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Published on: June 29, 2015
Cardiac Myosin Promotes Thrombin Generation and Coagulation In Vitro and In Vivo
Jevgenia Zilberman-Rudenko1,2, Hiroshi Deguchi1, Meenal Shukla1
1From the Department of Molecular Medicine, The Scripps Research Institute, La Jolla, CA (J.Z.-R., H.D., M.S., J.N.O., Z.G., T.W., L.O.M., Z.M.R., J.H.G.).
Insights
Cardiac myosin (CM) promotes blood clot formation and enhances bleeding control. This myosin also increases heart damage in injury models but shows antifibrinolytic effects by boosting thrombin generation.
Area of Science:
- Biochemistry
- Hematology
- Cardiovascular Science
Background:
- Cardiac myosin (CM) shares structural similarities with skeletal muscle myosin, known for its procoagulant activity.
- Understanding CM's role in hemostasis and thrombosis is crucial for potential therapeutic applications.
Purpose of the Study:
- To evaluate the ex vivo, in vivo, and in vitro activities of cardiac myosin related to hemostasis and thrombosis.
- To elucidate the mechanisms underlying CM's procoagulant and antifibrinolytic properties.
Main Methods:
- Blood perfusion over CM-coated surfaces to assess thrombus formation.
- Murine models for ischemia/reperfusion injury and hemophilia A to evaluate in vivo effects.
- Thrombin generation assays and factor binding studies to determine mechanisms of action.
- Tissue-type plasminogen activator (tPA)-induced clot lysis assays to assess fibrinolytic activity.
Main Results:
- CM coating induced thrombus formation and fibrin deposition ex vivo.
- Intravenous CM administration augmented myocardial infarction in a murine model.
- CM administration reduced bleeding in hemophilia A mice, demonstrating prohemostatic effects.
- In vitro, CM enhanced thrombin generation and directly bound factor Xa, facilitating prothrombinase assembly.
- CM exhibited antifibrinolytic activity by enhancing TAFI activation via thrombin generation.
Conclusions:
- Cardiac myosin exhibits procoagulant and prothrombotic activities in vitro.
- In vivo, CM can exacerbate myocardial damage but also acts as a prohemostatic agent.
- CM's procoagulant and antifibrinolytic effects are partly mediated by factor Xa binding and enhanced thrombin generation.
Objective:
Cardiac myosin (CM) is structurally similar to skeletal muscle myosin, which has procoagulant activity. Here, we evaluated CM's ex vivo, in vivo, and in vitro activities related to hemostasis and thrombosis. Approach and Results: Perfusion of fresh human blood over CM-coated surfaces caused thrombus formation and fibrin deposition. Addition of CM to blood passing over collagen-coated surfaces enhanced fibrin formation. In a murine ischemia/reperfusion injury model, exogenous CM, when administered intravenously, augmented myocardial infarction and troponin I release. In hemophilia A mice, intravenously administered CM reduced tail-cut-initiated bleeding. These data provide proof of concept for CM's in vivo procoagulant properties. In vitro studies clarified some mechanisms for CM's procoagulant properties. Thrombin generation assays showed that CM, like skeletal muscle myosin, enhanced thrombin generation in human platelet-rich and platelet-poor plasmas and also in mixtures of purified factors Xa, Va, and prothrombin. Binding studies showed that CM, like skeletal muscle myosin, directly binds factor Xa, supporting the concept that the CM surface is a site for prothrombinase assembly. In tPA (tissue-type plasminogen activator)-induced plasma clot lysis assays, CM was antifibrinolytic due to robust CM-dependent thrombin generation that enhanced activation of TAFI (thrombin activatable fibrinolysis inhibitor).
Conclusions:
CM in vitro is procoagulant and prothrombotic. CM in vivo can augment myocardial damage and can be prohemostatic in the presence of bleeding. CM's procoagulant and antifibrinolytic activities likely involve, at least in part, its ability to bind factor Xa and enhance thrombin generation. Future work is needed to clarify CM's pathophysiology and its mechanistic influences on hemostasis or thrombosis.
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