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

You also want an ePaper? Increase the reach of your titles

YUMPU automatically turns print PDFs into web optimized ePapers that Google loves.

lipoxygenase <strong>and</strong> a platelet NADPH oxidase pathway. J Clin Invest<br />

113: 973–980, 2004.<br />

651. Nath KA, Norby SM. Reactive oxygen species <strong>and</strong> acute renal<br />

failure. Am J Med 109: 665–678, 2000.<br />

652. Nauseef WM. Assembly of the phagocyte NADPH oxidase. Histochem<br />

Cell Biol 122: 277–291, 2004.<br />

653. Nauseef WM. Contributions of myeloperoxidase to proinflammatory<br />

events: more than an antimicrobial system. Int J Hematol 74:<br />

125–133, 2001.<br />

654. Newburger PE, Ezekowitz RA, Whitney C, Wright J, Orkin<br />

SH. Induction of phagocyte cytochrome b heavy chain gene expression<br />

by interferon gamma. Proc Natl Acad Sci USA 85: 5215–<br />

5219, 1988.<br />

655. Nicholson SC, Grobmyer SR, Shiloh MU, Brause JE, Potter S,<br />

MacMicking JD, Dinauer MC, Nathan CF. Lethality of endotoxin<br />

in mice genetically deficient in the respiratory burst oxidase,<br />

inducible nitric oxide synthase, or both. Shock 11: 253–258, 1999.<br />

656. Nicotera T, Thusu K, D<strong>and</strong>ona P. Elevated production of active<br />

oxygen in Bloom’s syndrome cell lines. Cancer Res 53: 5104–5107,<br />

1993.<br />

657. Nikolova S, Lee YS, Kim JA. Rac1-NADPH oxidase-regulated<br />

generation of reactive oxygen species mediates glutamate-induced<br />

apoptosis in SH-SY5Y human neuroblastoma cells. Free Radic Res<br />

39: 1295–1304, 2005.<br />

658. Nisimoto Y, Motalebi S, Han CH, Lambeth JD. The p67(phox)<br />

activation domain regulates electron flow from NADPH to flavin in<br />

flavocytochrome b(558). J Biol Chem 274: 22999–23005, 1999.<br />

659. Noh KM, Koh JY. Induction <strong>and</strong> activation by zinc of NADPH<br />

oxidase in cultured cortical neurons <strong>and</strong> astrocytes. J Neurosci 20:<br />

RC111, 2000.<br />

660. Nunoi H, Rotrosen D, Gallin JI, Malech HL. Two forms of<br />

autosomal chronic granulomatous disease lack distinct neutrophil<br />

cytosol factors. Science 242: 1298–1301, 1988.<br />

661. O’Donnell BV, Tew DG, Jones OT, Engl<strong>and</strong> PJ. Studies on the<br />

inhibitory mechanism of iodonium compounds with special reference<br />

to neutrophil NADPH oxidase. Biochem J 290: 41–49, 1993.<br />

662. O’Flaherty C, Beorlegui N, Beconi MT. Participation of superoxide<br />

anion in the capacitation of cryopreserved bovine sperm. Int<br />

J Androl 26: 109–114, 2003.<br />

663. O’Flaherty C, Breininger E, Beorlegui N, Beconi MT. Acrosome<br />

reaction in bovine spermatozoa: role of reactive oxygen<br />

species <strong>and</strong> lactate dehydrogenase C4. Biochim Biophys Acta<br />

