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Membrane proteinase 3 and its interactions within microdomains of neutrophil membranes
Ram Fridlich1, Alina David, Irit Aviram
1The Department of Biochemistry, Faculty of Life Sciences, Tel-Aviv University, Tel-Aviv 69978, Israel.
Abstract:
Proteinase 3 (PR3) is a serine protease of neutrophil granules released to the medium or into the phagocytic vesicle upon neutrophil stimulation. A fraction of the enzyme is thought to associate with the cell membrane yielding membrane PR3 (mPR3). In autoimmune disorders characterized by the presence of antineutrophil cytoplasmic antibodies (ANCA), the reaction of the latter with their target antigen mPR3 activates the cell inflicting injuries on the surrounding tissues. In a previous communication we provided evidence for the presence of mPR3 in lipid rafts obtained by lysis of neutrophils in Triton X-100 and for the mediation of PR3 binding to the membrane by a glycosylphosphatidylinositol (GPI)-anchored neutrophil protein, possibly FcgammaRIIIb. In the current study we employed the mild detergent Brij 58 to isolate high molecular weight (HMW) protein complexes in the void volume of a Sepharose 4B gel filtration minicolumn. HMW complexes of unstimulated neutrophils comprised PR3, FcgammaRIIIb, the beta2 integrin CD11b/CD18 as well as the membrane and cytosolic subunits of the NADPH oxidase, p22phox and p47phox/p67phox. Treatment of neutrophils with phosphatidylinositol-specific phospholipase C (PI-PLC) reduced amounts of PR3 and FcgammaRIIIb in HMW complexes isolated from the treated cells, supporting our previous suggestion that FcgammaRIIIb acts as a membrane adaptor for PR3. FcgammaRIIIb of HMW fractions co-immunoprecipitated with PR3, indicating their presence in the same protein complex. Since HMW fractions contained also the majority of biotinylated proteins obtained by the reaction of neutrophils with a membrane impermeable biotinylating agent Sulfo-NHS-biotin, it was concluded that HMW proteins were derived from cell membranes. Lipid rafts isolated from Brij 58-lysed neutrophils were similar in their protein composition to the HMW complexes but not identical.
Insights
Membrane Proteinase 3 (mPR3) binding to neutrophils involves FcgammaRIIIb, a GPI-anchored protein. This interaction is crucial in autoimmune disorders where anti-neutrophil cytoplasmic antibodies (ANCA) target mPR3, activating cells and causing tissue damage.
Area of Science:
- Immunology
- Cell Biology
- Biochemistry
Background:
- Proteinase 3 (PR3) is a serine protease found in neutrophil granules.
- A fraction of PR3 associates with the cell membrane as membrane PR3 (mPR3).
- Antineutrophil cytoplasmic antibodies (ANCA) targeting mPR3 activate neutrophils, contributing to autoimmune disease pathogenesis.
Purpose of the Study:
- To investigate the molecular interactions and localization of membrane PR3 (mPR3) in neutrophils.
- To identify proteins associated with mPR3 in high molecular weight (HMW) complexes.
- To elucidate the role of FcgammaRIIIb in anchoring mPR3 to the neutrophil membrane.
Main Methods:
- Isolation of high molecular weight (HMW) protein complexes using Brij 58 detergent and Sepharose 4B gel filtration.
- Treatment of neutrophils with phosphatidylinositol-specific phospholipase C (PI-PLC) to cleave GPI-anchored proteins.
- Co-immunoprecipitation assays to confirm protein complex formation.
- Biotinylation of cell surface proteins using Sulfo-NHS-biotin.
Main Results:
- HMW complexes from unstimulated neutrophils contained PR3, FcgammaRIIIb, CD11b/CD18, and NADPH oxidase subunits (p22phox, p47phox/p67phox).
- PI-PLC treatment reduced PR3 and FcgammaRIIIb in HMW complexes, supporting FcgammaRIIIb's role as a membrane adaptor for PR3.
- Co-immunoprecipitation confirmed PR3 and FcgammaRIIIb exist within the same protein complex.
- HMW proteins were derived from cell membranes, as indicated by biotinylation studies.
Conclusions:
- FcgammaRIIIb acts as a membrane adaptor protein for PR3 in neutrophils.
- HMW complexes isolated using mild detergents represent membrane-derived protein assemblies.
- These findings provide insights into the structural organization of mPR3 and its potential role in ANCA-associated vasculitis.
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