Donate Help Contact The AHA Sign In Home
American Heart Association
Circulation
Search: search_blue_button Advanced Search
Circulation. 2004;109:227-233
Published online before print January 12, 2004, doi: 10.1161/01.CIR.0000105680.92873.70
This Article
Right arrow Full Text
Right arrow Full Text (PDF)
Right arrow All Versions of this Article:
109/2/227    most recent
01.CIR.0000105680.92873.70v1
Right arrow Alert me when this article is cited
Right arrow Alert me if a correction is posted
Right arrow Citation Map
Services
Right arrow Email this article to a friend
Right arrow Similar articles in this journal
Right arrow Similar articles in PubMed
Right arrow Alert me to new issues of the journal
Right arrow Download to citation manager
Right arrowRequest Permissions
Citing Articles
Right arrow Citing Articles via HighWire
Right arrow Citing Articles via Google Scholar
Google Scholar
Right arrow Articles by Ago, T.
Right arrow Articles by Iida, M.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Ago, T.
Right arrow Articles by Iida, M.

(Circulation. 2004;109:227-233.)
© 2004 American Heart Association, Inc.


Basic Science Reports

Nox4 as the Major Catalytic Component of an Endothelial NAD(P)H Oxidase

Tetsuro Ago, MD; Takanari Kitazono, MD; Hiroaki Ooboshi, MD; Teruaki Iyama, MS; Youn Hee Han, PhD; Junichi Takada, MD; Masanori Wakisaka, MD; Setsuro Ibayashi, MD; Hideo Utsumi, PhD; Mitsuo Iida, MD

From the Department of Medicine and Clinical Science, Graduate School of Medical Sciences (T.A., T.K., H.O., J.T., M.W., S.I, M.I.), and Department of Biophysics, Graduate School of Pharmaceutical Sciences (T.I., Y.H.H., H.U.), Kyushu University, Fukuoka, Japan.

Correspondence to Tetsuro Ago, MD, PhD, Department of Medicine and Clinical Science, Graduate School of Medical Sciences, Kyushu University, Maidashi 3-1-1, Higashi-ku, Fukuoka 812-8582, Japan. E-mail agou{at}intmed2.med.kyushu-u.ac.jp

Received February 20, 2002; de novo received August 8, 2003; revision received September 4, 2003; accepted September 8, 2003.

Background— Recent evidence has suggested that reactive oxygen species are important signaling molecules in vascular cells and play a pivotal role in the development of vascular diseases. The activity of NAD(P)H oxidase has been identified as the major source of reactive oxygen species in vascular endothelial cells. However, the precise molecular structure and the mechanism of activation of the oxidase have remained poorly understood.

Methods and Results— Here, we investigated the molecular identities and the superoxide-producing activity of endothelial NAD(P)H oxidase. We found that Nox4, a homologue of gp91phox/Nox2, was abundantly expressed in endothelial cells. The expression of Nox4 in endothelial cells markedly exceeded that of other Nox proteins, including gp91phox/Nox2, and was affected by cell growth. Using electron spin resonance and chemiluminescence, we measured the superoxide production and found that the endothelial membranes had an NAD(P)H-dependent superoxide-producing activity comparable to that of the neutrophil membranes, whereas the activity was not enhanced by the 2 recombinant proteins p47phox and p67phox, in contrast to that of the neutrophil membranes. Downregulation of Nox4 by an antisense oligonucleotide reduced superoxide production in endothelial cells in vivo and in vitro.

Conclusions— These findings suggest that Nox4 may function as the major catalytic component of an endothelial NAD(P)H oxidase.


