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Updated: Jul 10, 2025

Fast and Specific Assessment of the Halogenating Peroxidase Activity in Leukocyte-enriched Blood Samples
Published on: July 28, 2016
Multi-Oxidant Environment as a Suicidal Inhibitor of Myeloperoxidase
Ramona Clemen1, Lara Minkus1, Debora Singer1,2
1ZIK plasmatis, Leibniz Institute for Plasma Science and Technology (INP), Felix-Hausdorff-Str. 2, 17489 Greifswald, Germany.
Abstract:
Tissue inflammation drives the infiltration of innate immune cells that generate reactive species to kill bacteria and recruit adaptive immune cells. Neutrophil activation fosters the release of myeloperoxidase (MPO) enzyme, a heme-containing protein generating hypochlorous acid (HOCl) from hydrogen peroxide (H2O2) and chloride ions. MPO-dependent oxidant formation initiates bioactive oxidation and chlorination products and induces oxidative post-translational modifications (oxPTMs) on proteins and lipid oxidation. Besides HOCl and H2O2, further reactive species such as singlet oxygen and nitric oxide are generated in inflammation, leading to modified proteins, potentially resulting in their altered bioactivity. So far, knowledge about multiple free radical-induced modifications of MPO and its effects on HOCl generation is lacking. To mimic this multi-oxidant microenvironment, human MPO was exposed to several reactive species produced simultaneously via argon plasma operated at body temperature. Several molecular gas admixes were used to modify the reactive species type profiles generated. MPO was investigated by studying its oxPTMs, changes in protein structure, and enzymatic activity. MPO activity was significantly reduced after treatment with all five tested plasma gas conditions. Dynamic light scattering and CD-spectroscopy revealed altered MPO protein morphology indicative of oligomerization. Using mass spectrometry, various oxPTMs, such as +1O, +2O, and +3O, were determined on methionine and cysteine (Cys), and -1H-1N+1O was detected in asparagine (Asp). The modification types identified differed between argon-oxygen and argon-nitrogen plasmas. However, all plasma gas conditions led to the deamidation of Asp and oxidation of Cys residues, suggesting an inactivation of MPO due to oxPTM-mediated conformational changes.
Insights
Inflammation involves reactive species that modify proteins. This study shows that exposing myeloperoxidase (MPO) to plasma-generated reactive species inactivates its enzyme activity by causing oxidative post-translational modifications.
Area of Science:
- Biochemistry
- Immunology
- Plasma Medicine
Background:
- Tissue inflammation involves innate immune cells generating reactive species.
- Neutrophils release myeloperoxidase (MPO), producing hypochlorous acid (HOCl) and other oxidants.
- The effects of multiple reactive species on MPO function are not well understood.
Purpose of the Study:
- To investigate the impact of a multi-oxidant environment on human MPO.
- To analyze MPO's oxidative post-translational modifications (oxPTMs) and structural changes.
- To determine the effect of these modifications on MPO enzymatic activity.
Main Methods:
- Human MPO was exposed to reactive species generated by argon plasma at body temperature.
- Various gas mixtures were used to create different reactive species profiles.
- MPO was analyzed using dynamic light scattering, CD-spectroscopy, and mass spectrometry to assess oxPTMs, structure, and activity.
Main Results:
- MPO activity was significantly reduced across all tested plasma conditions.
- Protein structure analysis indicated MPO oligomerization.
- Mass spectrometry identified various oxPTMs, including methionine and cysteine oxidation and asparagine deamidation, correlating with MPO inactivation.
Conclusions:
- Plasma-generated reactive species induce significant oxPTMs on MPO.
- These modifications, particularly cysteine oxidation and asparagine deamidation, lead to conformational changes and MPO inactivation.
- This highlights the potential of plasma for modulating MPO activity in inflammatory conditions.
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