Literature DB >> 31103830

Understanding how reduced loading affects Achilles tendon mechanical properties using a fibre-reinforced poro-visco-hyper-elastic model.

Thomas Notermans1, Hanifeh Khayyeri2, Hanna Isaksson2.   

Abstract

Understanding tendon mechanobiology is important for gaining insight into the development of tendon pathology and subsequent repair processes. The aim of this study was to investigate how experimentally observed mechanobiological adaptation of rat Achilles tendons translate to changes in constitutive mechanical properties and biomechanical behavior. In addition, we assessed the ability of the model to simulate tendon creep and stress-relaxation. A three dimensional finite element framework of rat Achilles tendon was implemented with a fibre-reinforced poro-visco-hyper-elastic constitutive model. Stress-relaxation and creep data from Achilles tendons of Sprague Dawley rats that had been subjected to both daily loading and a period of reduced loading were used to determine the constitutive properties of the tendons. Our results showed that the constitutive model captures creep and stress-relaxation data from rat Achilles tendons for both loaded and unloaded tendons with good accuracy (normalized root mean square error between model and experimental data were 0.010-0.027). Only when the model parameters were fitted to data from both mechanical tests simultaneously, were we able to also capture similar increase in elastic energy (increased stiffness) and decreased viscoelasticity in response to unloading, as was reported experimentally. Our study is the first to show that experimentally observed mechanobiological changes in tendon biomechanics, such as stiffness and viscoelasticity, can be designated to mechanical quantities in a constitutive model. Further investigation in this direction has potential to discriminate tissue components responsible for specific biomechanical response, and enable targeted treatment strategies for tendon health.
Copyright © 2019 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Box Behnken; Design of experiments; Fibre-reinforced; Mechanobiology; Poroelasticity; Viscoelasticity

Year:  2019        PMID: 31103830     DOI: 10.1016/j.jmbbm.2019.04.041

Source DB:  PubMed          Journal:  J Mech Behav Biomed Mater        ISSN: 1878-0180


  4 in total

1.  Adaptation of Fibril-Reinforced Poroviscoelastic Properties in Rabbit Collateral Ligaments 8 Weeks After Anterior Cruciate Ligament Transection.

Authors:  Gustavo A Orozco; Aapo Ristaniemi; Mehrnoush Haghighatnejad; Ali Mohammadi; Mikko A J Finnilä; Simo Saarakkala; Walter Herzog; Hanna Isaksson; Rami K Korhonen
Journal:  Ann Biomed Eng       Date:  2022-09-21       Impact factor: 4.219

2.  Impact of Glucose on the Nanostructure and Mechanical Properties of Calcium-Alginate Hydrogels.

Authors:  Patricia Lopez-Sanchez; Ali Assifaoui; Fabrice Cousin; Josefine Moser; Mauricio R Bonilla; Anna Ström
Journal:  Gels       Date:  2022-01-22

3.  Structure, composition and fibril-reinforced poroviscoelastic properties of bovine knee ligaments and patellar tendon.

Authors:  Aapo Ristaniemi; Dristi Regmi; Diponkor Mondal; Jari Torniainen; Petri Tanska; Lauri Stenroth; Mikko A J Finnilä; Juha Töyräs; Rami K Korhonen
Journal:  J R Soc Interface       Date:  2021-01-27       Impact factor: 4.118

4.  A numerical framework for mechano-regulated tendon healing-Simulation of early regeneration of the Achilles tendon.

Authors:  Thomas Notermans; Petri Tanska; Rami K Korhonen; Hanifeh Khayyeri; Hanna Isaksson
Journal:  PLoS Comput Biol       Date:  2021-02-08       Impact factor: 4.475

  4 in total

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