Key Words: reactive oxygen species • NAD(P)H oxidase • endothelium




This article has been cited by other articles:


Home page
J. Pharmacol. Exp. Ther.Home page
L. Bellner, L. Martinelli, A. Halilovic, K. Patil, N. Puri, M. W. Dunn, R. F. Regan, and M. L. Schwartzman
Heme Oxygenase-2 Deletion Causes Endothelial Cell Activation Marked by Oxidative Stress, Inflammation, and Angiogenesis
J. Pharmacol. Exp. Ther., December 1, 2009; 331(3): 925 - 932.
[Abstract] [Full Text] [PDF]


Home page
Cardiovasc ResHome page
S. Song, S. W. Kang, and C. Choi
Trichostatin A enhances proliferation and migration of vascular smooth muscle cells by downregulating thioredoxin 1
Cardiovasc Res, August 13, 2009; (2009) cvp263v2.
[Abstract] [Full Text] [PDF]


Home page
Am. J. Physiol. Renal Physiol.Home page
N. Markadieu, R. Crutzen, A. Boom, C. Erneux, and R. Beauwens
Inhibition of insulin-stimulated hydrogen peroxide production prevents stimulation of sodium transport in A6 cell monolayers
Am J Physiol Renal Physiol, June 1, 2009; 296(6): F1428 - F1438.
[Abstract] [Full Text] [PDF]


Home page
J. Biol. Chem.Home page
P. V. Usatyuk, I. A. Gorshkova, D. He, Y. Zhao, S. K. Kalari, J. G. N. Garcia, and V. Natarajan
Phospholipase D-mediated Activation of IQGAP1 through Rac1 Regulates Hyperoxia-induced p47phox Translocation and Reactive Oxygen Species Generation in Lung Endothelial Cells
J. Biol. Chem., May 29, 2009; 284(22): 15339 - 15352.
[Abstract] [Full Text] [PDF]


Home page
Cardiovasc ResHome page
L. Gao and G. E. Mann
Vascular NAD(P)H oxidase activation in diabetes: a double-edged sword in redox signalling
Cardiovasc Res, April 1, 2009; 82(1): 9 - 20.
[Abstract] [Full Text] [PDF]


Home page
Am. J. Physiol. Cell Physiol.Home page
S. Basuroy, S. Bhattacharya, C. W. Leffler, and H. Parfenova
Nox4 NADPH oxidase mediates oxidative stress and apoptosis caused by TNF-{alpha} in cerebral vascular endothelial cells
Am J Physiol Cell Physiol, March 1, 2009; 296(3): C422 - C432.
[Abstract] [Full Text] [PDF]


Home page
Cardiovasc ResHome page
C. A. Schmitt, E. H. Heiss, Y. Aristei, T. Severin, and V. M. Dirsch
Norfuraneol dephosphorylates eNOS at threonine 495 and enhances eNOS activity in human endothelial cells
Cardiovasc Res, March 1, 2009; 81(4): 750 - 757.
[Abstract] [Full Text] [PDF]


Home page
Arterioscler. Thromb. Vasc. Bio.Home page
K. Schroder, K. Wandzioch, I. Helmcke, and R. P. Brandes
Nox4 Acts as a Switch Between Differentiation and Proliferation in Preadipocytes
Arterioscler Thromb Vasc Biol, February 1, 2009; 29(2): 239 - 245.
[Abstract] [Full Text] [PDF]


Home page
Am. J. Respir. Cell Mol. Bio.Home page
H. J. Kim, Y.-D. Park, U. Y. Moon, J.-H. Kim, J. H. Jeon, J.-G. Lee, Y. S. Bae, and J.-H. Yoon
The Role of Nox4 in Oxidative Stress-Induced MUC5AC Overexpression in Human Airway Epithelial Cells
Am. J. Respir. Cell Mol. Biol., November 1, 2008; 39(5): 598 - 609.
[Abstract] [Full Text] [PDF]


Home page
Cardiovasc ResHome page
D. Meng, D.-D. Lv, and J. Fang
Insulin-like growth factor-I induces reactive oxygen species production and cell migration through Nox4 and Rac1 in vascular smooth muscle cells
Cardiovasc Res, November 1, 2008; 80(2): 299 - 308.
[Abstract] [Full Text] [PDF]


Home page
Arterioscler. Thromb. Vasc. Bio.Home page
Q. Zhang, P. Malik, D. Pandey, S. Gupta, D. Jagnandan, E. B. de Chantemele, B. Banfi, M. B. Marrero, R. D. Rudic, D. W. Stepp, et al.
Paradoxical Activation of Endothelial Nitric Oxide Synthase by NADPH Oxidase
Arterioscler Thromb Vasc Biol, September 1, 2008; 28(9): 1627 - 1633.
[Abstract] [Full Text] [PDF]


