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Modulation of the alveolar macrophage superoxide production by protein phosphorylation
1Department of Molecular Pharmacology and Toxicology, School of Pharmacy, University of Southern California, Los Angeles 90033, USA. hforman@hsc.usc.edu
Abstract:
Stimulation of alveolar macrophages (AM) with adenosine-5-diphosphate (ADP) results in transient production of superoxide anion radical (O2.-; superoxide) and H2O2 in a metabolic event known as the respiratory burst. Initiation of the respiratory burst appears to depend on activation of protein kinase activity, whereas protein phosphatases might involved in termination of the burst. The involvement of protein kinase C was suggested by inhibition by bisindolylmaleimide I (GF 109203X), a relatively specific inhibitor. KN-62, an inhibitor of calcium-calmodulin protein kinase II, also partly inhibited the respiratory burst stimulated by ADP and phorbol esters. The role of protein phosphatases in termination of the ADP-stimulated respiratory burst of AM was examined with calyculin A (CA) (25-75 nM) or okadaic acid (OA) (1-5 microM), two inhibitors of protein phosphatase 1 and 2a (PP1;PP2a). A dose-dependent prolongation of the respiratory burst was observed in the presence of these inhibitors. CA and OA also markedly enhanced the rate of superoxide production stimulated by ADP, consistent with involvement of PP1/PP2a in regulating both the rate of activation and timing of termination. Treatment of AM with cyclosporin A (CsA) (1-50 microM), an inhibitor of the calcium-dependent protein phosphatase 2b (PP2b), stimulated superoxide production by itself and significantly prolonged the duration of ADP-stimulated superoxide production. CsA, however, did not increase the ADP-stimulated rate of superoxide production. Thus, PP1/PP2a appear to be the primary phosphatases for controlling the intensity of the respiratory burst during receptor-elicited superoxide production in AM, whereas PP1/PP2a and PP2b play a role in turning off the respiratory burst.
Insights
Adenosine-5-diphosphate (ADP) stimulates alveolar macrophages (AM) to produce superoxide via the respiratory burst. Protein phosphatases regulate this burst, with PP1/PP2a controlling intensity and PP1/PP2a and PP2b involved in termination.
Area of Science:
- Immunology
- Cellular Biology
- Biochemistry
Background:
- Alveolar macrophages (AM) initiate a respiratory burst upon stimulation with adenosine-5-diphosphate (ADP), producing superoxide and H2O2.
- Protein kinases are implicated in initiating the burst, while protein phosphatases may terminate it.
Purpose of the Study:
- To investigate the role of protein phosphatases in regulating the intensity and duration of the ADP-stimulated respiratory burst in AM.
- To determine which specific protein phosphatases (PP1, PP2a, PP2b) are involved in controlling the respiratory burst.
Main Methods:
- AM were stimulated with ADP in the presence of inhibitors for protein phosphatases: calyculin A (CA) and okadaic acid (OA) for PP1/PP2a, and cyclosporin A (CsA) for PP2b.
- Superoxide production rate and duration were measured to assess the impact of phosphatase inhibition.
Main Results:
- Inhibitors of PP1/PP2a (CA, OA) dose-dependently prolonged the respiratory burst and enhanced superoxide production rate.
- CsA, a PP2b inhibitor, increased basal superoxide production and prolonged the ADP-stimulated burst but did not affect the stimulated rate.
- PP1/PP2a appear critical for regulating the intensity of the respiratory burst.
Conclusions:
- Protein phosphatase 1 and 2a (PP1/PP2a) are key regulators of the respiratory burst intensity in alveolar macrophages.
- Both PP1/PP2a and PP2b contribute to the termination of the receptor-elicited superoxide production in AM.