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Numerical Simulation of Callus Healing for Optimization of Fracture Fixation Stiffness

The stiffness of fracture fixation devices together with musculoskeletal loading defines the mechanical environment within a long bone fracture, and can be quantified by the interfragmentary movement. In vivo results suggested that this can have acceleratory or inhibitory influences, depending on di...

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Autores principales: Steiner, Malte, Claes, Lutz, Ignatius, Anita, Simon, Ulrich, Wehner, Tim
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4081589/
https://www.ncbi.nlm.nih.gov/pubmed/24991809
http://dx.doi.org/10.1371/journal.pone.0101370
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author Steiner, Malte
Claes, Lutz
Ignatius, Anita
Simon, Ulrich
Wehner, Tim
author_facet Steiner, Malte
Claes, Lutz
Ignatius, Anita
Simon, Ulrich
Wehner, Tim
author_sort Steiner, Malte
collection PubMed
description The stiffness of fracture fixation devices together with musculoskeletal loading defines the mechanical environment within a long bone fracture, and can be quantified by the interfragmentary movement. In vivo results suggested that this can have acceleratory or inhibitory influences, depending on direction and magnitude of motion, indicating that some complications in fracture treatment could be avoided by optimizing the fixation stiffness. However, general statements are difficult to make due to the limited number of experimental findings. The aim of this study was therefore to numerically investigate healing outcomes under various combinations of shear and axial fixation stiffness, and to detect the optimal configuration. A calibrated and established numerical model was used to predict fracture healing for numerous combinations of axial and shear fixation stiffness under physiological, superimposed, axial compressive and translational shear loading in sheep. Characteristic maps of healing outcome versus fixation stiffness (axial and shear) were created. The results suggest that delayed healing of 3 mm transversal fracture gaps will occur for highly flexible or very rigid axial fixation, which was corroborated by in vivo findings. The optimal fixation stiffness for ovine long bone fractures was predicted to be 1000–2500 N/mm in the axial and >300 N/mm in the shear direction. In summary, an optimized, moderate axial stiffness together with certain shear stiffness enhances fracture healing processes. The negative influence of one improper stiffness can be compensated by adjustment of the stiffness in the other direction.
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spelling pubmed-40815892014-07-10 Numerical Simulation of Callus Healing for Optimization of Fracture Fixation Stiffness Steiner, Malte Claes, Lutz Ignatius, Anita Simon, Ulrich Wehner, Tim PLoS One Research Article The stiffness of fracture fixation devices together with musculoskeletal loading defines the mechanical environment within a long bone fracture, and can be quantified by the interfragmentary movement. In vivo results suggested that this can have acceleratory or inhibitory influences, depending on direction and magnitude of motion, indicating that some complications in fracture treatment could be avoided by optimizing the fixation stiffness. However, general statements are difficult to make due to the limited number of experimental findings. The aim of this study was therefore to numerically investigate healing outcomes under various combinations of shear and axial fixation stiffness, and to detect the optimal configuration. A calibrated and established numerical model was used to predict fracture healing for numerous combinations of axial and shear fixation stiffness under physiological, superimposed, axial compressive and translational shear loading in sheep. Characteristic maps of healing outcome versus fixation stiffness (axial and shear) were created. The results suggest that delayed healing of 3 mm transversal fracture gaps will occur for highly flexible or very rigid axial fixation, which was corroborated by in vivo findings. The optimal fixation stiffness for ovine long bone fractures was predicted to be 1000–2500 N/mm in the axial and >300 N/mm in the shear direction. In summary, an optimized, moderate axial stiffness together with certain shear stiffness enhances fracture healing processes. The negative influence of one improper stiffness can be compensated by adjustment of the stiffness in the other direction. Public Library of Science 2014-07-03 /pmc/articles/PMC4081589/ /pubmed/24991809 http://dx.doi.org/10.1371/journal.pone.0101370 Text en © 2014 Steiner 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
Steiner, Malte
Claes, Lutz
Ignatius, Anita
Simon, Ulrich
Wehner, Tim
Numerical Simulation of Callus Healing for Optimization of Fracture Fixation Stiffness
title Numerical Simulation of Callus Healing for Optimization of Fracture Fixation Stiffness
title_full Numerical Simulation of Callus Healing for Optimization of Fracture Fixation Stiffness
title_fullStr Numerical Simulation of Callus Healing for Optimization of Fracture Fixation Stiffness
title_full_unstemmed Numerical Simulation of Callus Healing for Optimization of Fracture Fixation Stiffness
title_short Numerical Simulation of Callus Healing for Optimization of Fracture Fixation Stiffness
title_sort numerical simulation of callus healing for optimization of fracture fixation stiffness
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4081589/
https://www.ncbi.nlm.nih.gov/pubmed/24991809
http://dx.doi.org/10.1371/journal.pone.0101370
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