Endotheliale Stickstoffmonoxid-Synthase (German Wikipedia)

Analysis of information sources in references of the Wikipedia article "Endotheliale Stickstoffmonoxid-Synthase" in German language version.

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biochemj.org

  • W. K. Alderton, C. E. Cooper, R. G. Knowles: Nitric oxide synthases: structure, function and inhibition. In: Biochem J, 357 (Pt 3), 2001, S. 593–615, PMID 11463332; PDF.

biomedcentral.com

clinicalepigeneticsjournal.biomedcentral.com

  • Jan Postberg, Miriam Kanders, Sakeh Forcob, Rhea Willems, Valerie Orth: CpG signalling, H2A.Z/H3 acetylation and microRNA-mediated deferred self-attenuation orchestrate foetal NOS3 expression. In: Clinical Epigenetics. Band 7, 1. Januar 2015, ISSN 1868-7075, S. 9, doi:10.1186/s13148-014-0042-4, PMID 25699114 (biomedcentral.com [abgerufen am 6. April 2017]).

doi.org

  • U. Förstermann: Janus-faced role of endothelial NO synthase in vascular disease: uncoupling of oxygen reduction from NO synthesis and its pharmacological reversal. In: Biological Chemistry, 387 (12), 2006, S. 1521–1533, doi:10.1515/BC.2006.190, PMID 17132097.
  • R. F. Furchgott, J. V. Zawadzki: The obligatory role of endothelial cells in the relaxation of arterial smooth muscle by acetylcholine. In: Nature, 288 (5789), 1980, S. 373–376, doi:10.1038/288373a0.
  • R. M. Palmer, A. G. Ferrige, Salvador Moncada: Nitric oxide release accounts for the biological activity of endothelium-derived relaxing factor. In: Nature, 327 (6122), 1987, S. 524–526, doi:10.1038/327524a0.
  • R. Heller, A. Unbehaun, B. Schellenberg, B. Mayer, G. Werner-Felmayer, E. R. Werner: l-Ascorbic Acid Potentiates Endothelial Nitric Oxide Synthesis via a Chemical Stabilization of Tetrahydrobiopterin. In: Journal of Biological Chemistry, 276 (1), 2001, S. 40–47, doi:10.1074/jbc.M004392200, PMID 11022034.
  • T. J. Guzik, D. G. Harrison: Vascular NADPH oxidases as drug targets for novel antioxidant strategies. In: Drug Discovery Today, 11 (11–12), 2006, S. 524–533, doi:10.1016/j.drudis.2006.04.003.
  • P. W. Shaul: Endothelial nitric oxide synthase, caveolae and the development of atherosclerosis. In: J Physiol, 547 (Pt 1), 2003, S. 21–33, PMID 12562964, doi:10.1113/jphysiol.2002.031534.
  • C. D. Searles: Transcriptional and posttranscriptional regulation of endothelial nitric oxide synthase expression. In: Am J Physiol Cell Physiol, 291 (5), 2006, S. C803–816, doi:10.1152/ajpcell.00457.2005.
  • H. Li, T. Wallerath, U. Förstermann: Physiological mechanisms regulating the expression of endothelial-type NO synthase. In: Nitric Oxide, 7 (2), 2002, S. 132–147, doi:10.1016/S1089-8603(02)00127-1.
  • Ming-Xiang Zhang, Hesheng Ou, Ying H. Shen, Jing Wang, Jian Wang, Joseph Coselli, Xing Li Wang: Regulation of endothelial nitric oxide synthase by small RNA. In: Proc Natl Acad Sci U S A, 102 (47), 2005, S. 16967–16972, doi:10.1073/pnas.0503853102, PMID 16284254, PMC 1287968 (freier Volltext).
  • H. Li, T. Wallerath, T. Munzel, U. Förstermann: Regulation of endothelial-type NO synthase expression in pathophysiology and in response to drugs. In: Nitric Oxide, 7 (3), 2002, S. 149–164, doi:10.1016/S1089-8603(02)00111-8.
  • Y. Chan, J. E. Fish, C. D’Abreo, S. Lin, G. B. Robb, A. M. Teichert, F. Karantzoulis-Fegaras, A. Keightley, B. M. Steer, P. A. Marsden: The Cell-specific Expression of Endothelial Nitric-oxide Synthase: a Role for DNA Methylation. In: Journal of Biological Chemistry, 279 (33), 2004, S. 35087-35100, doi:10.1074/jbc.M405063200, PMID 15180995.
  • Jan Postberg, Miriam Kanders, Sakeh Forcob, Rhea Willems, Valerie Orth: CpG signalling, H2A.Z/H3 acetylation and microRNA-mediated deferred self-attenuation orchestrate foetal NOS3 expression. In: Clinical Epigenetics. Band 7, 1. Januar 2015, ISSN 1868-7075, S. 9, doi:10.1186/s13148-014-0042-4, PMID 25699114 (biomedcentral.com [abgerufen am 6. April 2017]).