Home page
Circ. Res.Home page
H.-K. Jyrkkanen, E. Kansanen, M. Inkala, A. M. Kivela, H. Hurttila, S. E. Heinonen, G. Goldsteins, S. Jauhiainen, S. Tiainen, H. Makkonen, et al.
Nrf2 Regulates Antioxidant Gene Expression Evoked by Oxidized Phospholipids in Endothelial Cells and Murine Arteries In Vivo
Circ. Res., July 3, 2008; 103(1): e1 - e9.
[Abstract] [Full Text] [PDF]


Home page
IOVSHome page
M. Al-Shabrawey, M. Rojas, T. Sanders, A. Behzadian, A. El-Remessy, M. Bartoli, A. K. Parpia, G. Liou, and R. B. Caldwell
Role of NADPH Oxidase in Retinal Vascular Inflammation
Invest. Ophthalmol. Vis. Sci., July 1, 2008; 49(7): 3239 - 3244.
[Abstract] [Full Text] [PDF]


Home page
Arterioscler. Thromb. Vasc. Bio.Home page
N. Anilkumar, R. Weber, M. Zhang, A. Brewer, and A. M. Shah
Nox4 and Nox2 NADPH Oxidases Mediate Distinct Cellular Redox Signaling Responses to Agonist Stimulation
Arterioscler Thromb Vasc Biol, July 1, 2008; 28(7): 1347 - 1354.
[Abstract] [Full Text] [PDF]


Home page
Arterioscler. Thromb. Vasc. Bio.Home page
A. Manea, S. A. Manea, A. V. Gafencu, M. Raicu, and M. Simionescu
AP-1-Dependent Transcriptional Regulation of NADPH Oxidase in Human Aortic Smooth Muscle Cells: Role of p22phox Subunit
Arterioscler Thromb Vasc Biol, May 1, 2008; 28(5): 878 - 885.
[Abstract] [Full Text] [PDF]


Home page
HypertensionHome page
A. Whaley-Connell, J. Habibi, R. Nistala, S. A. Cooper, P. R. Karuparthi, M. R. Hayden, N. Rehmer, V. G. DeMarco, B. T. Andresen, Y. Wei, et al.
Attenuation of NADPH Oxidase Activation and Glomerular Filtration Barrier Remodeling With Statin Treatment
Hypertension, February 1, 2008; 51(2): 474 - 480.
[Abstract] [Full Text] [PDF]


Home page
J. Biol. Chem.Home page
Md. R. Abid, K. C. Spokes, S.-C. Shih, and W. C. Aird
NADPH Oxidase Activity Selectively Modulates Vascular Endothelial Growth Factor Signaling Pathways
J. Biol. Chem., November 30, 2007; 282(48): 35373 - 35385.
[Abstract] [Full Text] [PDF]


Home page
Arterioscler. Thromb. Vasc. Bio.Home page
S. R. Datla, H. Peshavariya, G. J. Dusting, K. Mahadev, B. J. Goldstein, and F. Jiang
Important Role of Nox4 Type NADPH Oxidase in Angiogenic Responses in Human Microvascular Endothelial Cells In Vitro
Arterioscler Thromb Vasc Biol, November 1, 2007; 27(11): 2319 - 2324.
[Abstract] [Full Text] [PDF]


Home page
Cardiovasc ResHome page
G.-X. Zhang, X.-M. Lu, S. Kimura, and A. Nishiyama
Role of mitochondria in angiotensin II-induced reactive oxygen species and mitogen-activated protein kinase activation
Cardiovasc Res, November 1, 2007; 76(2): 204 - 212.
[Abstract] [Full Text] [PDF]


Home page
Cardiovasc ResHome page
M. J. Haurani and P. J. Pagano
Adventitial fibroblast reactive oxygen species as autacrine and paracrine mediators of remodeling: Bellwether for vascular disease?
Cardiovasc Res, September 1, 2007; 75(4): 679 - 689.
[Abstract] [Full Text] [PDF]


