Literature DB >> 20409484

Stiffening of individual fibrin fibers equitably distributes strain and strengthens networks.

Nathan E Hudson1, John R Houser, E Timothy O'Brien, Russell M Taylor, Richard Superfine, Susan T Lord, Michael R Falvo.   

Abstract

As the structural backbone of blood clots, fibrin networks carry out the mechanical task of stemming blood flow at sites of vascular injury. These networks exhibit a rich set of remarkable mechanical properties, but a detailed picture relating the microscopic mechanics of the individual fibers to the overall network properties has not been fully developed. In particular, how the high strain and failure characteristics of single fibers affect the overall strength of the network is not known. Using a combined fluorescence/atomic force microscope nanomanipulation system, we stretched 2-D fibrin networks to the point of failure, while recording the strain of individual fibers. Our results were compared to a pair of model networks: one composed of linearly responding elements and a second of nonlinear, strain-stiffening elements. We find that strain-stiffening of the individual fibers is necessary to explain the pattern of strain propagation throughout the network that we observe in our experiments. Fiber strain-stiffening acts to distribute strain more equitably within the network, reduce strain maxima, and increase network strength. Along with its physiological implications, a detailed understanding of this strengthening mechanism may lead to new design strategies for engineered polymeric materials. Copyright 2010 Biophysical Society. Published by Elsevier Inc. All rights reserved.

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Year:  2010        PMID: 20409484      PMCID: PMC2856168          DOI: 10.1016/j.bpj.2009.12.4312

Source DB:  PubMed          Journal:  Biophys J        ISSN: 0006-3495            Impact factor:   4.033


  35 in total

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2.  Strain hardening of actin filament networks. Regulation by the dynamic cross-linking protein alpha-actinin.

Authors:  J Xu; Y Tseng; D Wirtz
Journal:  J Biol Chem       Date:  2000-11-17       Impact factor: 5.157

3.  Elastic behavior of cross-linked and bundled actin networks.

Authors:  M L Gardel; J H Shin; F C MacKintosh; L Mahadevan; P Matsudaira; D A Weitz
Journal:  Science       Date:  2004-05-28       Impact factor: 47.728

Review 4.  A comparison of the mechanical and structural properties of fibrin fibers with other protein fibers.

Authors:  M Guthold; W Liu; E A Sparks; L M Jawerth; L Peng; M Falvo; R Superfine; R R Hantgan; S T Lord
Journal:  Cell Biochem Biophys       Date:  2007-10-02       Impact factor: 2.194

5.  Molecular basis of fibrin clot elasticity.

Authors:  Bernard B C Lim; Eric H Lee; Marcos Sotomayor; Klaus Schulten
Journal:  Structure       Date:  2008-02-21       Impact factor: 5.006

6.  Complexity of "A-a" knob-hole fibrin interaction revealed by atomic force spectroscopy.

Authors:  Laurel E Averett; Carri B Geer; Ryan R Fuierer; Boris B Akhremitchev; Oleg V Gorkun; Mark H Schoenfisch
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7.  The molecular elasticity of the extracellular matrix protein tenascin.

Authors:  A F Oberhauser; P E Marszalek; H P Erickson; J M Fernandez
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Authors:  O V Gorkun; Y I Veklich; J W Weisel; S T Lord
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9.  Length of tandem repeats in fibrin's alphaC region correlates with fiber extensibility.

Authors:  M R Falvo; D Millard; E T O'Brien; R Superfine; S T Lord
Journal:  J Thromb Haemost       Date:  2008-08-28       Impact factor: 5.824

10.  Role of intermolecular forces in defining material properties of protein nanofibrils.

Authors:  Tuomas P Knowles; Anthony W Fitzpatrick; Sarah Meehan; Helen R Mott; Michele Vendruscolo; Christopher M Dobson; Mark E Welland
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  32 in total

1.  Spatiotemporal control of micromechanics and microstructure in acoustically-responsive scaffolds using acoustic droplet vaporization.

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Journal:  Soft Matter       Date:  2020-07-22       Impact factor: 3.679

2.  Mechanism of fibrin(ogen) forced unfolding.

Authors:  Artem Zhmurov; Andre E X Brown; Rustem I Litvinov; Ruxandra I Dima; John W Weisel; Valeri Barsegov
Journal:  Structure       Date:  2011-11-09       Impact factor: 5.006

3.  Evidence that αC region is origin of low modulus, high extensibility, and strain stiffening in fibrin fibers.

Authors:  John R Houser; Nathan E Hudson; Lifang Ping; E Timothy O'Brien; Richard Superfine; Susan T Lord; Michael R Falvo
Journal:  Biophys J       Date:  2010-11-03       Impact factor: 4.033

4.  Submillisecond elastic recoil reveals molecular origins of fibrin fiber mechanics.

Authors:  Nathan E Hudson; Feng Ding; Igal Bucay; E Timothy O'Brien; Oleg V Gorkun; Richard Superfine; Susan T Lord; Nikolay V Dokholyan; Michael R Falvo
Journal:  Biophys J       Date:  2013-06-18       Impact factor: 4.033

5.  Foam-like compression behavior of fibrin networks.

Authors:  Oleg V Kim; Xiaojun Liang; Rustem I Litvinov; John W Weisel; Mark S Alber; Prashant K Purohit
Journal:  Biomech Model Mechanobiol       Date:  2015-05-16

6.  Elastic behavior and platelet retraction in low- and high-density fibrin gels.

Authors:  Adam R Wufsus; Kuldeepsinh Rana; Andrea Brown; John R Dorgan; Matthew W Liberatore; Keith B Neeves
Journal:  Biophys J       Date:  2015-01-06       Impact factor: 4.033

7.  Contribution of nascent cohesive fiber-fiber interactions to the non-linear elasticity of fibrin networks under tensile load.

Authors:  Samuel Britton; Oleg Kim; Francesco Pancaldi; Zhiliang Xu; Rustem I Litvinov; John W Weisel; Mark Alber
Journal:  Acta Biomater       Date:  2019-05-30       Impact factor: 8.947

8.  Structural basis for the nonlinear mechanics of fibrin networks under compression.

Authors:  Oleg V Kim; Rustem I Litvinov; John W Weisel; Mark S Alber
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9.  Model predictions of deformation, embolization and permeability of partially obstructive blood clots under variable shear flow.

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10.  Compression-induced structural and mechanical changes of fibrin-collagen composites.

Authors:  O V Kim; R I Litvinov; J Chen; D Z Chen; J W Weisel; M S Alber
Journal:  Matrix Biol       Date:  2016-10-15       Impact factor: 11.583

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