  • J. E. Fish, C. C. Matouk, A. Rachlis, S. Lin, S. C. Tai, C. D’Abreo, P. A. Marsden: The Expression of Endothelial Nitric-oxide Synthase Is Controlled by a Cell-specific Histone Code. In: Journal of Biological Chemistry, 280 (26), 2005, S. 24824–24838, doi:10.1074/jbc.M502115200, PMID 15870070.
  • G. B. Robb, A. R. Carson, S. C. Tai, J. E. Fish, S. Singh, T. Yamada, S. W. Scherer, K. Nakabayashi, P. A. Marsden: Post-transcriptional Regulation of Endothelial Nitric-oxide Synthase by an Overlapping Antisense mRNA Transcript. In: Journal of Biological Chemistry, 279 (36), 2004, S. 37982–37996, doi:10.1074/jbc.M400271200, PMID 15234981.
  • P. F. Mount, B. E. Kemp, D. A. Power: Regulation of endothelial and myocardial NO synthesis by multi-site eNOS phosphorylation. In: Journal Mol Cell Cardiol, 42 (2), 2007, S. 271–279, doi:10.1016/j.yjmcc.2006.05.023.
  • Kandasam Ravi, Lisa A. Brennan, Snezana Levic, Patrick A. Ross, Stephen M. Black: S-nitrosylation of endothelial nitric oxide synthase is associated with monomerization and decreased enzyme activity. In: Proc Natl Acad Sci USA, 101 (8), 2004, S. 2619–2624, doi:10.1073/pnas.0300464101, PMID 14983058.
  • P. A. Erwin, D. A. Mitchell, J. Sartoretto, M. A. Marletta, T. Michel: Subcellular Targeting and Differential S-Nitrosylation of Endothelial Nitric-oxide Synthase. In: Journal of Biological Chemistry, 281 (1), 2006, S. 151–157, doi:10.1074/jbc.M510421200, PMID 16286475.
  • Ilwola Mattagajasingh, Cuk-Seong Kim, Asma Naqvi, Tohru Yamamori, Timothy A. Hoffman, Saet-Byel Jung, Jeremy DeRicco, Kenji Kasuno, Kaikobad Irani: SIRT1 promotes endothelium-dependent vascular relaxation by activating endothelial nitric oxide synthase. In: Proc Natl Acad Sci USA, 104 (37), 2007, S. 14855–14860, doi:10.1073/pnas.0704329104, PMC 1976244 (freier Volltext).
  • Xue Liang Du, Diane Edelstein, Stefanie Dimmeler, Qida Ju, Chengyu Sui, and Michael Brownlee: Hyperglycemia inhibits endothelial nitric oxide synthase activity by posttranslational modification at the Akt site. In: J Clin Invest, 108 (9), 2001, S. 1341–1348, doi:10.1172/JCI11235, PMID 11696579, PMC 209429 (freier Volltext).
  • Jason Fontana, David Fulton, Yan Chen, Todd A. Fairchild, Timothy J. McCabe, Naoya Fujita, Takashi Tsuruo, William C. Sessa: Domain Mapping Studies Reveal That the M Domain of hsp90 Serves as a Molecular Scaffold to Regulate Akt-Dependent Phosphorylation of Endothelial Nitric Oxide Synthase and NO Release. In: Circ Res, 90 (8), 2002, S. 866–873, doi:10.1161/01.RES.0000016837.26733.BE, PMID 11988487.
  • T. A. Hardy, J. M. May: Coordinate regulation of L-arginine uptake and nitric oxide synthase activity in cultured endothelial cells. In: Free Radical Biology and Medicine, 32 (2), 2002, S. 122–131, doi:10.1016/S0891-5849(01)00781-X, PMID 11796200.
  • K. K. McDonald, S. Zharikov, E. R. Block, M. S. Kilberg: A Caveolar Complex between the Cationic Amino Acid Transporter 1 and Endothelial Nitric-oxide Synthase May Explain the “Arginine Paradox”. In: Journal of Biological Chemistry, 272 (50), 1997, S. 31213–31216, doi:10.1074/jbc.272.50.31213.
  • Mahesh S. Joshi, T. Bruce Ferguson, Jr., Fruzsina K. Johnson, Robert A. Johnson, Sampath Parthasarathy, Jack R. Lancaster, Jr.: Receptor-mediated activation of nitric oxide synthesis by arginine in endothelial cells. In: Proceedings of the National Academy of Sciences, 104 (24), 2007, S. 9982–9987, doi:10.1073/pnas.0506824104, PMC 1891228 (freier Volltext).
  • Xue Gao, Xiangbin Xu, Souad Belmadani, Yoonjung Park, Zhonghua Tang, Arthur M. Feldman, William M. Chilian, Cuihua Zhang: TNF-alpha contributes to endothelial dysfunction by upregulating arginase in ischemia/reperfusion injury. In: Arterioscler Thromb Vasc Biol, 27 (6), 2007, S. 1269–1275, doi:10.1161/ATVBAHA.107.142521, PMID 17413034.
  • L. Yang, C. M. Lewis, U. M. Chandrasekharan, C. M. Kinney, P. E. Dicorleto, V. S. Kashyap: Arginase activity is increased by thrombin: a mechanism for endothelial dysfunction in arterial thrombosis. In: Journal of the American College of Surgeons, 203 (6), 2006, S. 817–826, doi:10.1016/j.jamcollsurg.2006.08.023, PMID 17116549.

