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Updated: Sep 27, 2026

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Published on: February 4, 2021
Myosin: a noncovalent stabilizer of fibrin in the process of clot dissolution
Krasimir Kolev1, Kiril Tenekedjiev, Katalin Ajtai
1Department of Medical Biochemistry, Semmelweis University, Budapest, Hungary.
Abstract:
Myosin modulates the fibrinolytic process as a cofactor of the tissue plasminogen activator and as a substrate of plasmin. We report now that myosin is present in arterial thrombi and it forms reversible noncovalent complexes with fibrinogen and fibrin with equilibrium dissociation constants in the micromolar range (1.70 and 0.94 microM, respectively). Competition studies using a peptide inhibitor of fibrin polymerization (glycl-prolyl-arginyl-proline [GPRP]) indicate that myosin interacts with domains common in fibrinogen and fibrin and this interaction is independent of the GPRP-binding polymerization site in the fibrinogen molecule. An association rate constant of 1.81 x 10(2) M(-1) x s(-1) and a dissociation rate constant of 3.07 x 10(-4) s(-1) are determined for the fibrinogen-myosin interaction. Surface plasmon resonance studies indicate that fibrin serves as a matrix core for myosin aggregation. The fibrin clots equilibrated with myosin are stabilized against dissolution initiated by plasminogen and tissue-type plasminogen activator (tPA) or urokinase (at fibrin monomer-myosin molar ratio as high as 30) and by plasmin under static and flow conditions (at fibrin monomer-myosin molar ratio lower than 15). Myosin exerts similar effects on the tPA-induced dissolution of blood plasma clots. Covalent modification involving factor XIIIa does not contribute to this stabilizing effect; myosin is not covalently attached to the clot by the time of complete cross-linking of fibrin. Thus, our in vitro data suggest that myosin detected in arterial thrombi binds to the polymerized fibrin, in the bound form its tPA-cofactor properties are masked, and the myosin fibrin clot is relatively resistant to plasmin.
Insights
Myosin in arterial thrombi binds to fibrin, stabilizing clots against dissolution. This interaction masks myosin's role in fibrinolysis, making clots more resistant to plasmin and tissue plasminogen activator (tPA).
Area of Science:
- Biochemistry
- Molecular Biology
- Cardiovascular Research
Background:
- Myosin is known to influence fibrinolysis, acting as a cofactor for tissue plasminogen activator (tPA) and a substrate for plasmin.
- The presence and role of myosin within arterial thrombi, particularly its interaction with fibrin, remain incompletely understood.
Purpose of the Study:
- To investigate the interaction between myosin and fibrinogen/fibrin in the context of arterial thrombi.
- To determine the impact of myosin binding on clot stability and susceptibility to fibrinolytic agents.
Main Methods:
- Characterization of myosin-fibrinogen and myosin-fibrin complex formation using equilibrium dissociation constants.
- Competition studies with glycyl-prolyl-arginyl-proline (GPRP) to identify myosin binding sites.
- Surface plasmon resonance to analyze fibrin as a matrix for myosin aggregation.
- Assessment of clot lysis under static and flow conditions using plasminogen, tPA, urokinase, and plasmin.
Main Results:
- Myosin forms reversible, noncovalent complexes with fibrinogen and fibrin in the micromolar range.
- Myosin binds to domains on fibrinogen/fibrin independent of the GPRP-binding polymerization site.
- Fibrin acts as a matrix for myosin aggregation, and myosin-bound clots show enhanced resistance to lysis by plasminogen/tPA, urokinase, and plasmin.
- This stabilization is not due to covalent modification by factor XIIIa.
Conclusions:
- Myosin present in arterial thrombi binds to polymerized fibrin.
- Bound myosin's cofactor activity for tPA is masked, contributing to clot stabilization.
- Myosin-bound fibrin clots exhibit increased resistance to fibrinolysis, suggesting a novel role in thrombosis.
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