1726: 96–101, 2005.<br />

664. Ohinata Y, Miller JM, Altschuler RA, Schacht J. Intense noise<br />

induces formation of vasoactive lipid peroxidation products in the<br />

cochlea. Brain Res 878: 163–173, 2000.<br />

665. Oliveira HR, Verlengia R, Carvalho CR, Britto LR, Curi R,<br />

Carpinelli AR. Pancreatic beta-cells express phagocyte-like<br />

NAD(P)H oxidase. Diabetes 52: 1457–1463, 2003.<br />

666. Olofsson P, Holmberg J, Tordsson J, Lu S, Akerstrom B,<br />

Holmdahl R. Positional identification of Ncf1 as a gene that regulates<br />

arthritis severity in rats. Nat Genet 33: 25–32, 2003.<br />

667. Ord MG, Stocken LA. The radiosensitivity of rat thymocytes.<br />

Biochem J 238: 517–521, 1986.<br />

668. Oshitani N, Kitano A, Okabe H, Nakamura S, Matsumoto T,<br />

Kobayashi K. Location of nitroblue tetrazolium-reducing activity<br />

in human colonic mucosa obtained by biopsy. Dig Dis Sci 38:<br />

546–550, 1993.<br />

669. Oshitani N, Kitano A, Okabe H, Nakamura S, Matsumoto T,<br />

Kobayashi K. Location of superoxide anion generation in human<br />

colonic mucosa obtained by biopsy. Gut 34: 936–938, 1993.<br />

670. Otamiri T, Sjodahl R. Oxygen radicals: their role in selected<br />

gastrointestinal disorders. Dig Dis 9: 133–141, 1991.<br />

671. Oudot A, Vergely C, Ecarnot-Laubriet A, Rochette L. Angiotensin<br />

II activates NADPH oxidase in isolated rat hearts subjected<br />

to ischaemia-reperfusion. Eur J Pharmacol 462: 145–154, 2003.<br />

672. Ozaki M, Deshp<strong>and</strong>e S, Angkeow P, Bellan J, Lowenstein CJ,<br />

Dinauer MC, Goldschmidt-Clermont P, Suzuki S, Irani K.<br />

Targeted inhibition of the small GTPase protects against ischemia/<br />

reperfusion liver injury in mice. Transplant Proc 33: 863–864, 2001.<br />

673. Ozaki M, Deshp<strong>and</strong>e SS, Angkeow P, Bellan J, Lowenstein<br />

CJ, Dinauer MC, Goldschmidt-Clermont PJ, Irani K. Inhibition<br />

of the Rac1 GTPase protects against nonlethal ischemia/reperfu-<br />

THE NOX FAMILY OF ROS-GENERATING NADPH OXIDASES 305<br />

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

sion-induced necrosis <strong>and</strong> apoptosis in vivo. FASEB J 14: 418–429,<br />

2000.<br />

674. Ozaki M, Irani K. Measurement of in vivo oxidative stress regulated<br />

by the Rac1 GTPase. Methods Enzymol 381: 184–191, 2004.<br />

675. Pachucki J, Wang D, Christophe D, Miot F. Structural <strong>and</strong><br />

functional characterization of the two human ThOX/Duox genes<br />

<strong>and</strong> their 5�-flanking regions. Mol Cell Endocrinol 214: 53–62, 2004.<br />

676. Paclet MH, Henderson LM, Campion Y, Morel F, Dagher MC.<br />

Localization of Nox2 N-terminus using polyclonal antipeptide antibodies.<br />

Biochem J 382: 981–986, 2004.<br />

677. Paffenholz R, Bergstrom RA, Pasutto F, Wabnitz P, Munroe<br />

RJ, Jagla W, <strong>Heinz</strong>mann U, Marquardt A, Bareiss A, Laufs J,<br />