Home page
J. Pharmacol. Exp. Ther.Home page
K. Steinkamp-Fenske, L. Bollinger, H. Xu, Y. Yao, S. Horke, U. Forstermann, and H. Li
Reciprocal Regulation of Endothelial Nitric-Oxide Synthase and NADPH Oxidase by Betulinic Acid in Human Endothelial Cells
J. Pharmacol. Exp. Ther., August 1, 2007; 322(2): 836 - 842.
[Abstract] [Full Text] [PDF]


Home page
Cardiovasc ResHome page
S. Selemidis, G. J. Dusting, H. Peshavariya, B. K. Kemp-Harper, and G. R. Drummond
Nitric oxide suppresses NADPH oxidase-dependent superoxide production by S-nitrosylation in human endothelial cells
Cardiovasc Res, July 15, 2007; 75(2): 349 - 358.
[Abstract] [Full Text] [PDF]


Home page
Nephrol Dial TransplantHome page
A. Orient, A. Donko, A. Szabo, T. L. Leto, and M. Geiszt
Novel sources of reactive oxygen species in the human body
Nephrol. Dial. Transplant., May 1, 2007; 22(5): 1281 - 1288.
[Full Text] [PDF]


Home page
Circ. Res.Home page
J. K. Bendall, R. Rinze, D. Adlam, A. L. Tatham, J. de Bono, and K. M. Channon
Endothelial Nox2 Overexpression Potentiates Vascular Oxidative Stress and Hemodynamic Response to Angiotensin II: Studies in Endothelial-Targeted Nox2 Transgenic Mice
Circ. Res., April 13, 2007; 100(7): 1016 - 1025.
[Abstract] [Full Text] [PDF]


Home page
Cardiovasc ResHome page
H. S. Park, J. N. Chun, H. Y. Jung, C. Choi, and Y. S. Bae
Role of NADPH oxidase 4 in lipopolysaccharide-induced proinflammatory responses by human aortic endothelial cells
Cardiovasc Res, December 1, 2006; 72(3): 447 - 455.
[Abstract] [Full Text] [PDF]


Home page
HypertensionHome page
F. Jiang, S. J. Roberts, S. r. Datla, and G. J. Dusting
NO Modulates NADPH Oxidase Function Via Heme Oxygenase-1 in Human Endothelial Cells
Hypertension, November 1, 2006; 48(5): 950 - 957.
[Abstract] [Full Text] [PDF]


Home page
HypertensionHome page
S. Ye, H. Zhong, and V. M. Campese
Oxidative Stress Mediates the Stimulation of Sympathetic Nerve Activity in the Phenol Renal Injury Model of Hypertension
Hypertension, August 1, 2006; 48(2): 309 - 315.
[Abstract] [Full Text] [PDF]


Home page
Cardiovasc ResHome page
M. Ushio-Fukai
Redox signaling in angiogenesis: Role of NADPH oxidase
Cardiovasc Res, July 15, 2006; 71(2): 226 - 235.
[Abstract] [Full Text] [PDF]


Home page
Cardiovasc ResHome page
M. Geiszt
NADPH oxidases: New kids on the block
Cardiovasc Res, July 15, 2006; 71(2): 289 - 299.
[Abstract] [Full Text] [PDF]


Home page
Am. J. Respir. Cell Mol. Bio.Home page
C. Brueckl, S. Kaestle, A. Kerem, H. Habazettl, F. Krombach, H. Kuppe, and W. M. Kuebler
Hyperoxia-Induced Reactive Oxygen Species Formation in Pulmonary Capillary Endothelial Cells In Situ
Am. J. Respir. Cell Mol. Biol., April 1, 2006; 34(4): 453 - 463.
[Abstract] [Full Text] [PDF]


Home page
J. Biol. Chem.Home page
J. Anrather, G. Racchumi, and C. Iadecola
NF-{kappa}B Regulates Phagocytic NADPH Oxidase by Inducing the Expression of gp91phox
J. Biol. Chem., March 3, 2006; 281(9): 5657 - 5667.
[Abstract] [Full Text] [PDF]


