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Neutrophil myeloperoxidase harbors distinct site-specific peculiarities in its glycosylation
Karli R Reiding1,2, Vojtech Franc3,2, Minke G Huitema4
1Biomolecular Mass Spectrometry and Proteomics, Bijvoet Center for Biomolecular Research and Utrecht Institute for Pharmaceutical Sciences, University of Utrecht, 3584 CH Utrecht, The Netherlands k.r.reiding@uu.nl.
Abstract:
Anti-neutrophil cytoplasmic autoantibodies (ANCAs) are directed against lysosomal components of neutrophils. ANCAs directed to proteinase 3 and myeloperoxidase (MPO) in particular are associated with distinct forms of small vessel vasculitides. MPO is an abundant neutrophil-derived heme protein that is part of the antimicrobial defense system. The protein is typically present in the azurophilic granules of neutrophils, but a large portion may also enter the extracellular space. It remains unclear why MPO is frequently the target of antibody-mediated autoimmune responses. MPO is a homodimeric glycoprotein, posttranslationally modified with complex sugars at specific sites. Glycosylation can strongly influence protein function, affecting its folding, receptor interaction, and backbone accessibility. MPO potentially can be heavily modified as it harbors 5 putative N-glycosylation sites (10 in the mature dimer). Although considered important for MPO structure and function, the full scope and relative abundance of the glycans attached to MPO is unknown. Here, combining bottom-up glycoproteomics and native MS approaches, we structurally characterized MPO from neutrophils of healthy human donors. We quantified the relative occupancy levels of the glycans at each of the five sites and observed complex heterogeneity and site-specific glycosylation. In particular, we detected glycosylation phenotypes uncommon for glycoproteins in the extracellular space, such as a high abundance of phosphorylated high-mannose species and severely truncated small glycans having the size of paucimannose or smaller. We hypothesize that the atypical glycosylation pattern found on MPO might contribute to its specific processing and presentation as a self-antigen by antigen-presenting cells.
Insights
This study reveals unusual glycosylation patterns on myeloperoxidase (MPO), a key target in autoimmune vasculitis. These unique glycan structures may explain why MPO triggers autoimmune responses, offering new insights into disease mechanisms.
Area of Science:
- Immunology
- Glycobiology
- Proteomics
Background:
- Anti-neutrophil cytoplasmic autoantibodies (ANCAs) target neutrophil components, notably proteinase 3 and myeloperoxidase (MPO).
- MPO, an abundant neutrophil heme protein, plays a role in antimicrobial defense and is frequently targeted in autoimmune vasculitis.
- The reasons for MPO's susceptibility to antibody-mediated autoimmune responses remain unclear, despite its known importance in protein structure and function.
Purpose of the Study:
- To structurally characterize the glycosylation of MPO from human neutrophils.
- To quantify glycan occupancy and identify site-specific glycosylation patterns.
- To investigate the potential role of MPO's glycosylation in its presentation as a self-antigen.
Main Methods:
- Bottom-up glycoproteomics
- Native mass spectrometry (MS)
- Structural characterization of MPO from healthy human donors
Main Results:
- Detailed structural characterization of MPO glycosylation revealed complex heterogeneity and site-specific patterns.
- Uncommon glycosylation phenotypes were observed, including abundant phosphorylated high-mannose species.
- Severely truncated glycans, such as paucimannose or smaller, were detected at high abundance.
Conclusions:
- MPO exhibits unique and complex glycosylation profiles across its five putative N-glycosylation sites.
- The identified atypical glycosylation patterns, including phosphorylated high-mannose and truncated glycans, are unusual for extracellular glycoproteins.
- These distinct glycosylation features may influence MPO processing and presentation by antigen-presenting cells, potentially contributing to autoimmune responses.
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