Russ A, Stumm G, Schimenti JC, Bergstrom DE. Vestibular<br />

defects in head-tilt mice result from mutations in Nox3, encoding<br />

an NADPH oxidase. Genes Dev 18: 486–491, 2004.<br />

678. Pagano PJ, Chanock SJ, Siwik DA, Colucci WS, Clark JK.<br />

Angiotensin II induces p67phox mRNA expression <strong>and</strong> NADPH<br />

oxidase superoxide generation in rabbit aortic adventitial fibroblasts.<br />

Hypertension 32: 331–337, 1998.<br />

679. Pagano PJ, Clark JK, Cifuentes-Pagano ME, Clark SM, Callis<br />

GM, Quinn MT. Localization of a constitutively active, phagocytelike<br />

NADPH oxidase in rabbit aortic adventitia: enhancement by<br />

angiotensin II. Proc Natl Acad Sci USA 94: 14483–14488, 1997.<br />

680. Pagano PJ, Ito Y, Tornheim K, Gallop PM, Tauber AI, Cohen<br />

RA. An NADPH oxidase superoxide-generating system in the rabbit<br />

aorta. Am J Physiol Heart Circ Physiol 268: H2274–H2280, 1995.<br />

681. Paky A, Michael JR, Burke-Wolin TM, Wolin MS, Gurtner GH.<br />

Endogenous production of superoxide by rabbit lungs: effects of<br />

hypoxia or metabolic inhibitors. J Appl Physiol 74: 2868–2874,<br />

1993.<br />

682. Pao M, Wiggs EA, Anastacio MM, Hyun J, DeCarlo ES, Miller<br />

JT, Anderson VL, Malech HL, Gallin JI, Holl<strong>and</strong> SM. Cognitive<br />

function in patients with chronic granulomatous disease: a preliminary<br />

report. Psychosomatics 45: 230–234, 2004.<br />

683. Papa S, Zazzeroni F, Pham CG, Bubici C, Franzoso G. Linking<br />

JNK signaling to NF-kappaB: a key to survival. J Cell Sci 117:<br />

5197–5208, 2004.<br />

684. Papaiahgari S, Kleeberger SR, Cho HY, Kalvakolanu DV,<br />

Reddy SP. NADPH oxidase <strong>and</strong> ERK signaling regulates hyperoxia-induced<br />

Nrf2-ARE transcriptional response in pulmonary epithelial<br />

cells. J Biol Chem 279: 42302–42312, 2004.<br />

685. Parin<strong>and</strong>i NL, Kleinberg MA, Usatyuk PV, Cummings RJ, Pennathur<br />

A, Cardounel AJ, Zweier JL, Garcia JG, Natarajan V.<br />

Hyperoxia-induced NAD(P)H oxidase activation <strong>and</strong> regulation by<br />

MAP kinases in human lung endothelial cells. Am J Physiol Lung<br />

Cell Mol Physiol 284: L26–L38, 2003.<br />

686. Park HS, Jung HY, Park EY, Kim J, Lee WJ, Bae YS. Cutting<br />

edge: direct interaction of TLR4 with NAD(P)H oxidase 4 isozyme<br />

is essential for lipopolysaccharide-induced production of reactive<br />

oxygen species <strong>and</strong> activation of NF-kappa B. J Immunol 173:<br />

3589–3593, 2004.<br />

687. Park HS, Lee SH, Park D, Lee JS, Ryu SH, Lee WJ, Rhee SG,<br />

Bae YS. Sequential activation of phosphatidylinositol 3-kinase,<br />

beta Pix, Rac1, Nox1 in growth factor-induced production of H 2O 2.<br />

Mol Cell Biol 24: 4384–4394, 2004.<br />

688. Park JY, Ferrell RE, Park JJ, Hagberg JM, Phares DA, Jones<br />

JM, Brown MD. NADPH oxidase p22phox gene variants are associated<br />

with systemic oxidative stress biomarker responses to exercise<br />

training. J Appl Physiol 99: 1905–1911, 2005.<br />

689. Park L, Anrather J, Zhou P, Frys K, Pitstick R, Younkin S,<br />

Carlson GA, Iadecola C. NADPH oxidase-derived reactive oxygen<br />

species mediate the cerebrovascular dysfunction induced by<br />

the amyloid beta peptide. J Neurosci 25: 1769–1777, 2005.<br />

690. Park SM, Chatterjee VK. Genetics of congenital hypothyroidism.<br />

J Med Genet 42: 379–389, 2005.<br />

691. Parkos CA, Allen RA, Cochrane CG, Jesaitis AJ. Purified cytochrome<br />

b from human granulocyte plasma membrane is comprised<br />

of two polypeptides with relative molecular weights of<br />

91,000 <strong>and</strong> 22,000. J Clin Invest 80: 732–742, 1987.<br />

692. Parkos CA, Dinauer MC, Jesaitis AJ, Orkin SH, Curnutte JT.<br />

Absence of both the 91kD <strong>and</strong> 22kD subunits of human neutrophil<br />

cytochrome b in two genetic forms of chronic granulomatous disease.<br />

Blood 73: 1416–1420, 1989.<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!