In phagocytes, superoxide generation by the NADPH oxidase is accompanied by metabolic acid production. Cytoplasmic acidification during this metabolic burst is prevented by a combination of H+ extrusion mechanisms, including a unique H+ conductance. NADPH oxidase is deficient in chronic granulomatous disease (CGD) patients. The burst of acid production is absent in CGD patients lacking the 47-kD (p47-phox) or the 91-kD (gp91-phox) subunits of the oxidase. Activation of the H+ conductance is also defective in these patients suggesting that (a) the oxidase itself undertakes H+ translocation or (b) oxidase assembly is required to stimulate a separate H+ conducting entity. To discern between these possibilities, three rare forms of CGD were studied. In neutrophils expressing nonfunctional cytochrome b, the conductance was activated to near-normal levels, implying that functional oxidase is not required to activate H+ extrusion. CGD cells expressing diminished amounts of cytochrome displayed H+ conductance approaching normal levels, suggesting that the oxidase itself does not translocate H+. Finally, the conductance was only partially inhibited in patients lacking the 67-kD subunit, indicating that this component is not essential for stimulation of H+ transport. We propose that normal assembly of the oxidase subunits is required for optimal activation of a closely associated but distinct H+ conducting entity.
A Nanda, J T Curnutte, S Grinstein
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The Journal of Physiology | 2008 |
Expression of Nox1 in 3T3 cells increases cellular acid production but not proton conductance
V Gaggioli, C Schwarzer, H Fischer |
Archives of Biochemistry and Biophysics | 2007 |
NOX2 Controls Phagosomal pH to Regulate Antigen Processing during Crosspresentation by Dendritic Cells
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Cell | 2006 |
Structure and regulation of the neutrophil respiratory burst oxidase: comparison with nonphagocyte oxidases
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Journal of leukocyte biology | 2004 |
Interactions between electron and proton currents in excised patches from human eosinophils
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The Journal of General Physiology | 2003 |
Interactions between Electron and Proton Currents in Excised Patches from Human Eosinophils
GL Petheö, A Maturana, A Spät, N Demaurex |
The Journal of General Physiology | 2003 |
Voltage-Gated Proton Channels and Other Proton Transfer Pathways
TE Decoursey |
Physiological reviews | 2003 |
The Macrophage as Therapeutic Target
S Gordon |
2003 | |
Voltage-gated proton "channels": a spectator's viewpoint
N Touret, S Grinstein |
The Journal of General Physiology | 2002 |
NOX family NADPH oxidases: do they have built-in proton channels?
A Maturana, KH Krause, N Demaurex |
The Journal of General Physiology | 2002 |
The gp91phox component of NADPH oxidase is not a voltage-gated proton channel
TE DeCoursey, D Morgan, VV Cherny |
The Journal of General Physiology | 2002 |
Microbial Killing: Oxidants, Proteases and Ions
RE Harrison, N Touret, S Grinstein |
Current Biology | 2002 |
Modulation of the Cytosolic and Phagosomal pH by the NADPH Oxidase
A Jankowski, S Grinstein |
Antioxidants & Redox Signaling | 2002 |
The Neutrophil NADPH Oxidase
BM Babior, JD Lambeth, W Nauseef |
Archives of Biochemistry and Biophysics | 2002 |
Voltage-gated Proton “Channels”: a Spectator's Viewpoint
N Touret, S Grinstein |
The Journal of General Physiology | 2002 |
NOX Family NADPH Oxidases: Do They Have Built-in Proton Channels?
A Maturana, KH Krause, N Demaurex |
The Journal of General Physiology | 2002 |
The gp91 phox Component of NADPH Oxidase Is Not a Voltage-gated Proton Channel
TE DeCoursey, D Morgan, VV Cherny |
The Journal of General Physiology | 2002 |
Developmental Changes in the Management of Acid Loads During Preimplantation Mouse Development1
EA Harding, CA Gibb, MH Johnson, DI Cook, ML Day |
Biology of reproduction | 2002 |
Microbial killing: hold the bleach and pass the salt!
GM Bokoch |
Nature Immunology | 2002 |
Voltage-gated proton channels in microglia
C Eder, TE DeCoursey |
Progress in Neurobiology | 2001 |
Activation of NADPH oxidase-related proton and electron currents in human eosinophils by arachidonic acid
VV Cherny, LM Henderson, W Xu, LL Thomas, TE DeCoursey |
The Journal of Physiology | 2001 |
Heme Histidine Ligands within gp91 phox Modulate Proton Conduction by the Phagocyte NADPH Oxidase
A Maturana, S Arnaudeau, S Ryser, B Banfi, JP Hossle, W Schlegel, KH Krause, N Demaurex |
The Journal of biological chemistry | 2001 |
Chronic granulomatous disease
D Goldblatt, AJ Thrasher |
Clinical & Experimental Immunology | 2000 |
A novel H(+) conductance in eosinophils: unique characteristics and absence in chronic granulomatous disease
B Bánfi, J Schrenzel, O Nüsse, DP Lew, E Ligeti, KH Krause, N Demaurex |
Journal of Experimental Medicine | 1999 |
Cytochrome b558 (p22phox) in the guinea-pig adrenal medulla
W Kummer, P K�nig, B H�hler |
Microscopy Research and Technique | 1999 |
A Novel H+ Conductance in Eosinophils: Unique Characteristics and Absence in Chronic Granulomatous Disease
B Banfi, J Schrenzel, O Nusse, DP Lew, E Ligeti, KH Krause, N Demaurex |
Journal of Experimental Medicine | 1999 |
Inside the Neutrophil Phagosome: Oxidants, Myeloperoxidase, and Bacterial Killing
MB Hampton, AJ Kettle, CC Winterbourn |
Blood | 1998 |
NADPH oxidase of neutrophils
LM Henderson, JB Chappell |
Biochimica et Biophysica Acta (BBA) - Bioenergetics | 1996 |
Na+/H+ exchange activity during phagocytosis in human neutrophils: role of Fcgamma receptors and tyrosine kinases
T Fukushima, TK Waddell, S Grinstein, GG Goss, J Orlowski, GP Downey |
The Journal of Cell Biology | 1996 |
Arachidonic acid activatable electrogenic H+ transport in the absence of cytochrome b558 in human T lymphocytes
K Káldi, K Szászi, G Koncz, K Suszták, E Ligeti |
FEBS Letters | 1996 |
The Arachidonate-activable, NADPH Oxidase-associated H Channel: EVIDENCE THAT gp91- phox FUNCTIONS AS AN ESSENTIAL PART OF THE CHANNEL
LM Henderson, G Banting, JB Chappell |
The Journal of biological chemistry | 1995 |
Assessment of the contribution of the cytochrome b moiety of the NADPH oxidase to the transmembrane H+ conductance of leukocytes
A Nanda, R Romanek, JT Curnutte, S Grinstein |
The Journal of biological chemistry | 1994 |