13.02.2013 Views

Karen Bedard and Karl-Heinz Krause

Karen Bedard and Karl-Heinz Krause

Karen Bedard and Karl-Heinz Krause

SHOW MORE
SHOW LESS

Create successful ePaper yourself

Turn your PDF publications into a flip-book with our unique Google optimized e-Paper software.

308 KAREN BEDARD AND KARL-HEINZ KRAUSE<br />

ROS-generating NADPH oxidases in the aging stomach. Exp Gerontol<br />

40: 353–357, 2005.<br />

771. Salmeen A, Barford D. Functions <strong>and</strong> mechanisms of redox<br />

regulation of cysteine-based phosphatases. Antioxid Redox Signal<br />

7: 560–577, 2005.<br />

772. Salvemini D, Cuzzocrea S. Oxidative stress in septic shock <strong>and</strong><br />

disseminated intravascular coagulation. Free Radic Biol Med 33:<br />

1173–1185, 2002.<br />

773. Salvemini D, Radziszewski W, Mollace V, Moore A, Willoughby<br />

D, Vane J. Diphenylene iodonium, an inhibitor of free<br />

radical formation, inhibits platelet aggregation. Eur J Pharmacol<br />

199: 15–18, 1991.<br />

774. San Jose G, Moreno MU, Olivan S, Beloqui O, Fortuno A, Diez<br />

J, Zalba G. Functional effect of the p22phox-930A/G polymorphism<br />

on p22phox expression <strong>and</strong> NADPH oxidase activity in<br />

hypertension. Hypertension 44: 163–169, 2004.<br />

775. S<strong>and</strong>ers KA, Sundar KM, He L, Dinger B, Fidone S, Hoidal JR.<br />

Role of components of the phagocytic NADPH oxidase in oxygen<br />

sensing. J Appl Physiol 93: 1357–1364, 2002.<br />

776. Sarfstein R, Gorzalczany Y, Mizrahi A, Berdichevsky Y, Molshanski-Mor<br />

S, Weinbaum C, Hirshberg M, Dagher MC, Pick<br />

E. Dual role of Rac in the assembly of NADPH oxidase, tethering to<br />

the membrane <strong>and</strong> activation of p67phox: a study based on mutagenesis<br />

of p67phox-Rac1 chimeras. J Biol Chem 279: 16007–<br />

16016, 2004.<br />

777. Sasaki M, Takagi M, Okamura Y. A voltage sensor-domain protein<br />

is a voltage-gated proton channel. Science. In press.<br />

778. Sathyamoorthy M, de Mendez I, Adams AG, Leto TL.<br />

p40(phox) down-regulates NADPH oxidase activity through interactions<br />

with its SH3 domain. J Biol Chem 272: 9141–9146, 1997.<br />

779. Satoh M, Fujimoto S, Haruna Y, Arakawa S, Horike H, Komai<br />

N, Sasaki T, Tsujioka K, Makino H, Kashihara N. NAD(P)H<br />

oxidase <strong>and</strong> uncoupled nitric oxide synthase are major sources of<br />

glomerular superoxide in rats with experimental diabetic nephropathy.<br />

Am J Physiol Renal Physiol 288: F1144–F1152, 2005.<br />

780. Satoh M, Ogita H, Takeshita K, Mukai Y, Kwiatkowski DJ,<br />

Liao JK. Requirement of Rac1 in the development of cardiac<br />

hypertrophy. Proc Natl Acad Sci USA 103: 7432–7437, 2006.<br />

781. Satriano JA, Shuldiner M, Hora K, Xing Y, Shan Z, Schlondorff<br />

D. Oxygen radicals as second messengers for expression of<br />

the monocyte chemoattractant protein, JE/MCP-1, the monocyte<br />

colony-stimulating factor, CSF-1, in response to tumor necrosis<br />

factor-alpha <strong>and</strong> immunoglobulin G. Evidence for involvement of<br />

