The complex structure of bone requires a structural description of the material at different hierarchical levels. At the micrometer level, collagen fibril orientation and osteocyte network architecture can be described by different light microscopy methods. However, further investigation of the nanostructure of bone requires high-resolution techniques such as electron microscopy as well as x-ray scattering methods. The basic building blocks at the nanometer level are organic type I collagen fibrils reinforced by nanoparticles of carbonated apatite mineral. Most commonly, these fibrils aggregate into lamellae of about 5 µm width, in both compact and spongy bone. The architecture of the mineral platelets and the collagen fibrils influences the mechanical properties. Models of twisted and rotated plywood motifs have been proposed, although detailed quantitative characterization at length scales comparable to typical tissue unit sizes are still lacking. Here, we describe a scanning small-angle x-ray scattering (SAXS) method to reconstruct the variation of the three-dimensional habit of mineral platelets within osteonal bone. We find that the platelets change their orientation at micrometer resolution and are organized structurally by a repeating unit of about 5 µm, which is in agreement with previous wide-angle x-ray diffraction microtexture measurements. At the spatial resolution of the microbeam used (1 µm), we observe fiber geometry. The presented SAXS reconstruction technique could also be applied to the analysis of nanoparticle orientation in highly textured biomaterials.
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April 2012
Review Article|
April 01 2012
Synchrotron 3D SAXS analysis of bone nanostructure
Robin Seidel;
Robin Seidel
Department of Biomaterials, Max Planck Institute of Colloids and Interfaces, Potsdam, Germany
Plant Biomechanics Group Freiburg, Botanic Garden, Faculty of Biology, University of Freiburg, Freiburg, Germany
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Aurelien Gourrier;
Aurelien Gourrier
Department of Biomaterials, Max Planck Institute of Colloids and Interfaces, Potsdam, Germany
Laboratoire de Physique des Solides, Université Paris-Sud, France
European Synchrotron Radiation Facility, Grenoble, France
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Michael Kerschnitzki;
Michael Kerschnitzki
Department of Biomaterials, Max Planck Institute of Colloids and Interfaces, Potsdam, Germany
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Manfred Burghammer;
Manfred Burghammer
European Synchrotron Radiation Facility, Grenoble, France
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Peter Fratzl;
Peter Fratzl
Department of Biomaterials, Max Planck Institute of Colloids and Interfaces, Potsdam, Germany
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Himadri Shikhar Gupta;
Himadri Shikhar Gupta
Department of Biomaterials, Max Planck Institute of Colloids and Interfaces, Potsdam, Germany
Queen Mary University of London, School of Engineering and Materials Science, London, UK
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Wolfgang Wagermaier
Wolfgang Wagermaier
Department of Biomaterials, Max Planck Institute of Colloids and Interfaces, Potsdam, Germany
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Publisher: Emerald Publishing
Received:
November 08 2011
Accepted:
December 02 2011
Online ISSN: 2045-9866
Print ISSN: 2045-9858
ICE Publishing: All rights reserved
2012
Bioinspired, Biomimetic and Nanobiomaterials (2012) 1 (2): 123–131.
Article history
Received:
November 08 2011
Accepted:
December 02 2011
Citation
Seidel R, Gourrier A, Kerschnitzki M, Burghammer M, Fratzl P, Gupta HS, Wagermaier W (2012), "Synchrotron 3D SAXS analysis of bone nanostructure". Bioinspired, Biomimetic and Nanobiomaterials, Vol. 1 No. 2 pp. 123–131, doi: https://doi.org/10.1680/bbn.11.00014
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