Percolation networks inside 3D model of the mineralized collagen fibril
Abstract Bone is a hierarchical biological material, characterized at the nanoscale by a recurring structure mainly composed of apatite mineral and collagen, i.e. the mineralized collagen fibril (MCF). Although the architecture of the MCF was extensively investigated by experimental and computationa...
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doaj-439f4caba15741e5b513a3b8f3ef9d2d2021-06-06T11:35:21ZengNature Publishing GroupScientific Reports2045-23222021-05-0111111310.1038/s41598-021-90916-xPercolation networks inside 3D model of the mineralized collagen fibrilFabiano Bini0Andrada Pica1Andrea Marinozzi2Franco Marinozzi3Department of Mechanical and Aerospace Engineering, “Sapienza” University of RomeDepartment of Mechanical and Aerospace Engineering, “Sapienza” University of RomeOrthopedy and Traumatology Area, “Campus Bio-Medico” UniversityDepartment of Mechanical and Aerospace Engineering, “Sapienza” University of RomeAbstract Bone is a hierarchical biological material, characterized at the nanoscale by a recurring structure mainly composed of apatite mineral and collagen, i.e. the mineralized collagen fibril (MCF). Although the architecture of the MCF was extensively investigated by experimental and computational studies, it still represents a topic of debate. In this work, we developed a 3D continuum model of the mineral phase in the framework of percolation theory, that describes the transition from isolated to spanning cluster of connected platelets. Using Monte Carlo technique, we computed overall 120 × 106 iterations and investigated the formation of spanning networks of apatite minerals. We computed the percolation probability for different mineral volume fractions characteristic of human bone tissue. The findings highlight that the percolation threshold occurs at lower volume fractions for spanning clusters in the width direction with respect to the critical mineral volume fractions that characterize the percolation transition in the thickness and length directions. The formation of spanning clusters of minerals represents a condition of instability for the MCF, as it could be the onset of a high susceptibility to fracture. The 3D computational model developed in this study provides new, complementary insights to the experimental investigations concerning human MCF.https://doi.org/10.1038/s41598-021-90916-x |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Fabiano Bini Andrada Pica Andrea Marinozzi Franco Marinozzi |
spellingShingle |
Fabiano Bini Andrada Pica Andrea Marinozzi Franco Marinozzi Percolation networks inside 3D model of the mineralized collagen fibril Scientific Reports |
author_facet |
Fabiano Bini Andrada Pica Andrea Marinozzi Franco Marinozzi |
author_sort |
Fabiano Bini |
title |
Percolation networks inside 3D model of the mineralized collagen fibril |
title_short |
Percolation networks inside 3D model of the mineralized collagen fibril |
title_full |
Percolation networks inside 3D model of the mineralized collagen fibril |
title_fullStr |
Percolation networks inside 3D model of the mineralized collagen fibril |
title_full_unstemmed |
Percolation networks inside 3D model of the mineralized collagen fibril |
title_sort |
percolation networks inside 3d model of the mineralized collagen fibril |
publisher |
Nature Publishing Group |
series |
Scientific Reports |
issn |
2045-2322 |
publishDate |
2021-05-01 |
description |
Abstract Bone is a hierarchical biological material, characterized at the nanoscale by a recurring structure mainly composed of apatite mineral and collagen, i.e. the mineralized collagen fibril (MCF). Although the architecture of the MCF was extensively investigated by experimental and computational studies, it still represents a topic of debate. In this work, we developed a 3D continuum model of the mineral phase in the framework of percolation theory, that describes the transition from isolated to spanning cluster of connected platelets. Using Monte Carlo technique, we computed overall 120 × 106 iterations and investigated the formation of spanning networks of apatite minerals. We computed the percolation probability for different mineral volume fractions characteristic of human bone tissue. The findings highlight that the percolation threshold occurs at lower volume fractions for spanning clusters in the width direction with respect to the critical mineral volume fractions that characterize the percolation transition in the thickness and length directions. The formation of spanning clusters of minerals represents a condition of instability for the MCF, as it could be the onset of a high susceptibility to fracture. The 3D computational model developed in this study provides new, complementary insights to the experimental investigations concerning human MCF. |
url |
https://doi.org/10.1038/s41598-021-90916-x |
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