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PMID: 10432282 Published · ppublish English Case Reports Journal Article Research Support, Non-U.S. Gov't

A novel H(+) conductance in eosinophils: unique characteristics and absence in chronic granulomatous disease.

The Journal of experimental medicine ·Vol. 190 ·No. 2 ·1999-07-19 ·Pages 183-94

Bánfi B, Schrenzel J, Nüsse O, Lew DP, Ligeti E, Krause KH, Demaurex N

Abstract

Efficient mechanisms of H(+) ion extrusion are crucial for normal NADPH oxidase function. However, whether the NADPH oxidase-in analogy with mitochondrial cytochromes-has an inherent H(+) channel activity remains uncertain: electrophysiological studies did not find altered H(+) currents in cells from patients with chronic granulomatous disease (CGD), challenging earlier reports in intact cells. In this study, we describe the presence of two different types of H(+) currents in human eosinophils. The "classical" H(+) current had properties similar to previously described H(+) conductances and was present in CGD cells. In contrast, the "novel" type of H(+) current had not been described previously and displayed unique properties: (a) it was absent in cells from gp91- or p47-deficient CGD patients; (b) it was only observed under experimental conditions that allowed NADPH oxidase activation; (c) because of its low threshold of voltage activation, it allowed proton influx and cytosolic acidification; (d) it activated faster and deactivated with slower and distinct kinetics than the classical H(+) currents; and (e) it was approximately 20-fold more sensitive to Zn(2+) and was blocked by the histidine-reactive agent, diethylpyrocarbonate (DEPC). In summary, our results demonstrate that the NADPH oxidase or a closely associated protein provides a novel type of H(+) conductance during phagocyte activation. The unique properties of this conductance suggest that its physiological function is not restricted to H(+) extrusion and repolarization, but might include depolarization, pH-dependent signal termination, and determination of the phagosomal pH set point.

MeSH Terms
Adult Child Electron Transport Enzyme Activation Eosinophils/metabolism Female Granulomatous Disease, Chronic/genetics,metabolism Humans Hydrogen-Ion Concentration Kinetics Male Membrane Glycoproteins/deficiency,genetics Membrane Potentials NADPH Oxidase 2 NADPH Oxidases/deficiency,genetics Phosphoproteins/deficiency,genetics Respiratory Burst
Chemicals
Membrane Glycoproteins Phosphoproteins CYBB protein, human NADPH Oxidase 2 NADPH Oxidases neutrophil cytosolic factor 1
Authors & Affiliations
7 authors, click to expand affiliations / ORCID
Bánfi B
Division of Infectious Diseases, Geneva University Hospitals, CH-1211 Geneva 4, Switzerland.
Schrenzel J
Nüsse O
Lew D P
Ligeti E
Krause K H
Demaurex N
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Article Info
Journal
The Journal of experimental medicine
Abbr.
J Exp Med
ISSN
0022-1007
Published
1999-07-19
Pages
183-94
Language
English
Region
United States
NLM ID
2985109R
PMCID
PMC2195580
Subset
IM
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