Home page
Exp. Biol. Med.Home page
N. Ardanaz and P. J. Pagano
Hydrogen peroxide as a paracrine vascular mediator: regulation and signaling leading to dysfunction.
Experimental Biology and Medicine, March 1, 2006; 231(3): 237 - 251.
[Abstract] [Full Text] [PDF]


Home page
Circ. Res.Home page
C. Vecchione, A. Aretini, G. Marino, U. Bettarini, R. Poulet, A. Maffei, M. Sbroggio, L. Pastore, M. T. Gentile, A. Notte, et al.
Selective Rac-1 Inhibition Protects From Diabetes-Induced Vascular Injury
Circ. Res., February 3, 2006; 98(2): 218 - 225.
[Abstract] [Full Text] [PDF]


Home page
J. Appl. Physiol.Home page
Q. Fang, H. Sun, D. M. Arrick, and W. G. Mayhan
Inhibition of NADPH oxidase improves impaired reactivity of pial arterioles during chronic exposure to nicotine
J Appl Physiol, February 1, 2006; 100(2): 631 - 636.
[Abstract] [Full Text] [PDF]


Home page
Am. J. Physiol. Renal Physiol.Home page
L. Xia, H. Wang, H. J. Goldberg, S. Munk, I. G. Fantus, and C. I. Whiteside
Mesangial cell NADPH oxidase upregulation in high glucose is protein kinase C dependent and required for collagen IV expression
Am J Physiol Renal Physiol, February 1, 2006; 290(2): F345 - F356.
[Abstract] [Full Text] [PDF]


Home page
Phil Trans R Soc BHome page
A. Cave, D. Grieve, S. Johar, M. Zhang, and A. M Shah
NADPH oxidase-derived reactive oxygen species in cardiac pathophysiology
Phil Trans R Soc B, December 29, 2005; 360(1464): 2327 - 2334.
[Abstract] [Full Text] [PDF]


Home page
Am. J. Physiol. Gastrointest. Liver Physiol.Home page
M. Edderkaoui, P. Hong, E. C. Vaquero, J. K. Lee, L. Fischer, H. Friess, M. W. Buchler, M. M. Lerch, S. J. Pandol, and A. S. Gukovskaya
Extracellular matrix stimulates reactive oxygen species production and increases pancreatic cancer cell survival through 5-lipoxygenase and NADPH oxidase
Am J Physiol Gastrointest Liver Physiol, December 1, 2005; 289(6): G1137 - G1147.
[Abstract] [Full Text] [PDF]


Home page
GENES CELLSHome page
J. Kuroda, K. Nakagawa, T. Yamasaki, K.-i. Nakamura, R. Takeya, F. Kuribayashi, S. Imajoh-Ohmi, K. Igarashi, Y. Shibata, K. Sueishi, et al.
The superoxide-producing NAD(P)H oxidase Nox4 in the nucleus of human vascular endothelial cells
Genes Cells, December 1, 2005; 10(12): 1139 - 1151.
[Abstract] [Full Text] [PDF]


Home page
J. Leukoc. Biol.Home page
F. R. Sheppard, M. R. Kelher, E. E. Moore, N. J. D. McLaughlin, A. Banerjee, and C. C. Silliman
Structural organization of the neutrophil NADPH oxidase: phosphorylation and translocation during priming and activation
J. Leukoc. Biol., November 1, 2005; 78(5): 1025 - 1042.
[Abstract] [Full Text] [PDF]


Home page
Arterioscler. Thromb. Vasc. Bio.Home page
S. Ikeda, M. Yamaoka-Tojo, L. Hilenski, N. A. Patrushev, G. M. Anwar, M. T. Quinn, and M. Ushio-Fukai
IQGAP1 Regulates Reactive Oxygen Species-Dependent Endothelial Cell Migration Through Interacting With Nox2
Arterioscler Thromb Vasc Biol, November 1, 2005; 25(11): 2295 - 2300.
[Abstract] [Full Text] [PDF]


Home page
CirculationHome page
J. F. Keaney Jr
Oxidative Stress and the Vascular Wall: NADPH Oxidases Take Center Stage
Circulation, October 25, 2005; 112(17): 2585 - 2588.
[Full Text] [PDF]


