Neutrophil activation in response to monomeric myeloperoxidase

Author:

Gorudko Irina V.1,Grigorieva Daria V.1,Sokolov Alexey V.2345,Shamova Ekaterina V.1,Kostevich Valeria A.24,Kudryavtsev Igor V.26,Syromiatnikova Elena D.7,Vasilyev Vadim B.23,Cherenkevich Sergey N.1,Panasenko Oleg M.4

Affiliation:

1. Belarusian State University, Minsk 220030, Belarus.

2. FSBSI “Institute of Experimental Medicine”, St. Petersburg 197376, Russia.

3. Saint-Petersburg State University, St. Petersburg 199034, Russia.

4. Federal Research and Clinical Center of Physical-Chemical Medicine of Federal Medical Biological Agency, Moscow 119435, Russia.

5. Centre of Preclinical Translational Research, Almazov National Medical Research Centre, St. Petersburg 197341, Russia.

6. Far Eastern Federal University, Vladivostok 690090, Russia.

7. N.V. Sklifosovsky Research Institute for Emergency Medicine, Moscow 129090, Russia.

Abstract

Myeloperoxidase (MPO) is an oxidant-producing enzyme that can also regulate cellular functions via its nonenzymatic effects. Mature active MPO isolated from normal human neutrophils is a 145 kDa homodimer, which consists of 2 identical protomers, connected by a single disulfide bond. By binding to CD11b/CD18 integrin, dimeric MPO induces neutrophil activation and adhesion augmenting leukocyte accumulation at sites of inflammation. This study was performed to compare the potency of dimeric and monomeric MPO to elicit selected neutrophil responses. Monomeric MPO (hemi-MPO) was obtained by treating the dimeric MPO by reductive alkylation. Analysis of the crucial signal transducer, intracellular Ca2+, showed that dimeric MPO induces Ca2+ mobilization from the intracellular calcium stores of neutrophils and influx of extracellular Ca2+ whereas the effect of monomeric MPO on Ca2+ increase in neutrophils was less. It was also shown that monomeric MPO was less efficient than dimeric MPO at inducing actin cytoskeleton reorganization, cell survival, and neutrophil degranulation. Furthermore, we have detected monomeric MPO in the blood plasma of patients with acute inflammation. Our data suggest that the decomposition of dimeric MPO into monomers can serve as a regulatory mechanism that controls MPO-dependent activation of neutrophils and reduces the proinflammatory effects of MPO.

Publisher

Canadian Science Publishing

Subject

Cell Biology,Molecular Biology,Biochemistry

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