nih.gov

ncbi.nlm.nih.gov

  • U. Förstermann: Janus-faced role of endothelial NO synthase in vascular disease: uncoupling of oxygen reduction from NO synthesis and its pharmacological reversal. In: Biological Chemistry, 387 (12), 2006, S. 1521–1533, doi:10.1515/BC.2006.190, PMID 17132097.
  • R. M. Palmer, Salvador Moncada: A novel citrulline-forming enzyme implicated in the formation of nitric oxide by vascular endothelial cells. In: Biochemical and Biophysical Research Communications, 158 (1), 1989, S. 348–352, PMID 2912454.
  • K. M. Naseem: The role of nitric oxide in cardiovascular diseases. In: Mol Aspects Med, 26 (1–2), 2005, S. 33–65, PMID 15722114.
  • Y. Hattori, N. Nakanishi, K. Akimoto, M. Yoshida, K. Kasai: HMG-CoA reductase inhibitor increases GTP cyclohydrolase I mRNA and tetrahydrobiopterin in vascular endothelial cells. In: Arterioscler Thromb Vasc Biol, 23 (2), 2003, S. 176–182, PMID 12588756.
  • R. Heller, A. Unbehaun, B. Schellenberg, B. Mayer, G. Werner-Felmayer, E. R. Werner: l-Ascorbic Acid Potentiates Endothelial Nitric Oxide Synthesis via a Chemical Stabilization of Tetrahydrobiopterin. In: Journal of Biological Chemistry, 276 (1), 2001, S. 40–47, doi:10.1074/jbc.M004392200, PMID 11022034.
  • W. K. Alderton, C. E. Cooper, R. G. Knowles: Nitric oxide synthases: structure, function and inhibition. In: Biochem J, 357 (Pt 3), 2001, S. 593–615, PMID 11463332; PDF.
  • P. W. Shaul: Endothelial nitric oxide synthase, caveolae and the development of atherosclerosis. In: J Physiol, 547 (Pt 1), 2003, S. 21–33, PMID 12562964, doi:10.1113/jphysiol.2002.031534.
  • Stefanie Oess, Ann Icking, David Fulton, Roland Govers, Werner Müller-Esterl: Subcellular targeting and trafficking of nitric oxide synthases. In: Biochemical Journal, 396 (3), 2006, S. 401–409, PMID 16722822, PMC 1482820 (freier Volltext).
  • Ming-Xiang Zhang, Hesheng Ou, Ying H. Shen, Jing Wang, Jian Wang, Joseph Coselli, Xing Li Wang: Regulation of endothelial nitric oxide synthase by small RNA. In: Proc Natl Acad Sci U S A, 102 (47), 2005, S. 16967–16972, doi:10.1073/pnas.0503853102, PMID 16284254, PMC 1287968 (freier Volltext).
  • C. Napoli, F. de Nigris, S. Williams-Ignarro, O. Pignalosa, V. Sica, L. J. Ignarro: Nitric oxide and atherosclerosis: an update. In: Nitric Oxide, 15 (4), 2006, S. 265–279, PMID 16684613.
  • Y. Chan, J. E. Fish, C. D’Abreo, S. Lin, G. B. Robb, A. M. Teichert, F. Karantzoulis-Fegaras, A. Keightley, B. M. Steer, P. A. Marsden: The Cell-specific Expression of Endothelial Nitric-oxide Synthase: a Role for DNA Methylation. In: Journal of Biological Chemistry, 279 (33), 2004, S. 35087-35100, doi:10.1074/jbc.M405063200, PMID 15180995.