Home page
CirculationHome page
K. Matsuno, H. Yamada, K. Iwata, D. Jin, M. Katsuyama, M. Matsuki, S. Takai, K. Yamanishi, M. Miyazaki, H. Matsubara, et al.
Nox1 Is Involved in Angiotensin II-Mediated Hypertension: A Study in Nox1-Deficient Mice
Circulation, October 25, 2005; 112(17): 2677 - 2685.
[Abstract] [Full Text] [PDF]


Home page
Am. J. Physiol. Renal Physiol.Home page
T. Hu, S. P. RamachandraRao, S. Siva, C. Valancius, Y. Zhu, K. Mahadev, I. Toh, B. J. Goldstein, M. Woolkalis, and K. Sharma
Reactive oxygen species production via NADPH oxidase mediates TGF-{beta}-induced cytoskeletal alterations in endothelial cells
Am J Physiol Renal Physiol, October 1, 2005; 289(4): F816 - F825.
[Abstract] [Full Text] [PDF]


Home page
Cardiovasc ResHome page
H. Cai
Hydrogen peroxide regulation of endothelial function: Origins, mechanisms, and consequences
Cardiovasc Res, October 1, 2005; 68(1): 26 - 36.
[Abstract] [Full Text] [PDF]


Home page
Circ. Res.Home page
Y. M. Kim, T. J. Guzik, Y. H. Zhang, M. H. Zhang, H. Kattach, C. Ratnatunga, R. Pillai, K. M. Channon, and B. Casadei
A Myocardial Nox2 Containing NAD(P)H Oxidase Contributes to Oxidative Stress in Human Atrial Fibrillation
Circ. Res., September 30, 2005; 97(7): 629 - 636.
[Abstract] [Full Text] [PDF]


Home page
Circ. Res.Home page
Y. Castier, R. P. Brandes, G. Leseche, A. Tedgui, and S. Lehoux
p47phox-Dependent NADPH Oxidase Regulates Flow-Induced Vascular Remodeling
Circ. Res., September 16, 2005; 97(6): 533 - 540.
[Abstract] [Full Text] [PDF]


Home page
Arterioscler. Thromb. Vasc. Bio.Home page
G. Zalba, O. Beloqui, G. S. Jose, M. U. Moreno, A. Fortuno, and J. Diez
NADPH Oxidase-Dependent Superoxide Production Is Associated With Carotid Intima-Media Thickness in Subjects Free of Clinical Atherosclerotic Disease
Arterioscler Thromb Vasc Biol, July 1, 2005; 25(7): 1452 - 1457.
[Abstract] [Full Text] [PDF]


Home page
StrokeHome page
T. Ago, T. Kitazono, J. Kuroda, Y. Kumai, M. Kamouchi, H. Ooboshi, M. Wakisaka, T. Kawahara, K. Rokutan, S. Ibayashi, et al.
NAD(P)H Oxidases in Rat Basilar Arterial Endothelial Cells
Stroke, May 1, 2005; 36(5): 1040 - 1046.
[Abstract] [Full Text] [PDF]


Home page
Circ. Res.Home page
H. Cai
NAD(P)H Oxidase-Dependent Self-Propagation of Hydrogen Peroxide and Vascular Disease
Circ. Res., April 29, 2005; 96(8): 818 - 822.
[Abstract] [Full Text] [PDF]


Home page
Am. J. Physiol. Cell Physiol.Home page
J. Hwang, D. J. Kleinhenz, B. Lassegue, K. K. Griendling, S. Dikalov, and C. M. Hart
Peroxisome proliferator-activated receptor-{gamma} ligands regulate endothelial membrane superoxide production
Am J Physiol Cell Physiol, April 1, 2005; 288(4): C899 - C905.
[Abstract] [Full Text] [PDF]


Home page
Arterioscler. Thromb. Vasc. Bio.Home page
R.M. Touyz, G. Yao, M.T. Quinn, P.J. Pagano, and E.L. Schiffrin
p47phox Associates With the Cytoskeleton Through Cortactin in Human Vascular Smooth Muscle Cells: Role in NAD(P)H Oxidase Regulation by Angiotensin II
Arterioscler Thromb Vasc Biol, March 1, 2005; 25(3): 512 - 518.
[Abstract] [Full Text] [PDF]