reduced nicotinamide adenine dinucleotide phosphate (NADPH)dependent<br />

oxidase. J Clin Invest 92: 1564–1571, 1993.<br />

782. Sauer H, Bekhite MM, Hescheler J, Wartenberg M. Redox<br />

control of angiogenic factors <strong>and</strong> CD31-positive vessel-like structures<br />

in mouse embryonic stem cells after direct current electrical<br />

field stimulation. Exp Cell Res 304: 380–390, 2005.<br />

783. Sauer H, Neukirchen W, Rahimi G, Grunheck F, Hescheler J,<br />

Wartenberg M. Involvement of reactive oxygen species in cardiotrophin-1-induced<br />

proliferation of cardiomyocytes differentiated<br />

from murine embryonic stem cells. Exp Cell Res 294: 313–324,<br />

2004.<br />

784. Sauer H, Rahimi G, Hescheler J, Wartenberg M. Role of reactive<br />

oxygen species <strong>and</strong> phosphatidylinositol 3-kinase in cardiomyocyte<br />

differentiation of embryonic stem cells. FEBS Lett 476: 218–<br />

223, 2000.<br />

785. Savina A, Jancic C, Hugues S, Guermonprez P, Vargas P,<br />

Moura IC, Lennon-Dumenil AM, Seabra MC, Raposo G, Amigorena<br />

S. NOX2 controls phagosomal pH to regulate antigen processing<br />

during crosspresentation by dendritic cells. Cell 126: 205–<br />

218, 2006.<br />

786. Sawada M, Carlson JC. Rapid plasma membrane changes in<br />

superoxide radical formation, fluidity, phospholipase A 2 activity in<br />

the corpus luteum of the rat during induction of luteolysis. Endocrinology<br />

128: 2992–2998, 1991.<br />

787. Sbarra AJ, Karnovsky ML. The biochemical basis of phagocytosis.<br />

I. Metabolic changes during the ingestion of particles by polymorphonuclear<br />

leukocytes. J Biol Chem 234: 1355–1362, 1959.<br />

788. Schappi MG, Klein NJ, Lindley KJ, Rampling D, Smith VV,<br />

Goldblatt D, Milla PJ. The nature of colitis in chronic granulomatous<br />

disease. J Pediatr Gastroenterol Nutr 36: 623–631, 2003.<br />

Physiol Rev VOL 87 JANUARY 2007 www.prv.org<br />

789. Schappi MG, Smith VV, Goldblatt D, Lindley KJ, Milla PJ.<br />

Colitis in chronic granulomatous disease. Arch Dis Child 84: 147–<br />

151, 2001.<br />

790. Schmelter M, Ateghang B, Helmig S, Wartenberg M, Sauer H.<br />

Embryonic stem cells utilize reactive oxygen species as transducers<br />

of mechanical strain-induced cardiovascular differentiation.<br />

FASEB J 20: 1182–1184, 2006.<br />

791. Schrader M, Fahimi HD. Mammalian peroxisomes <strong>and</strong> reactive<br />

oxygen species. Histochem Cell Biol 122: 383–393, 2004.<br />

792. Schrenzel J, Serr<strong>and</strong>er L, Banfi B, Nusse O, Fouyouzi R, Lew<br />

DP, Demaurex N, <strong>Krause</strong> KH. Electron currents generated by the<br />

human phagocyte NADPH oxidase. Nature 392: 734–737, 1998.<br />

793. Schwabe RF, Bataller R, Brenner DA. Human hepatic stellate<br />

cells express CCR5 <strong>and</strong> RANTES to induce proliferation <strong>and</strong> migration.<br />

