Cargando…

Microfibril Orientation Dominates the Microelastic Properties of Human Bone Tissue at the Lamellar Length Scale

The elastic properties of bone tissue determine the biomechanical behavior of bone at the organ level. It is now widely accepted that the nanoscale structure of bone plays an important role to determine the elastic properties at the tissue level. Hence, in addition to the mineral density, the struct...

Descripción completa

Detalles Bibliográficos
Autores principales: Granke, Mathilde, Gourrier, Aurélien, Rupin, Fabienne, Raum, Kay, Peyrin, Françoise, Burghammer, Manfred, Saïed, Amena, Laugier, Pascal
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3589472/
https://www.ncbi.nlm.nih.gov/pubmed/23472132
http://dx.doi.org/10.1371/journal.pone.0058043
_version_ 1782261742119682048
author Granke, Mathilde
Gourrier, Aurélien
Rupin, Fabienne
Raum, Kay
Peyrin, Françoise
Burghammer, Manfred
Saïed, Amena
Laugier, Pascal
author_facet Granke, Mathilde
Gourrier, Aurélien
Rupin, Fabienne
Raum, Kay
Peyrin, Françoise
Burghammer, Manfred
Saïed, Amena
Laugier, Pascal
author_sort Granke, Mathilde
collection PubMed
description The elastic properties of bone tissue determine the biomechanical behavior of bone at the organ level. It is now widely accepted that the nanoscale structure of bone plays an important role to determine the elastic properties at the tissue level. Hence, in addition to the mineral density, the structure and organization of the mineral nanoparticles and of the collagen microfibrils appear as potential key factors governing the elasticity. Many studies exist on the role of the organization of collagen microfibril and mineral nanocrystals in strongly remodeled bone. However, there is no direct experimental proof to support the theoretical calculations. Here, we provide such evidence through a novel approach combining several high resolution imaging techniques: scanning acoustic microscopy, quantitative scanning small-Angle X-ray scattering imaging and synchrotron radiation computed microtomography. We find that the periodic modulations of elasticity across osteonal bone are essentially determined by the orientation of the mineral nanoparticles and to a lesser extent only by the particle size and density. Based on the strong correlation between the orientation of the mineral nanoparticles and the collagen molecules, we conclude that the microfibril orientation is the main determinant of the observed undulations of microelastic properties in regions of constant mineralization in osteonal lamellar bone. This multimodal approach could be applied to a much broader range of fibrous biological materials for the purpose of biomimetic technologies.
format Online
Article
Text
id pubmed-3589472
institution National Center for Biotechnology Information
language English
publishDate 2013
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-35894722013-03-07 Microfibril Orientation Dominates the Microelastic Properties of Human Bone Tissue at the Lamellar Length Scale Granke, Mathilde Gourrier, Aurélien Rupin, Fabienne Raum, Kay Peyrin, Françoise Burghammer, Manfred Saïed, Amena Laugier, Pascal PLoS One Research Article The elastic properties of bone tissue determine the biomechanical behavior of bone at the organ level. It is now widely accepted that the nanoscale structure of bone plays an important role to determine the elastic properties at the tissue level. Hence, in addition to the mineral density, the structure and organization of the mineral nanoparticles and of the collagen microfibrils appear as potential key factors governing the elasticity. Many studies exist on the role of the organization of collagen microfibril and mineral nanocrystals in strongly remodeled bone. However, there is no direct experimental proof to support the theoretical calculations. Here, we provide such evidence through a novel approach combining several high resolution imaging techniques: scanning acoustic microscopy, quantitative scanning small-Angle X-ray scattering imaging and synchrotron radiation computed microtomography. We find that the periodic modulations of elasticity across osteonal bone are essentially determined by the orientation of the mineral nanoparticles and to a lesser extent only by the particle size and density. Based on the strong correlation between the orientation of the mineral nanoparticles and the collagen molecules, we conclude that the microfibril orientation is the main determinant of the observed undulations of microelastic properties in regions of constant mineralization in osteonal lamellar bone. This multimodal approach could be applied to a much broader range of fibrous biological materials for the purpose of biomimetic technologies. Public Library of Science 2013-03-05 /pmc/articles/PMC3589472/ /pubmed/23472132 http://dx.doi.org/10.1371/journal.pone.0058043 Text en © 2013 Granke et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Granke, Mathilde
Gourrier, Aurélien
Rupin, Fabienne
Raum, Kay
Peyrin, Françoise
Burghammer, Manfred
Saïed, Amena
Laugier, Pascal
Microfibril Orientation Dominates the Microelastic Properties of Human Bone Tissue at the Lamellar Length Scale
title Microfibril Orientation Dominates the Microelastic Properties of Human Bone Tissue at the Lamellar Length Scale
title_full Microfibril Orientation Dominates the Microelastic Properties of Human Bone Tissue at the Lamellar Length Scale
title_fullStr Microfibril Orientation Dominates the Microelastic Properties of Human Bone Tissue at the Lamellar Length Scale
title_full_unstemmed Microfibril Orientation Dominates the Microelastic Properties of Human Bone Tissue at the Lamellar Length Scale
title_short Microfibril Orientation Dominates the Microelastic Properties of Human Bone Tissue at the Lamellar Length Scale
title_sort microfibril orientation dominates the microelastic properties of human bone tissue at the lamellar length scale
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3589472/
https://www.ncbi.nlm.nih.gov/pubmed/23472132
http://dx.doi.org/10.1371/journal.pone.0058043
work_keys_str_mv AT grankemathilde microfibrilorientationdominatesthemicroelasticpropertiesofhumanbonetissueatthelamellarlengthscale
AT gourrieraurelien microfibrilorientationdominatesthemicroelasticpropertiesofhumanbonetissueatthelamellarlengthscale
AT rupinfabienne microfibrilorientationdominatesthemicroelasticpropertiesofhumanbonetissueatthelamellarlengthscale
AT raumkay microfibrilorientationdominatesthemicroelasticpropertiesofhumanbonetissueatthelamellarlengthscale
AT peyrinfrancoise microfibrilorientationdominatesthemicroelasticpropertiesofhumanbonetissueatthelamellarlengthscale
AT burghammermanfred microfibrilorientationdominatesthemicroelasticpropertiesofhumanbonetissueatthelamellarlengthscale
AT saiedamena microfibrilorientationdominatesthemicroelasticpropertiesofhumanbonetissueatthelamellarlengthscale
AT laugierpascal microfibrilorientationdominatesthemicroelasticpropertiesofhumanbonetissueatthelamellarlengthscale