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Nonuniform Internal Structure of Fibrin Fibers: Protein Density and Bond Density Strongly Decrease with Increasing Diameter

The major structural component of a blood clot is a meshwork of fibrin fibers. It has long been thought that the internal structure of fibrin fibers is homogeneous; that is, the protein density and the bond density between protofibrils are uniform and do not depend on fiber diameter. We performed ex...

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Autores principales: Li, Wei, Sigley, Justin, Baker, Stephen R., Helms, Christine C., Kinney, Mary T., Pieters, Marlien, Brubaker, Peter H., Cubcciotti, Roger, Guthold, Martin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5654258/
https://www.ncbi.nlm.nih.gov/pubmed/29130043
http://dx.doi.org/10.1155/2017/6385628
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author Li, Wei
Sigley, Justin
Baker, Stephen R.
Helms, Christine C.
Kinney, Mary T.
Pieters, Marlien
Brubaker, Peter H.
Cubcciotti, Roger
Guthold, Martin
author_facet Li, Wei
Sigley, Justin
Baker, Stephen R.
Helms, Christine C.
Kinney, Mary T.
Pieters, Marlien
Brubaker, Peter H.
Cubcciotti, Roger
Guthold, Martin
author_sort Li, Wei
collection PubMed
description The major structural component of a blood clot is a meshwork of fibrin fibers. It has long been thought that the internal structure of fibrin fibers is homogeneous; that is, the protein density and the bond density between protofibrils are uniform and do not depend on fiber diameter. We performed experiments to investigate the internal structure of fibrin fibers. We formed fibrin fibers with fluorescently labeled fibrinogen and determined the light intensity of a fiber, I, as a function of fiber diameter, D. The intensity and, thus, the total number of fibrin molecules in a cross-section scaled as D(1.4). This means that the protein density (fibrin per cross-sectional area), ρ(p), is not homogeneous but instead strongly decreases with fiber diameter as D(−0.6). Thinner fibers are denser than thicker fibers. We also determined Young's modulus, Y, as a function of fiber diameter. Y decreased strongly with increasing D; Y scaled as D(−1.5). This implies that the bond density, ρ(b), also scales as D(−1.5). Thinner fibers are stiffer than thicker fibers. Our data suggest that fibrin fibers have a dense, well-connected core and a sparse, loosely connected periphery. In contrast, electrospun fibrinogen fibers, used as a control, have a homogeneous cross-section.
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spelling pubmed-56542582017-11-12 Nonuniform Internal Structure of Fibrin Fibers: Protein Density and Bond Density Strongly Decrease with Increasing Diameter Li, Wei Sigley, Justin Baker, Stephen R. Helms, Christine C. Kinney, Mary T. Pieters, Marlien Brubaker, Peter H. Cubcciotti, Roger Guthold, Martin Biomed Res Int Research Article The major structural component of a blood clot is a meshwork of fibrin fibers. It has long been thought that the internal structure of fibrin fibers is homogeneous; that is, the protein density and the bond density between protofibrils are uniform and do not depend on fiber diameter. We performed experiments to investigate the internal structure of fibrin fibers. We formed fibrin fibers with fluorescently labeled fibrinogen and determined the light intensity of a fiber, I, as a function of fiber diameter, D. The intensity and, thus, the total number of fibrin molecules in a cross-section scaled as D(1.4). This means that the protein density (fibrin per cross-sectional area), ρ(p), is not homogeneous but instead strongly decreases with fiber diameter as D(−0.6). Thinner fibers are denser than thicker fibers. We also determined Young's modulus, Y, as a function of fiber diameter. Y decreased strongly with increasing D; Y scaled as D(−1.5). This implies that the bond density, ρ(b), also scales as D(−1.5). Thinner fibers are stiffer than thicker fibers. Our data suggest that fibrin fibers have a dense, well-connected core and a sparse, loosely connected periphery. In contrast, electrospun fibrinogen fibers, used as a control, have a homogeneous cross-section. Hindawi 2017 2017-10-10 /pmc/articles/PMC5654258/ /pubmed/29130043 http://dx.doi.org/10.1155/2017/6385628 Text en Copyright © 2017 Wei Li et al. https://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Li, Wei
Sigley, Justin
Baker, Stephen R.
Helms, Christine C.
Kinney, Mary T.
Pieters, Marlien
Brubaker, Peter H.
Cubcciotti, Roger
Guthold, Martin
Nonuniform Internal Structure of Fibrin Fibers: Protein Density and Bond Density Strongly Decrease with Increasing Diameter
title Nonuniform Internal Structure of Fibrin Fibers: Protein Density and Bond Density Strongly Decrease with Increasing Diameter
title_full Nonuniform Internal Structure of Fibrin Fibers: Protein Density and Bond Density Strongly Decrease with Increasing Diameter
title_fullStr Nonuniform Internal Structure of Fibrin Fibers: Protein Density and Bond Density Strongly Decrease with Increasing Diameter
title_full_unstemmed Nonuniform Internal Structure of Fibrin Fibers: Protein Density and Bond Density Strongly Decrease with Increasing Diameter
title_short Nonuniform Internal Structure of Fibrin Fibers: Protein Density and Bond Density Strongly Decrease with Increasing Diameter
title_sort nonuniform internal structure of fibrin fibers: protein density and bond density strongly decrease with increasing diameter
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5654258/
https://www.ncbi.nlm.nih.gov/pubmed/29130043
http://dx.doi.org/10.1155/2017/6385628
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