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29WJ

Structure of monomerized native leukocyte myeloperoxidase in complex with the Staphylococcal Peroxidase Inhibitor SPIN

Summary for 29WJ
Entry DOI10.2210/pdb29wj/pdb
DescriptorMyeloperoxidase, PROTOPORPHYRIN IX CONTAINING FE, CALCIUM ION, ... (12 entities in total)
Functional Keywordsinnate immunity, homodimer, inhibitor, oxidoreductase
Biological sourceStaphylococcus aureus
More
Total number of polymer chains6
Total formula weight155034.29
Authors
Leitgeb, U.,Pfanzagl, V. (deposition date: 2026-04-10, release date: 2026-10-07)
Primary citationLeitgeb, U.,Guo, Y.,Emde, T.,Ruocco, V.,Simak, T.,Zdenkovic, E.,Furtmuller, P.G.,Borek, D.,Nauseef, W.M.,Oostenbrink, C.,Pfanzagl, V.
Interface N-glycans drive myeloperoxidase dimerization in vitro.
Int.J.Biol.Macromol., :154499-154499, 2026
Cited by
PubMed Abstract: Myeloperoxidase (MPO) is a highly glycosylated heme oxidoreductase that, together with lactoperoxidase (LPO) and eosinophil peroxidase (EPO), contributes to host defence through the generation of (pseudo)hypohalous acids. Among the human heme peroxidases, mature MPO forms a unique covalently linked homodimer. Dimerization enhances stability and is essential for some biological functions, including chromatin disruption during neutrophil extracellular trap formation. Thus, we hypothesized that MPO dimerization must reflect a tightly regulated step in MPO biosynthesis and is driven by specific structural elements. Cross-species sequence alignment indicated that N-glycosylation motifs were evolutionarily more conserved in MPO than in monomeric EPO and LPO. We investigated the role of N-glycans in MPO dimerization using in vitro monomerized glycosylated (mMPO) and deglycosylated (mMPOdg) monomeric variants of native human MPO. Small-angle X-ray scattering, isothermal titration calorimetry and crystal structures showed that glycosylated MPO monomers had a weak but biologically relevant affinity in the millimolar range, which was lost upon deglycosylation. Furthermore, we present the first cryogenic transmission electron microscopy structure of human MPO with at least one core N-acetylglucosamine residue resolved at each N-glycosylation site. Structural analysis suggests that an extensive hydrogen bonding network of interface N-glycans at position 483 and residues of the other monomer drives MPO homodimerization. Dimerization enhances stability without affecting enzymatic activity. Together, we show that N-glycans are essential to MPO dimerization, provide important insights into the impact of interface N-glycans on biophysical and biochemical properties of MPO and discuss the implications for the biological roles of MPO in health and disease.
PubMed: 42735772
DOI: 10.1016/j.ijbiomac.2026.154499
PDB entries with the same primary citation
Experimental method
X-RAY DIFFRACTION (2.55 Å)
Structure validation

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PDB entries from 2026-10-07

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