Am J Physiol Gastrointest Liver Physiol 285: G949–G958,<br />

2003.<br />

794. Schwarzer C, Machen TE, Illek B, Fischer H. NADPH oxidasedependent<br />

acid production in airway epithelial cells. J Biol Chem<br />

279: 36454–36461, 2004.<br />

795. Segal AW. Absence of both cytochrome b-245 subunits from neutrophils<br />

in X-linked chronic granulomatous disease. Nature 326:<br />

88–91, 1987.<br />

796. Segal AW. How neutrophils kill microbes. Annu Rev Immunol 23:<br />

197–223, 2005.<br />

797. Segal AW, Geisow M, Garcia R, Harper A, Miller R. The respiratory<br />

burst of phagocytic cells is associated with a rise in vacuolar<br />

pH. Nature 290: 406–409, 1981.<br />

798. Segal AW, Jones OT. Novel cytochrome b system in phagocytic<br />

vacuoles of human granulocytes. Nature 276: 515–517, 1978.<br />

799. Segal AW, Jones OT, Webster D, Allison AC. Absence of a<br />

newly described cytochrome b from neutrophils of patients with<br />

chronic granulomatous disease. Lancet 2: 446–449, 1978.<br />

800. Segal AW, West I, Wientjes F, Nugent JH, Chavan AJ, Haley<br />

B, Garcia RC, Rosen H, Scrace G. Cytochrome b-245 is a flavocytochrome<br />

containing FAD <strong>and</strong> the NADPH-binding site of the<br />

microbicidal oxidase of phagocytes. Biochem J 284: 781–788, 1992.<br />

801. Segal BH, Leto TL, Gallin JI, Malech HL, Holl<strong>and</strong> SM. Genetic,<br />

biochemical, clinical features of chronic granulomatous disease.<br />

Medicine 79: 170–200, 2000.<br />

802. Sen CK. The general case for redox control of wound repair.<br />

Wound Repair Regen 11: 431–438, 2003.<br />

803. Sen CK, Khanna S, Babior BM, Hunt TK, Ellison EC, Roy S.<br />

Oxidant-induced vascular endothelial growth factor expression in<br />

human keratinocytes <strong>and</strong> cutaneous wound healing. J Biol Chem<br />

277: 33284–33290, 2002.<br />

804. Seno T, Inoue N, Gao D, Okuda M, Sumi Y, Matsui K, Yamada<br />

S, Hirata KI, Kawashima S, Tawa R, Imajoh-Ohmi S, Sakurai<br />

H, Yokoyama M. Involvement of NADH/NADPH oxidase in human<br />

platelet ROS production. Thromb Res 103: 399–409, 2001.<br />

805. Senoo H. Structure <strong>and</strong> function of hepatic stellate cells. Med<br />

Electron Microsc 37: 3–15, 2004.<br />

806. Serrano F, Kolluri NS, Wientjes FB, Card JP, Klann E. NADPH<br />

oxidase immunoreactivity in the mouse brain. Brain Res 988: 193–<br />

198, 2003.<br />

807. Serrano-Mollar A, Closa D, Prats N, Blesa S, Martinez-Losa<br />

M, Cortijo J, Estrela JM, Morcillo EJ, Bulbena O. In vivo<br />

antioxidant treatment protects against bleomycin-induced lung<br />

damage in rats. Br J Pharmacol 138: 1037–1048, 2003.<br />

808. Shao MX, Nadel JA. Dual oxidase 1-dependent MUC5AC mucin<br />

expression in cultured human airway epithelial cells. Proc Natl<br />

Acad Sci USA 102: 767–772, 2005.<br />

809. Shibuya H, Ohkohchi N, Seya K, Satomi S. Kupffer cells generate<br />

superoxide anions <strong>and</strong> modulate reperfusion injury in rat livers<br />

after cold preservation. Hepatology 25: 356–360, 1997.<br />

810. Shimohama S, Tanino H, Kawakami N, Okamura N, Kodama<br />

H, Yamaguchi T, Hayakawa T, Nunomura A, Chiba S, Perry G,<br />

Smith MA, Fujimoto S. Activation of NADPH oxidase in Alzheimer’s<br />

disease brains. Biochem Biophys Res Commun 273: 5–9,<br />

2000.<br />

811. Shimokata K, Yamada Y, Kondo T, Ichihara S, Izawa H, Nagata<br />

K, Murohara T, Ohno M, Yokota M. Association of gene<br />

polymorphisms with coronary artery disease in individuals with or<br />

Downloaded from<br />

physrev.physiology.org<br />

on February 2, 2010

Hooray! Your file is uploaded and ready to be published.

Saved successfully!

Ooh no, something went wrong!