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Informing phenomenological structural bone remodelling with a mechanistic poroelastic model

Studies suggest that fluid motion in the extracellular space may be involved in the cellular mechanosensitivity at play in the bone tissue adaptation process. Previously, the authors developed a mesoscale predictive structural model of the femur using truss elements to represent trabecular bone, rel...

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Autores principales: Villette, Claire C., Phillips, Andrew T. M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Springer Berlin Heidelberg 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4779463/
https://www.ncbi.nlm.nih.gov/pubmed/26534771
http://dx.doi.org/10.1007/s10237-015-0735-4
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author Villette, Claire C.
Phillips, Andrew T. M.
author_facet Villette, Claire C.
Phillips, Andrew T. M.
author_sort Villette, Claire C.
collection PubMed
description Studies suggest that fluid motion in the extracellular space may be involved in the cellular mechanosensitivity at play in the bone tissue adaptation process. Previously, the authors developed a mesoscale predictive structural model of the femur using truss elements to represent trabecular bone, relying on a phenomenological strain-based bone adaptation algorithm. In order to introduce a response to bending and shear, the authors considered the use of beam elements, requiring a new formulation of the bone adaptation drivers. The primary goal of the study presented here was to isolate phenomenological drivers based on the results of a mechanistic approach to be used with a beam element representation of trabecular bone in mesoscale structural modelling. A single-beam model and a microscale poroelastic model of a single trabecula were developed. A mechanistic iterative adaptation algorithm was implemented based on fluid motion velocity through the bone matrix pores to predict the remodelled geometries of the poroelastic trabecula under 42 different loading scenarios. Regression analyses were used to correlate the changes in poroelastic trabecula thickness and orientation to the initial strain outputs of the beam model. Linear ([Formula: see text] ) and third-order polynomial ([Formula: see text] ) relationships were found between change in cross section and axial strain at the central axis, and between beam reorientation and ratio of bending strain to axial strain, respectively. Implementing these relationships into the phenomenological predictive algorithm for the mesoscale structural femur has the potential to produce a model combining biofidelic structure and mechanical behaviour with computational efficiency.
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spelling pubmed-47794632016-03-19 Informing phenomenological structural bone remodelling with a mechanistic poroelastic model Villette, Claire C. Phillips, Andrew T. M. Biomech Model Mechanobiol Original Paper Studies suggest that fluid motion in the extracellular space may be involved in the cellular mechanosensitivity at play in the bone tissue adaptation process. Previously, the authors developed a mesoscale predictive structural model of the femur using truss elements to represent trabecular bone, relying on a phenomenological strain-based bone adaptation algorithm. In order to introduce a response to bending and shear, the authors considered the use of beam elements, requiring a new formulation of the bone adaptation drivers. The primary goal of the study presented here was to isolate phenomenological drivers based on the results of a mechanistic approach to be used with a beam element representation of trabecular bone in mesoscale structural modelling. A single-beam model and a microscale poroelastic model of a single trabecula were developed. A mechanistic iterative adaptation algorithm was implemented based on fluid motion velocity through the bone matrix pores to predict the remodelled geometries of the poroelastic trabecula under 42 different loading scenarios. Regression analyses were used to correlate the changes in poroelastic trabecula thickness and orientation to the initial strain outputs of the beam model. Linear ([Formula: see text] ) and third-order polynomial ([Formula: see text] ) relationships were found between change in cross section and axial strain at the central axis, and between beam reorientation and ratio of bending strain to axial strain, respectively. Implementing these relationships into the phenomenological predictive algorithm for the mesoscale structural femur has the potential to produce a model combining biofidelic structure and mechanical behaviour with computational efficiency. Springer Berlin Heidelberg 2015-11-03 2016 /pmc/articles/PMC4779463/ /pubmed/26534771 http://dx.doi.org/10.1007/s10237-015-0735-4 Text en © The Author(s) 2015 Open AccessThis article is distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made.
spellingShingle Original Paper
Villette, Claire C.
Phillips, Andrew T. M.
Informing phenomenological structural bone remodelling with a mechanistic poroelastic model
title Informing phenomenological structural bone remodelling with a mechanistic poroelastic model
title_full Informing phenomenological structural bone remodelling with a mechanistic poroelastic model
title_fullStr Informing phenomenological structural bone remodelling with a mechanistic poroelastic model
title_full_unstemmed Informing phenomenological structural bone remodelling with a mechanistic poroelastic model
title_short Informing phenomenological structural bone remodelling with a mechanistic poroelastic model
title_sort informing phenomenological structural bone remodelling with a mechanistic poroelastic model
topic Original Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4779463/
https://www.ncbi.nlm.nih.gov/pubmed/26534771
http://dx.doi.org/10.1007/s10237-015-0735-4
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