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MPO (Myeloperoxidase) Reduces Endothelial Glycocalyx Thickness Dependent on Its Cationic Charge
Kashish Manchanda1,2,3, Hana Kolarova4,5, Christina Kerkenpaß1,2
1From the Department of Cardiology, Heart Center, University of Cologne, Germany (K.M., C.K., M.M., V.R., S.B., M.A., A.K.).
Abstract:
Objective- The leukocyte heme-enzyme MPO (myeloperoxidase) exerts proinflammatory effects on the vascular system primarily linked to its catalytic properties. Recent studies have shown that MPO, depending on its cationic charge, mediates neutrophil recruitment and activation. Here, we further investigated MPO's extracatalytic properties and its effect on endothelial glycocalyx (EG) integrity. Approach and Results- In vivo staining of murine cremaster muscle vessels with Alcian Blue 8GX provided evidence of an MPO-dependent decrease in anionic charge of the EG. MPO binding to the glycocalyx was further characterized using Chinese hamster ovary cells and its glycosaminoglycan mutants-pgsA-745 (mutant Chinese hamster ovary cells lacking heparan sulfate and chondroitin sulfate glycosaminoglycan) and pgsD-677 (mutant Chinese hamster ovary cells lacking heparan sulfate glycosaminoglycan), which revealed heparan sulfate as the main mediator of MPO binding. Further, EG integrity was assessed in terms of thickness using intravital microscopy of murine cremaster muscle. A significant reduction in EG thickness was observed on infusion of catalytically active MPO, as well as mutant inactive MPO and cationic polymer polylysine. Similar effects were also observed in wild-type mice after a local inflammatory stimulus but not in MPO-knockout mice. The reduction in EG thickness was reversed after removal of vessel-bound MPO, suggesting a possible physical collapse of the EG. Last, experiments with in vivo neutrophil depletion revealed that MPO also induced neutrophil-mediated shedding of the EG core protein, Sdc1 (syndecan-1). Conclusions- These findings provide evidence that MPO, via ionic interaction with heparan sulfate side chains, can cause neutrophil-dependent Sdc1 shedding and collapse of the EG structure.
Insights
Myeloperoxidase (MPO) damages the endothelial glycocalyx (EG) by binding to heparan sulfate, causing EG collapse and neutrophil-mediated shedding of syndecan-1. This highlights MPO
Area of Science:
- Vascular Biology
- Inflammation Research
- Biochemistry
Background:
- Leukocyte myeloperoxidase (MPO) has known proinflammatory effects on the vascular system, primarily through its catalytic activity.
- Previous research indicates MPO's cationic charge mediates neutrophil recruitment and activation.
- The extracatalytic properties of MPO and their impact on endothelial glycocalyx (EG) integrity require further investigation.
Purpose of the Study:
- To investigate the extracatalytic properties of myeloperoxidase (MPO).
- To determine the effect of MPO on endothelial glycocalyx (EG) integrity.
- To elucidate the mechanisms by which MPO influences EG structure and function.
Main Methods:
- In vivo staining of murine cremaster muscle vessels with Alcian Blue 8GX to assess EG anionic charge.
- Characterization of MPO binding to Chinese hamster ovary cells and glycosaminoglycan mutants (pgsA-745, pgsD-677).
- Intravital microscopy to measure EG thickness in murine cremaster muscle following MPO infusion or inflammatory stimulus.
- Experiments involving neutrophil depletion and removal of vessel-bound MPO.
- Assessment of syndecan-1 (Sdc1) shedding.
Main Results:
- MPO binding to the endothelial glycocalyx (EG) was primarily mediated by heparan sulfate.
- Infusion of active MPO, inactive MPO, and polylysine significantly reduced EG thickness in wild-type mice.
- MPO induced neutrophil-mediated shedding of the EG core protein, syndecan-1 (Sdc1).
Conclusions:
- Myeloperoxidase (MPO) directly impacts endothelial glycocalyx (EG) integrity through ionic interactions with heparan sulfate.
- MPO binding leads to EG collapse and contributes to neutrophil-mediated syndecan-1 shedding.
- These findings reveal a novel mechanism of MPO-induced vascular inflammation independent of its catalytic activity.
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