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Published on: August 16, 2013
Syk activation is required for spreading and H2O2 release in adherent human neutrophils
1Department of Pediatrics, University of Michigan, Ann Arbor 48109, USA.
Abstract:
Chemoattractant-stimulated polymorphonuclear leukocytes (PMNs) that are adherent to extracellular matrix proteins exhibit a massive, sustained respiratory burst that requires cell spreading. However, the signaling pathways culminating in PMN spreading are not well characterized. Studies showing that protein tyrosine phosphorylation increases with PMN spreading suggest that phosphorylation is critical for this process. In the present study, we observed increased tyrosine phosphorylation of both focal adhesion kinase and Syk in FMLP-activated PMNs that had been plated onto fibrinogen; an increase in Syk activity, but not focal adhesion kinase activity, was apparent. The time course of Syk phosphorylation correlated with the initiation of cell spreading and H2O2 release. Pretreatment of PMNs with piceatannol, a Syk-selective inhibitor, blocked Syk activity, cell spreading, and H2O2 release, indicating that Syk activity was required for the activation of adherent PMNs. Paxillin is a cytoskeletally associated protein that is also tyrosine phosphorylated during PMN spreading and H2O2 release. Paxillin phosphorylation is kinetically slower than Syk phosphorylation and is inhibited with piceatannol, suggesting that paxillin is a substrate for Syk. An analysis of Syk immunoprecipitates indicated that Syk and paxillin associate during PMN spreading. This interaction is not mediated by the src kinases Lyn and Fgr, since neither kinase coprecipitated with Syk. Syk from FMLP-activated, adherent PMNs phosphorylated paxillin-glutathione S-transferase, suggesting that paxillin is a substrate for Syk in vivo. These results indicate that PMN spreading and H2O2 release require a Syk-dependent signaling pathway leading to paxillin phosphorylation.
Insights
Polymorphonuclear leukocytes (PMNs) require cell spreading for a sustained respiratory burst. Syk kinase activation and subsequent paxillin phosphorylation are critical for this process in adherent PMNs.
Area of Science:
- Immunology
- Cell Biology
- Biochemistry
Background:
- Chemoattractant-stimulated polymorphonuclear leukocytes (PMNs) exhibit a respiratory burst upon adherence to extracellular matrix proteins.
- This respiratory burst requires cell spreading, but the underlying signaling pathways are not fully understood.
- Protein tyrosine phosphorylation is implicated in PMN spreading.
Purpose of the Study:
- To elucidate the signaling pathways involved in polymorphonuclear leukocyte (PMN) spreading and respiratory burst.
- To investigate the role of Syk kinase and paxillin phosphorylation in FMLP-activated PMN signaling.
Main Methods:
- Studied FMLP-activated PMNs plated on fibrinogen.
- Assessed tyrosine phosphorylation of focal adhesion kinase and Syk.
- Utilized Syk-selective inhibitor (piceatannol) to evaluate pathway requirements.
- Analyzed Syk and paxillin association and Syk's in vitro phosphorylation of paxillin.
Main Results:
- FMLP stimulation increased tyrosine phosphorylation of Syk and focal adhesion kinase in adherent PMNs.
- Syk activity, but not focal adhesion kinase activity, increased and correlated with cell spreading and H2O2 release.
- Piceatannol inhibited Syk activity, cell spreading, and H2O2 release, confirming Syk's requirement.
- Paxillin was tyrosine phosphorylated downstream of Syk, and Syk and paxillin associated during PMN spreading.
Conclusions:
- Syk kinase activation is essential for FMLP-induced PMN spreading and respiratory burst.
- Paxillin phosphorylation by Syk is a key downstream event in this signaling pathway.
- This Syk-dependent pathway involving paxillin phosphorylation is critical for activating adherent PMNs.
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