Cargando…

Simulation-based prediction of bone healing and treatment recommendations for lower leg fractures: Effects of motion, weight-bearing and fibular mechanics

Despite recent experimental and clinical progress in the treatment of tibial and fibular fractures, in clinical practice rates of delayed bone healing and non-union remain high. The aim of this study was to simulate and compare different mechanical conditions after lower leg fractures to assess the...

Descripción completa

Detalles Bibliográficos
Autores principales: Orth, Marcel, Ganse, Bergita, Andres, Annchristin, Wickert, Kerstin, Warmerdam, Elke, Müller, Max, Diebels, Stefan, Roland, Michael, Pohlemann, Tim
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9986461/
https://www.ncbi.nlm.nih.gov/pubmed/36890916
http://dx.doi.org/10.3389/fbioe.2023.1067845
_version_ 1784901172107149312
author Orth, Marcel
Ganse, Bergita
Andres, Annchristin
Wickert, Kerstin
Warmerdam, Elke
Müller, Max
Diebels, Stefan
Roland, Michael
Pohlemann, Tim
author_facet Orth, Marcel
Ganse, Bergita
Andres, Annchristin
Wickert, Kerstin
Warmerdam, Elke
Müller, Max
Diebels, Stefan
Roland, Michael
Pohlemann, Tim
author_sort Orth, Marcel
collection PubMed
description Despite recent experimental and clinical progress in the treatment of tibial and fibular fractures, in clinical practice rates of delayed bone healing and non-union remain high. The aim of this study was to simulate and compare different mechanical conditions after lower leg fractures to assess the effects of postoperative motion, weight-bearing restrictions and fibular mechanics on the strain distribution and the clinical course. Based on the computed tomography (CT) data set of a real clinical case with a distal diaphyseal tibial fracture, a proximal and a distal fibular fracture, finite element simulations were run. Early postoperative motion data, recorded via an inertial measuring unit system and pressure insoles were recorded and processed to study strain. The simulations were used to compute interfragmentary strain and the von Mises stress distribution of the intramedullary nail for different treatments of the fibula, as well as several walking velocities (1.0 km/h; 1.5 km/h; 2.0 km/h) and levels of weight-bearing restriction. The simulation of the real treatment was compared to the clinical course. The results show that a high postoperative walking speed was associated with higher loads in the fracture zone. In addition, a larger number of areas in the fracture gap with forces that exceeded beneficial mechanical properties longer was observed. Moreover, the simulations showed that surgical treatment of the distal fibular fracture had an impact on the healing course, whereas the proximal fibular fracture barely mattered. Weight-bearing restrictions were beneficial in reducing excessive mechanical conditions, while it is known that it is difficult for patients to adhere to partial weight-bearing recommendations. In conclusion, it is likely that motion, weight bearing and fibular mechanics influence the biomechanical milieu in the fracture gap. Simulations may improve decisions on the choice and location of surgical implants, as well as give recommendations for loading in the postoperative course of the individual patient.
format Online
Article
Text
id pubmed-9986461
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher Frontiers Media S.A.
record_format MEDLINE/PubMed
spelling pubmed-99864612023-03-07 Simulation-based prediction of bone healing and treatment recommendations for lower leg fractures: Effects of motion, weight-bearing and fibular mechanics Orth, Marcel Ganse, Bergita Andres, Annchristin Wickert, Kerstin Warmerdam, Elke Müller, Max Diebels, Stefan Roland, Michael Pohlemann, Tim Front Bioeng Biotechnol Bioengineering and Biotechnology Despite recent experimental and clinical progress in the treatment of tibial and fibular fractures, in clinical practice rates of delayed bone healing and non-union remain high. The aim of this study was to simulate and compare different mechanical conditions after lower leg fractures to assess the effects of postoperative motion, weight-bearing restrictions and fibular mechanics on the strain distribution and the clinical course. Based on the computed tomography (CT) data set of a real clinical case with a distal diaphyseal tibial fracture, a proximal and a distal fibular fracture, finite element simulations were run. Early postoperative motion data, recorded via an inertial measuring unit