  • Jan Postberg, Miriam Kanders, Sakeh Forcob, Rhea Willems, Valerie Orth: CpG signalling, H2A.Z/H3 acetylation and microRNA-mediated deferred self-attenuation orchestrate foetal NOS3 expression. In: Clinical Epigenetics. Band 7, 1. Januar 2015, ISSN 1868-7075, S. 9, doi:10.1186/s13148-014-0042-4, PMID 25699114 (biomedcentral.com [abgerufen am 6. April 2017]).
  • J. E. Fish, C. C. Matouk, A. Rachlis, S. Lin, S. C. Tai, C. D’Abreo, P. A. Marsden: The Expression of Endothelial Nitric-oxide Synthase Is Controlled by a Cell-specific Histone Code. In: Journal of Biological Chemistry, 280 (26), 2005, S. 24824–24838, doi:10.1074/jbc.M502115200, PMID 15870070.
  • G. B. Robb, A. R. Carson, S. C. Tai, J. E. Fish, S. Singh, T. Yamada, S. W. Scherer, K. Nakabayashi, P. A. Marsden: Post-transcriptional Regulation of Endothelial Nitric-oxide Synthase by an Overlapping Antisense mRNA Transcript. In: Journal of Biological Chemistry, 279 (36), 2004, S. 37982–37996, doi:10.1074/jbc.M400271200, PMID 15234981.
  • I. Fleming, B. Fisslthaler, S. Dimmeler, B. E. Kemp, R. Busse: Phosphorylation of Thr(495) regulates Ca(2+)/calmodulin-dependent endothelial nitric oxide synthase activity. In: Circ Res, 88 (11), 2001, E68–75, PMID 11397791.
  • D. M. Dudzinski, T. Michel: Life history of eNOS: partners and pathways. In: Cardiovascular Research, 75 (2), 2007, S. 247–260, PMID 17466957.
  • Kandasam Ravi, Lisa A. Brennan, Snezana Levic, Patrick A. Ross, Stephen M. Black: S-nitrosylation of endothelial nitric oxide synthase is associated with monomerization and decreased enzyme activity. In: Proc Natl Acad Sci USA, 101 (8), 2004, S. 2619–2624, doi:10.1073/pnas.0300464101, PMID 14983058.
  • P. A. Erwin, D. A. Mitchell, J. Sartoretto, M. A. Marletta, T. Michel: Subcellular Targeting and Differential S-Nitrosylation of Endothelial Nitric-oxide Synthase. In: Journal of Biological Chemistry, 281 (1), 2006, S. 151–157, doi:10.1074/jbc.M510421200, PMID 16286475.
  • Ilwola Mattagajasingh, Cuk-Seong Kim, Asma Naqvi, Tohru Yamamori, Timothy A. Hoffman, Saet-Byel Jung, Jeremy DeRicco, Kenji Kasuno, Kaikobad Irani: SIRT1 promotes endothelium-dependent vascular relaxation by activating endothelial nitric oxide synthase. In: Proc Natl Acad Sci USA, 104 (37), 2007, S. 14855–14860, doi:10.1073/pnas.0704329104, PMC 1976244 (freier Volltext).
  • Xue Liang Du, Diane Edelstein, Stefanie Dimmeler, Qida Ju, Chengyu Sui, and Michael Brownlee: Hyperglycemia inhibits endothelial nitric oxide synthase activity by posttranslational modification at the Akt site. In: J Clin Invest, 108 (9), 2001, S. 1341–1348, doi:10.1172/JCI11235, PMID 11696579, PMC 209429 (freier Volltext).
  • D. M. Dudzinski, J. Igarashi, D. Greif, T. Michel: The regulation and pharmacology of endothelial nitric oxide synthase. In: Annual Review of Pharmacology and Toxicology, 46, 2006, S. 235–276, PMID 16402905.
