Carbon monoxide-releasing molecule 3 inhibits myeloperoxidase (MPO) and protects against MPO-induced vascular
Eric K Patterson1, Douglas D Fraser2, Alfredo Capretta3
1Centre for Critical Illness Research, Lawson Health Research Institute, London, ON N6A 4G4, Canada.
Abstract:
Polymorphonuclear leukocyte (PMN)-derived myeloperoxidase (MPO) contributes to the pathophysiology of numerous systemic inflammatory disorders through: (1) direct peroxidation of targets and (2) production of strong oxidizing compounds, e.g., hypohalous acids, particularly hypochlorous acid, which furthers oxidant damage and contributes to the propagation of inflammation and tissue injury/dysfunction. Carbon monoxide-releasing molecules (CORMs) offer potent anti-inflammatory effects; however, the mechanism(s) of action is not fully understood. This study assessed the potential of MPO activity inhibition by a water-soluble CORM, CORM-3. To this end, we used in vitro assays to study CORM-3-dependent modulation of MPO activity with respect to: (1) the inhibition of MPO's catalytic activity generally and (2) the specific inhibition of MPO's peroxidation and halogenation (i.e., production of hypochlorous acid) reactions. Further, we employed primary human umbilical vein endothelial cells (HUVECs) to investigate MPO-dependent cellular activation and dysfunction by measuring intracellular oxidant stress (DHR-123 oxidation) and HUVEC permeability (flux of Texas red-dextran), respectively. The results indicate that CORM-3 significantly inhibits MPO activity as well as MPO's peroxidation and hypohalous acid cycles specifically (p<0.05 vs uninhibited MPO). In addition, CORM-3 significantly decreases PMN homogenate- or rhMPO-induced intracellular DHR-123 oxidation in HUVECs and rhMPO-induced HUVEC monolayer permeability (p<0.05 vs untreated). In all assays the inactivated CORM-3 was significantly less effective than CORM-3 (p<0.05). Taken together our findings indicate that CORM-3 is a novel MPO inhibitor and mitigates inflammatory damage at least in part through a mechanism involving the inhibition of neutrophilic MPO activity.
Insights
Carbon monoxide-releasing molecule-3 (CORM-3) effectively inhibits myeloperoxidase (MPO) activity, reducing MPO-driven inflammation and cellular damage. This study demonstrates CORM-3
Area of Science:
- Biochemistry
- Cell Biology
- Pharmacology
Background:
- Myeloperoxidase (MPO) from polymorphonuclear leukocytes (PMNs) drives systemic inflammation and tissue injury via peroxidation and oxidant production.
- Carbon monoxide-releasing molecules (CORMs) exhibit anti-inflammatory properties, but their precise mechanisms, particularly regarding MPO inhibition, remain unclear.
Purpose of the Study:
- To investigate the potential of a water-soluble CORM, CORM-3, to inhibit MPO activity.
- To elucidate CORM-3's specific effects on MPO's catalytic, peroxidation, and halogenation reactions.
- To assess CORM-3's impact on MPO-induced endothelial cell activation and dysfunction.
Main Methods:
- In vitro assays to measure CORM-3's inhibition of MPO catalytic activity, peroxidation, and hypohalous acid production.
- Primary human umbilical vein endothelial cells (HUVECs) were used to assess MPO-dependent intracellular oxidant stress (DHR-123 oxidation).
- HUVEC monolayer permeability was measured using Texas red-dextran flux to evaluate cellular dysfunction.
Main Results:
- CORM-3 significantly inhibited MPO activity, including its peroxidation and hypohalous acid production cycles (p<0.05).
- CORM-3 markedly reduced MPO-induced intracellular oxidant stress and HUVEC monolayer permeability (p<0.05).
- Inactivated CORM-3 showed significantly less efficacy than active CORM-3 across all assays (p<0.05).
Conclusions:
- CORM-3 represents a novel inhibitor of myeloperoxidase.
- CORM-3 mitigates inflammatory damage, partly by inhibiting neutrophilic MPO activity.
- This mechanism highlights CORM-3's therapeutic potential in inflammatory disorders driven by MPO.
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