt 1), E976–E983.
  • Li J.M., Mullen A.M., and Shah A.M. (2001) Phenotypic properties and characteristics of superoxide production by mouse coronary microvascular endothelial cells. Journal of Molecular and Cellular Cardiology, 33, 1119–1131.
  • Li J.M., and Shah A.M. (2001) Differential NADPH- versus NADH-dependent superoxide production by phagocytic-type endothelial cell NADPH oxidase. Cardiovascular Research, 52, 477–486.
  • Matsunaga T., Nakajima T., Sonoda M., Kawai S.,Kobayashi J., Inoue I., Satomi A., Katayama S., Hara A., Hokari S., Honda T., and Komoda T. (1999) Reactive oxygen species as a risk factor in verotoxin-1-exposed rats. Biochemical and Biophysical Research Communications, 260, 813–819.
  • Meyer J.W., Holland J.A., Ziegler L.M., Chang M.-M., Beebe G., and Schmitt M.E. (1999) Identification of a functional leukocyte-type NADPH oxidase in human endothelial cells: A potential atherogenic source of reactive oxygen species. Endothelium, 7, 11–22.
  • Mohazzab H K.M., Kaminski P.M., and Wolin M.S. (1994) NADH oxidoreductase is a major source of superoxide anion in bovine coronary artery endothelium. American Journal Physiology, 266 (Heart Circulation Physiology), H2568–H2572.
  • Nakano A., Koyama I., Matsunaga T., Nakajima T., Hirose H., Sato M., and Komoda T. (1999) Expression of reactive oxygen-related enzymes in human umbilical vein endothelial cells (HUVEC) cultured with high concentrations of glucose. Rinsho Byori, 47, 676–681.
  • Park J.W., Scott K.E., and Babior B.M. (1988) Activation of the leukocyte NADPH oxidase in a cell-free system: Phosphorylation vs. amphiphiles. Experimental Hematology, 26, 37–44.
  • Quick K.L., Hardt J.I., and Dugan L.L. (2000) Rapid microplate assay for superoxide scavenging efficiency. Journal of Neuroscience Methods, 97, 139–144.
  • Quinn M.T., Mullen M.L., and Jesaitis A.J. (1992) Human neutrophil cytochrome b contains multiple hemes. Evidence for heme associated with both subunits. Journal of Biological Chemistry, 267, 7303–7309.
  • Roos D., de Boer M., Kuribayashi F., Weening R.S., Segal A.W., Ahlin A., Nemet K., Hossle J.P., Bernatowska-Matuszkiewicz E., and Middleton-Price H. (1996) Mutations in the X-linked and autosomal recessive forms of chronic granulomatous disease. Blood, 87, 1663–1681.
  • Sakairi K., Matsunaga T., Nakajima T., Koyama I., Yamada S., Hirose H., Sato M., and Komoda T. (2000) Expression of reactive oxygen species related enzymes in endothelial cells stimulated with glycated lipoprotiens. Rinsho Byori The Japanese Journal of Clinical Pathology, 48, 342–347.
  • Sauer H., Wartenberg M., and Hescheler J. (2001) Reactive oxygen species as intracellular messengers during cell growth and differentiation. Cellular Physiology and Biochemistry, 11, 173–186.
  • Schmitt M.M., Schuler E., Braun M., Haring D., and Schreier P. (1998) Horseradish peroxidase: An effective but unselective biocatalyst for biaryl synthesis. Tetrahedron Letters, 39, 2945–2946.
  • Segal A.W., West I., Wientjes F., Nugent J.H., Chaven A.J., and Haley B. (1992) Cytochrome 245 is a flavocytochrome containing FAD and the NADPHbinding site of the microbiocidal oxidase of phagocytes. Biochemical Journal, 284, 781–788.
  • Simons J.M., 't Hart B.A., IpVai Ching T.R.A.M., Van Dijk H., and Labadie R.P. (1990) Metabolic activation of natural phenols into selective oxidative burst agonists by activated human neutrophils. Free Radical Biology and Medicine, 8, 251–258.
  • Smith K.R., Klei L.R., and Barchowsky A. (2001) Arsenite stimulates plasma membrane NADPH oxidase in vascular endothelial cells. American Journal of Physiology, 280 (Lung Cell Molecular Physiology), L442–L449.
  • Stolk J., Hiltermann T.J.N., Dijkman J.H., and Verhoeven A.J. (1994) Characteristics of the inhibition of NADPH oxidase activation in neutrophils by apocynin, a methoxy-substituted catechol. American Journal of Respiratory Cell and Molecular Biology, 11, 95–102.
  • Sumimoto H., Kage Y., Nunoi H., Sasaki H., Nose T., Fukumaki Y., Ohno M., Minakami S., and Takeshige K. (1994) Role of Src homology 3 domains in assembly and activation of the phagocytic NADPH oxidase. Proceedings of the National Academy of Science USA, 91, 5345–5349.
  • 't Hart B.A., Simons J.M., Rijkers G.T., Hoogvliet J.C., van Dijk H., and Labadie R.P. (1990) Reaction products of 1-naphthol with reactive oxygen species prevent NADPH-oxidase assembly in activated human neutrophils, but leave phagocytosis intact. Free Radical Biology and Medicine, 8, 241–249.
  • 't Hart B.A. (1992) Metabolic activation of phenols by stimulated neutrophils: A concept for a selective type of anti-inflammatory drug. Biotechnology Therapeutics, 3, 119–135.
  • Yeh L.H., Park Y.J., Hansalia R.J., Ahmed I.S., Deshpande S.S., Goldschmidt-Clermont P.J., Irani K., and Alevriadou B.R. (1999) Shear-induced tyrosine phosphorylation in endothelial cells requires Rac1-dependent production of ROS. American Journal of Physiology, 276 (Cell Physiology 45), C838–C847.
  • Zar J.H. (1974) Biostatistical Analysis. Prentice Hall, Englewood Cliffs, New Jersey.
  • Zulueta J.J., Yu F.S., Hertig I.A., Thannickal V.J., and Hassoun P.M. (1995) Release of hydrogen peroxide in response to hypoxia-reoxygenation: Role of an NAD(P)H oxidase-like enzyme in endothelial cell plasma membrane. American Journal of Respiratory Cell and Molecular Biology, 12, 41–49.

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