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Granulocyte microvesicles with a high plasmin generation capacity promote clot lysis and improve outcome in septic
Sylvie Cointe1,2, Loris Vallier1, Pierre Esnault3
1Aix-Marseille University, C2VN, INSERM 1263, INRA 1260, Marseille, France.
Abstract:
Microvesicles (MVs) have previously been shown to exert profibrinolytic capacity, which is increased in patients with septic shock (SS) with a favorable outcome. We, therefore, hypothesized that the plasmin generation capacity (PGC) could confer to MVs a protective effect supported by their capacity to lyse a thrombus, and we investigated the mechanisms involved. Using an MV-PGC kinetic assay, ELISA, and flow cytometry, we found that granulocyte MVs (Gran-MVs) from SS patients display a heterogeneous PGC profile driven by the uPA (urokinase)/uPAR system. In vitro, these MVs lyse a thrombus according to their MV-PGC levels in a uPA/uPAR-dependent manner, as shown in a fluorescent clot lysis test and a lysis front retraction assay. Fibrinolytic activators conveyed by MVs contribute to approximately 30% of the plasma plasminogenolytic capacity of SS patients. In a murine model of SS, the injection of high PGC Gran-MVs significantly improved mouse survival and reduced the number of thrombi in vital organs. This was associated with a modification of the mouse coagulation and fibrinolysis properties toward a more fibrinolytic profile. Interestingly, mouse survival was not improved when soluble uPA was injected. Finally, using a multiplex array on plasma from SS patients, we found that neutrophil elastase correlates with the effect of high-PGC-capacity plasma and modulates the Gran-MV plasmin generation capacity by cleaving uPA-PAI-1 complexes. In conclusion, we show that the high PGC level displayed by Gran-MVs reduces thrombus formation and improves survival, conferring to Gran-MVs a protective role in a murine model of sepsis.
Insights
High plasmin generation capacity (PGC) in granulocyte microvesicles (Gran-MVs) from septic shock patients aids thrombus lysis and improves survival. This protective effect is linked to the urokinase/urokinase receptor system and neutrophil elastase activity.
Area of Science:
- Biomedical research
- Hematology
- Critical care medicine
Background:
- Microvesicles (MVs) possess profibrinolytic properties, notably elevated in septic shock (SS) patients with better outcomes.
- The plasmin generation capacity (PGC) of MVs may confer a protective effect by facilitating thrombus lysis.
Purpose of the Study:
- To investigate if MV-PGC contributes to a protective effect in SS.
- To elucidate the mechanisms underlying MV-mediated thrombus lysis and its role in sepsis.
Main Methods:
- MV-PGC kinetic assay, ELISA, and flow cytometry were used to analyze granulocyte MVs (Gran-MVs) from SS patients.
- In vitro clot lysis assays and a murine SS model were employed to assess the functional impact of Gran-MVs.
- Multiplex array analysis identified factors correlating with Gran-MV PGC and sepsis outcomes.
Main Results:
- Gran-MVs from SS patients exhibit heterogeneous PGC, primarily regulated by the urokinase/urokinase receptor (uPA/uPAR) system.
- In vitro, MVs with higher PGC levels demonstrated enhanced thrombus lysis in a uPA/uPAR-dependent manner.
- In vivo, administration of high PGC Gran-MVs significantly improved survival and reduced organ thrombi in a murine SS model.
- Neutrophil elastase was found to correlate with high-PGC plasma effects and modulate Gran-MV PGC by cleaving uPA-PAI-1 complexes.
Conclusions:
- High PGC levels in Gran-MVs confer a protective role in sepsis by promoting thrombus lysis and enhancing survival.
- The uPA/uPAR system and neutrophil elastase are key modulators of Gran-MV profibrinolytic activity in septic shock.
- Gran-MVs represent a potential therapeutic target for managing thrombosis in sepsis.
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