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Immunochemical and electrophoretic analyses of phosphorylated native and recombinant neutrophil oxidase component
W M Nauseef1, B D Volpp, R A Clark
1Department of Medicine, VA Medical Center, Iowa City, IA.
Abstract:
Human polymorphonuclear neutrophils (PMNs) possess a potent oxygen-dependent microbicidal system that depends on the activity of a stimulus-activated multicomponent nicotinamide adenine dinucleotide phosphate (NADPH) oxidase. Patients with chronic granulomatous disease (CGD) lack activity of this oxidase and consequently suffer severe and frequent infections. Components of the oxidase include both membrane-bound factors (most notably, cytochrome b559, which is absent in the X-linked form of CGD) and at least two cytosolic factors, one or the other of which is absent in autosomal CGD. Patients with CGD, particularly the autosomal type, have defective phosphorylation of proteins in the 44 to 48 Kd range. A polyclonal antiserum (B-1) that recognizes cytosolic oxidase components of 47 and 67 Kd was used to identify phosphoproteins in a cell-free oxidase system. Two-dimensional gel electrophoresis showed the identity of the 47-Kd cytosolic protein (p47-phox) recognized by B-1 and the cationic 47-Kd protein that is phosphorylated in normal but not p47-phox-deficient CGD cytosol during activation of the NADPH-dependent oxidase. All full-length and C-terminal recombinant p47-phox proteins augmented the superoxide-generating capacity of the cell-free system and were phosphorylated when added to cytosol from normal subjects or from a patient with p47-deficient autosomal CGD. These studies provide compelling evidence that the 47-Kd cationic protein that is a substrate for phosphorylation during the activation of PMNs is, in fact, p47-phox, a cytosolic protein previously shown to be critical for normal activity of the NADPH-dependent oxidase of PMNs.
Insights
Chronic granulomatous disease (CGD) patients lack a functional nicotinamide adenine dinucleotide phosphate (NADPH) oxidase, leading to infections. This study identifies the 47-Kd cytosolic protein, p47-phox, as crucial for NADPH oxidase activity and phosphorylation in neutrophils.
Area of Science:
- Immunology
- Cell Biology
- Biochemistry
Background:
- Human polymorphonuclear neutrophils (PMNs) utilize an oxygen-dependent system involving nicotinamide adenine dinucleotide phosphate (NADPH) oxidase for microbial killing.
- Chronic granulomatous disease (CGD) is characterized by a defective NADPH oxidase, resulting in severe infections.
- Autosomal forms of CGD are linked to deficiencies in cytosolic oxidase components and defective protein phosphorylation.
Purpose of the Study:
- To identify the specific 47-Kd cytosolic protein phosphorylated during NADPH oxidase activation.
- To confirm the role of this phosphoprotein in the function of the NADPH-dependent oxidase in PMNs.
Main Methods:
- Utilized a polyclonal antiserum (B-1) to identify cytosolic oxidase components.
- Employed two-dimensional gel electrophoresis to analyze phosphoproteins in a cell-free oxidase system.
- Investigated the effect of recombinant p47-phox proteins on superoxide generation and phosphorylation.
Main Results:
- Identified the 47-Kd cytosolic protein recognized by antiserum B-1 as p47-phox.
- Demonstrated that p47-phox is the cationic protein phosphorylated during NADPH oxidase activation in normal, but not p47-phox-deficient, CGD cytosol.
- Showed that recombinant p47-phox augments superoxide generation and is phosphorylated in cell-free systems.
Conclusions:
- Provided compelling evidence that the 47-Kd cationic protein is p47-phox.
- Confirmed p47-phox as a critical cytosolic component and phosphorylation substrate for the NADPH-dependent oxidase in PMNs.
- Highlighted the significance of p47-phox in the microbicidal function of neutrophils.