system and pressure insoles were recorded and processed to study strain. The simulations were used to compute interfragmentary strain and the von Mises stress distribution of the intramedullary nail for different treatments of the fibula, as well as several walking velocities (1.0 km/h; 1.5 km/h; 2.0 km/h) and levels of weight-bearing restriction. The simulation of the real treatment was compared to the clinical course. The results show that a high postoperative walking speed was associated with higher loads in the fracture zone. In addition, a larger number of areas in the fracture gap with forces that exceeded beneficial mechanical properties longer was observed. Moreover, the simulations showed that surgical treatment of the distal fibular fracture had an impact on the healing course, whereas the proximal fibular fracture barely mattered. Weight-bearing restrictions were beneficial in reducing excessive mechanical conditions, while it is known that it is difficult for patients to adhere to partial weight-bearing recommendations. In conclusion, it is likely that motion, weight bearing and fibular mechanics influence the biomechanical milieu in the fracture gap. Simulations may improve decisions on the choice and location of surgical implants, as well as give recommendations for loading in the postoperative course of the individual patient. Frontiers Media S.A. 2023-02-20 /pmc/articles/PMC9986461/ /pubmed/36890916 http://dx.doi.org/10.3389/fbioe.2023.1067845 Text en Copyright © 2023 Orth, Ganse, Andres, Wickert, Warmerdam, Müller, Diebels, Roland and Pohlemann. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Bioengineering and Biotechnology
Orth, Marcel
Ganse, Bergita
Andres, Annchristin
Wickert, Kerstin
Warmerdam, Elke
Müller, Max
Diebels, Stefan
Roland, Michael
Pohlemann, Tim
Simulation-based prediction of bone healing and treatment recommendations for lower leg fractures: Effects of motion, weight-bearing and fibular mechanics
title Simulation-based prediction of bone healing and treatment recommendations for lower leg fractures: Effects of motion, weight-bearing and fibular mechanics
title_full Simulation-based prediction of bone healing and treatment recommendations for lower leg fractures: Effects of motion, weight-bearing and fibular mechanics
title_fullStr Simulation-based prediction of bone healing and treatment recommendations for lower leg fractures: Effects of motion, weight-bearing and fibular mechanics
title_full_unstemmed Simulation-based prediction of bone healing and treatment recommendations for lower leg fractures: Effects of motion, weight-bearing and fibular mechanics
title_short Simulation-based prediction of bone healing and treatment recommendations for lower leg fractures: Effects of motion, weight-bearing and fibular mechanics
title_sort simulation-based prediction of bone healing and treatment recommendations for lower leg fractures: effects of motion, weight-bearing and fibular mechanics
topic Bioengineering and Biotechnology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9986461/
https://www.ncbi.nlm.nih.gov/pubmed/36890916
http://dx.doi.org/10.3389/fbioe.2023.1067845
work_keys_str_mv AT orthmarcel simulationbasedpredictionofbonehealingandtreatmentrecommendationsforlowerlegfractureseffectsofmotionweightbearingandfibularmechanics
AT gansebergita simulationbasedpredictionofbonehealingandtreatmentrecommendationsforlowerlegfractureseffectsofmotionweightbearingandfibularmechanics
AT andresannchristin simulationbasedpredictionofbonehealingandtreatmentrecommendationsforlowerlegfractureseffectsofmotionweightbearingandfibularmechanics
AT wickertkerstin simulationbasedpredictionofbonehealingandtreatmentrecommendationsforlowerlegfractureseffectsofmotionweightbearingandfibularmechanics
AT warmerdamelke simulationbasedpredictionofbonehealingandtreatmentrecommendationsforlowerlegfractureseffectsofmotionweightbearingandfibularmechanics
AT mullermax simulationbasedpredictionofbonehealingandtreatmentrecommendationsforlowerlegfractureseffectsofmotionweightbearingandfibularmechanics
AT diebelsstefan simulationbasedpredictionofbonehealingandtreatmentrecommendationsforlowerlegfractureseffectsofmotionweightbearingandfibularmechanics
AT rolandmichael simulationbasedpredictionofbonehealingandtreatmentrecommendationsforlowerlegfractureseffectsofmotionweightbearingandfibularmechanics
AT pohlemanntim simulationbasedpredictionofbonehealingandtreatmentrecommendationsforlowerlegfractureseffectsofmotionweightbearingandfibularmechanics