Home page
CirculationHome page
V. Adams, A. Linke, N. Krankel, S. Erbs, S. Gielen, S. Mobius-Winkler, J. F. Gummert, F. W. Mohr, G. Schuler, and R. Hambrecht
Impact of Regular Physical Activity on the NAD(P)H Oxidase and Angiotensin Receptor System in Patients With Coronary Artery Disease
Circulation, February 8, 2005; 111(5): 555 - 562.
[Abstract] [Full Text] [PDF]


Home page
Arterioscler. Thromb. Vasc. Bio.Home page
C. F.H. Mueller, K. Laude, J. S. McNally, and D. G. Harrison
Redox Mechanisms in Blood Vessels
Arterioscler Thromb Vasc Biol, February 1, 2005; 25(2): 274 - 278.
[Abstract] [Full Text] [PDF]


Home page
Cardiovasc ResHome page
S. H.M. Ellmark, G. J. Dusting, M. Ng Tang Fui, N. Guzzo-Pernell, and G. R. Drummond
The contribution of Nox4 to NADPH oxidase activity in mouse vascular smooth muscle
Cardiovasc Res, February 1, 2005; 65(2): 495 - 504.
[Abstract] [Full Text] [PDF]


Home page
Circ. Res.Home page
R. Furst, C. Brueckl, W. M. Kuebler, S. Zahler, F. Krotz, A. Gorlach, A. M. Vollmar, and A. K. Kiemer
Atrial Natriuretic Peptide Induces Mitogen-Activated Protein Kinase Phosphatase-1 in Human Endothelial Cells via Rac1 and NAD(P)H Oxidase/Nox2-Activation
Circ. Res., January 7, 2005; 96(1): 43 - 53.
[Abstract] [Full Text] [PDF]


Home page
Cardiovasc ResHome page
R. P. Brandes and J. Kreuzer
Vascular NADPH oxidases: molecular mechanisms of activation
Cardiovasc Res, January 1, 2005; 65(1): 16 - 27.
[Abstract] [Full Text] [PDF]


Home page
J. Biol. Chem.Home page
M. Geiszt and T. L. Leto
The Nox Family of NAD(P)H Oxidases: Host Defense and Beyond
J. Biol. Chem., December 10, 2004; 279(50): 51715 - 51718.
[Full Text] [PDF]


Home page
Am. J. Physiol. Regul. Integr. Comp. Physiol.Home page
J.-M. Li and A. M Shah
Endothelial cell superoxide generation: regulation and relevance for cardiovascular pathophysiology
Am J Physiol Regulatory Integrative Comp Physiol, November 1, 2004; 287(5): R1014 - R1030.
[Abstract] [Full Text] [PDF]


Home page
J. Biol. Chem.Home page
R. K. Ambasta, P. Kumar, K. K. Griendling, H. H. H. W. Schmidt, R. Busse, and R. P. Brandes
Direct Interaction of the Novel Nox Proteins with p22phox Is Required for the Formation of a Functionally Active NADPH Oxidase
J. Biol. Chem., October 29, 2004; 279(44): 45935 - 45941.
[Abstract] [Full Text] [PDF]


Home page
Physiol. Rev.Home page
R. Stocker and J. F. Keaney Jr.
Role of Oxidative Modifications in Atherosclerosis
Physiol Rev, October 1, 2004; 84(4): 1381 - 1478.
[Abstract] [Full Text] [PDF]


Home page
J. Immunol.Home page
H. S. Park, H. Y. Jung, E. Y. Park, J. Kim, W. J. Lee, and Y. S. Bae
Cutting Edge: Direct Interaction of TLR4 with NAD(P)H Oxidase 4 Isozyme Is Essential for Lipopolysaccharide-Induced Production of Reactive Oxygen Species and Activation of NF-{kappa}B
J. Immunol., September 15, 2004; 173(6): 3589 - 3593.
[Abstract] [Full Text] [PDF]