  • Jason Fontana, David Fulton, Yan Chen, Todd A. Fairchild, Timothy J. McCabe, Naoya Fujita, Takashi Tsuruo, William C. Sessa: Domain Mapping Studies Reveal That the M Domain of hsp90 Serves as a Molecular Scaffold to Regulate Akt-Dependent Phosphorylation of Endothelial Nitric Oxide Synthase and NO Release. In: Circ Res, 90 (8), 2002, S. 866–873, doi:10.1161/01.RES.0000016837.26733.BE, PMID 11988487.
  • U. Förstermann, E. I. Closs, J. S. Pollock, M. Nakane, P. Schwarz, I. Gath, H. Kleinert: Nitric oxide synthase isozymes. Characterization, purification, molecular cloning, and functions. In: Hypertension, 23 (6 Pt 2), 1994, S. 1121–1131, PMID 7515853.
  • T. A. Hardy, J. M. May: Coordinate regulation of L-arginine uptake and nitric oxide synthase activity in cultured endothelial cells. In: Free Radical Biology and Medicine, 32 (2), 2002, S. 122–131, doi:10.1016/S0891-5849(01)00781-X, PMID 11796200.
  • M. Hecker, J. A. Mitchell, H. J. Harris, M. Katsura, C. Thiemermann, J. R. Vane: Endothelial cells metabolize NG-monomethyl-L-arginine to L-citrulline and subsequently to L-arginine. In: Biochemical and Biophysical Research Communications, 167 (3), 1990, S. 1037–1043, PMID 2322257.
  • Mahesh S. Joshi, T. Bruce Ferguson, Jr., Fruzsina K. Johnson, Robert A. Johnson, Sampath Parthasarathy, Jack R. Lancaster, Jr.: Receptor-mediated activation of nitric oxide synthesis by arginine in endothelial cells. In: Proceedings of the National Academy of Sciences, 104 (24), 2007, S. 9982–9987, doi:10.1073/pnas.0506824104, PMC 1891228 (freier Volltext).
  • Xue Gao, Xiangbin Xu, Souad Belmadani, Yoonjung Park, Zhonghua Tang, Arthur M. Feldman, William M. Chilian, Cuihua Zhang: TNF-alpha contributes to endothelial dysfunction by upregulating arginase in ischemia/reperfusion injury. In: Arterioscler Thromb Vasc Biol, 27 (6), 2007, S. 1269–1275, doi:10.1161/ATVBAHA.107.142521, PMID 17413034.
  • L. Yang, C. M. Lewis, U. M. Chandrasekharan, C. M. Kinney, P. E. Dicorleto, V. S. Kashyap: Arginase activity is increased by thrombin: a mechanism for endothelial dysfunction in arterial thrombosis. In: Journal of the American College of Surgeons, 203 (6), 2006, S. 817–826, doi:10.1016/j.jamcollsurg.2006.08.023, PMID 17116549.

pnas.org

  • D. S. Bredt, S. H. Snyder: Isolation of nitric oxide synthetase, a calmodulin-requiring enzyme. In: Proceedings of the National Academy of Sciences 87 (2), 1990, S. 682–685, pnas.org.

zdb-katalog.de

  • Jan Postberg, Miriam Kanders, Sakeh Forcob, Rhea Willems, Valerie Orth: CpG signalling, H2A.Z/H3 acetylation and microRNA-mediated deferred self-attenuation orchestrate foetal NOS3 expression. In: Clinical Epigenetics. Band 7, 1. Januar 2015, ISSN 1868-7075, S. 9, doi:10.1186/s13148-014-0042-4, PMID 25699114 (biomedcentral.com [abgerufen am 6. April 2017]).