Fibrin protofibril packing and clot stability are enhanced by extended knob-hole interactions and catch-slip bonds

Author:

Asquith Nathan L.12ORCID,Duval Cédric1ORCID,Zhmurov Artem345,Baker Stephen R.1,McPherson Helen R.1,Domingues Marco M.16ORCID,Connell Simon D. A.7ORCID,Barsegov Valeri8ORCID,Ariëns Robert A. S.1ORCID

Affiliation:

1. 1Discovery and Translational Science Department, Leeds Institute of Cardiovascular and Metabolic Medicine, School of Medicine, University of Leeds, Leeds, United Kingdom;

2. 2Vascular Biology Program, Karp Research Laboratories, Boston Children’s Hospital, Harvard Medical School, Boston, MA;

3. 3The EuroCC National Competence Center Sweden, Stockholm, Sweden;

4. 4PDC Center for High Performance Computing, KTH Royal Institute of Technology, Stockholm, Sweden;

5. 5Science for Life Laboratory, Solna, Sweden;

6. 6Institute of Molecular Medicine, Faculty of Medicine, University of Lisbon, Lisbon, Portugal;

7. 7Molecular and Nanoscale Physics Group, School of Physics and Astronomy, University of Leeds, Leeds, United Kingdom; and

8. 8Department of Chemistry, University of Massachusetts, Lowell, MA

Abstract

Abstract Fibrin polymerization involves thrombin-mediated exposure of knobs on one monomer that bind to holes available on another, leading to the formation of fibers. In silico evidence has suggested that the classical A:a knob-hole interaction is enhanced by surrounding residues not directly involved in the binding pocket of hole a, via noncovalent interactions with knob A. We assessed the importance of extended knob-hole interactions by performing biochemical, biophysical, and in silico modeling studies on recombinant human fibrinogen variants with mutations at residues responsible for the extended interactions. Three single fibrinogen variants, γD297N, γE323Q, and γK356Q, and a triple variant γDEK (γD297N/γE323Q/γK356Q) were produced in a CHO (Chinese Hamster Ovary) cell expression system. Longitudinal protofibril growth probed by atomic force microscopy was disrupted for γD297N and enhanced for the γK356Q mutation. Initial polymerization rates were reduced for all variants in turbidimetric studies. Laser scanning confocal microscopy showed that γDEK and γE323Q produced denser clots, whereas γD297N and γK356Q were similar to wild type. Scanning electron microscopy and light scattering studies showed that fiber thickness and protofibril packing of the fibers were reduced for all variants. Clot viscoelastic analysis showed that only γDEK was more readily deformable. In silico modeling suggested that most variants displayed only slip-bond dissociation kinetics compared with biphasic catch-slip kinetics characteristics of wild type. These data provide new evidence for the role of extended interactions in supporting the classical knob-hole bonds involving catch-slip behavior in fibrin formation, clot structure, and clot mechanics.

Publisher

American Society of Hematology

Subject

Hematology

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