Literature DB >> 25222106

Fractal kinetic behavior of plasmin on the surface of fibrin meshwork.

Imre Varjú1, Kiril Tenekedjiev, Zsófia Keresztes, Andrea Edit Pap, László Szabó, Craig Thelwell, Colin Longstaff, Raymund Machovich, Krasimir Kolev.   

Abstract

Intravascular fibrin clots are resolved by plasmin acting at the interface of gel phasesubstrate and fluid-borne enzyme. The classic Michaelis.Menten kinetic scheme cannot describe satisfactorily this heterogeneous-phase proteolysis because it assumes homogeneous well-mixed conditions. A more suitable model for these spatial constraints,known as fractal kinetics, includes a time-dependence of the Michaelis coefficient Km(F) = Km0F (1+ t)h, where h is a fractal exponent of time, t. The aim of the present study was to build up and experimentally validate a mathematical model for surface-acting plasmin that can contribute to a better understanding of the factors that influence fibrinolytic rates. The kinetic model was fitted to turbidimetric data for fibrinolysis under various conditions. The model predicted Km0(F) = 1.98 μM and h = 0.25 for fibrin composed of thin fibers and Km0(F) = 5.01 μM and h = 0.16 for thick fibers in line with a slower macroscale lytic rate (due to a stronger clustering trend reflected in the h value) despite faster cleavage of individual thin fibers (seen as lower Km0(F) ). ε-Aminocaproic acid at 1 mM or 8 U/mL carboxypeptidase-B eliminated the time-dependence of Km F and increased the lysis rate suggesting a role of C-terminal lysines in the progressive clustering of plasmin. This fractal kinetic concept gained structural support from imaging techniques. Atomic force microscopy revealed significant changes in plasmin distribution on a patterned fibrinogen surface in line with the time-dependent clustering of fluorescent plasminogen in confocal laser microscopy. These data from complementary approaches support a mechanism for loss of plasmin activity resulting from C-terminal lysine-dependent redistribution of enzyme molecules on the fibrin surface.

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Year:  2014        PMID: 25222106     DOI: 10.1021/bi500661m

Source DB:  PubMed          Journal:  Biochemistry        ISSN: 0006-2960            Impact factor:   3.162


  5 in total

Review 1.  Bleeding related to disturbed fibrinolysis.

Authors:  Krasimir Kolev; Colin Longstaff
Journal:  Br J Haematol       Date:  2016-08-01       Impact factor: 6.998

2.  Molecular and Physical Mechanisms of Fibrinolysis and Thrombolysis from Mathematical Modeling and Experiments.

Authors:  Brittany E Bannish; Irina N Chernysh; James P Keener; Aaron L Fogelson; John W Weisel
Journal:  Sci Rep       Date:  2017-08-07       Impact factor: 4.379

Review 3.  Biophysical Mechanisms Mediating Fibrin Fiber Lysis.

Authors:  Nathan E Hudson
Journal:  Biomed Res Int       Date:  2017-05-28       Impact factor: 3.411

4.  Increased urokinase and consumption of α2 -antiplasmin as an explanation for the loss of benefit of tranexamic acid after treatment delay.

Authors:  C Longstaff; M Locke
Journal:  J Thromb Haemost       Date:  2018-12-13       Impact factor: 5.824

5.  Relative Centrifugal Force (RCF; G-Force) Affects the Distribution of TGF-β in PRF Membranes Produced Using Horizontal Centrifugation.

Authors:  Zahra Kargarpour; Jila Nasirzade; Layla Panahipour; Richard J Miron; Reinhard Gruber
Journal:  Int J Mol Sci       Date:  2020-10-15       Impact factor: 6.208

  5 in total

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