Cargando…

A musculoskeletal finite element model of rat knee joint for evaluating cartilage biomechanics during gait

Abnormal loading of the knee due to injuries or obesity is thought to contribute to the development of osteoarthritis (OA). Small animal models have been used for studying OA progression mechanisms. However, numerical models to study cartilage responses under dynamic loading in preclinical animal mo...

Descripción completa

Detalles Bibliográficos
Autores principales: Orozco, Gustavo A., Karjalainen, Kalle, Moo, Eng Kuan, Stenroth, Lauri, Tanska, Petri, Rios, Jaqueline Lourdes, Tuomainen, Teemu V., Nissi, Mikko J., Isaksson, Hanna, Herzog, Walter, Korhonen, Rami K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9166403/
https://www.ncbi.nlm.nih.gov/pubmed/35657996
http://dx.doi.org/10.1371/journal.pcbi.1009398
_version_ 1784720595454263296
author Orozco, Gustavo A.
Karjalainen, Kalle
Moo, Eng Kuan
Stenroth, Lauri
Tanska, Petri
Rios, Jaqueline Lourdes
Tuomainen, Teemu V.
Nissi, Mikko J.
Isaksson, Hanna
Herzog, Walter
Korhonen, Rami K.
author_facet Orozco, Gustavo A.
Karjalainen, Kalle
Moo, Eng Kuan
Stenroth, Lauri
Tanska, Petri
Rios, Jaqueline Lourdes
Tuomainen, Teemu V.
Nissi, Mikko J.
Isaksson, Hanna
Herzog, Walter
Korhonen, Rami K.
author_sort Orozco, Gustavo A.
collection PubMed
description Abnormal loading of the knee due to injuries or obesity is thought to contribute to the development of osteoarthritis (OA). Small animal models have been used for studying OA progression mechanisms. However, numerical models to study cartilage responses under dynamic loading in preclinical animal models have not been developed. Here we present a musculoskeletal finite element model of a rat knee joint to evaluate cartilage biomechanical responses during a gait cycle. The rat knee joint geometries were obtained from a 3-D MRI dataset and the boundary conditions regarding loading in the joint were extracted from a musculoskeletal model of the rat hindlimb. The fibril-reinforced poroelastic (FRPE) properties of the rat cartilage were derived from data of mechanical indentation tests. Our numerical results showed the relevance of simulating anatomical and locomotion characteristics in the rat knee joint for estimating tissue responses such as contact pressures, stresses, strains, and fluid pressures. We found that the contact pressure and maximum principal strain were virtually constant in the medial compartment whereas they showed the highest values at the beginning of the gait cycle in the lateral compartment. Furthermore, we found that the maximum principal stress increased during the stance phase of gait, with the greatest values at midstance. We anticipate that our approach serves as a first step towards investigating the effects of gait abnormalities on the adaptation and degeneration of rat knee joint tissues and could be used to evaluate biomechanically-driven mechanisms of the progression of OA as a consequence of joint injury or obesity.
format Online
Article
Text
id pubmed-9166403
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-91664032022-06-05 A musculoskeletal finite element model of rat knee joint for evaluating cartilage biomechanics during gait Orozco, Gustavo A. Karjalainen, Kalle Moo, Eng Kuan Stenroth, Lauri Tanska, Petri Rios, Jaqueline Lourdes Tuomainen, Teemu V. Nissi, Mikko J. Isaksson, Hanna Herzog, Walter Korhonen, Rami K. PLoS Comput Biol Research Article Abnormal loading of the knee due to injuries or obesity is thought to contribute to the development of osteoarthritis (OA). Small animal models have been used for studying OA progression mechanisms. However, numerical models to study cartilage responses under dynamic loading in preclinical animal models have not been developed. Here we present a musculoskeletal finite element model of a rat knee joint to evaluate cartilage biomechanical responses during a gait cycle. The rat knee joint geometries were obtained from a 3-D MRI dataset and the boundary conditions regarding loading in the joint were extracted from a musculoskeletal model of the rat hindlimb. The fibril-reinforced poroelastic (FRPE) properties of the rat cartilage were derived from data of mechanical indentation tests. Our numerical results showed the relevance of simulating anatomical and locomotion characteristics in the rat knee joint for estimating tissue responses such as contact pressures, stresses, strains, and fluid pressures. We found that the contact pressure and maximum principal strain were virtually constant in the medial compartment whereas they showed the highest values at the beginning of the gait cycle in the lateral compartment. Furthermore, we found that the maximum principal stress increased during the stance phase of gait, with the greatest values at midstance. We anticipate that our approach serves as a first step towards investigating the effects of gait abnormalities on the adaptation and degeneration of rat knee joint tissues and could be used to evaluate biomechanically-driven mechanisms of the progression of OA as a consequence of joint injury or obesity. Public Library of Science 2022-06-03 /pmc/articles/PMC9166403/ /pubmed/35657996 http://dx.doi.org/10.1371/journal.pcbi.1009398 Text en © 2022 Orozco et al https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Orozco, Gustavo A.
Karjalainen, Kalle
Moo, Eng Kuan
Stenroth, Lauri
Tanska, Petri
Rios, Jaqueline Lourdes
Tuomainen, Teemu V.
Nissi, Mikko J.
Isaksson, Hanna
Herzog, Walter
Korhonen, Rami K.
A musculoskeletal finite element model of rat knee joint for evaluating cartilage biomechanics during gait
title A musculoskeletal finite element model of rat knee joint for evaluating cartilage biomechanics during gait
title_full A musculoskeletal finite element model of rat knee joint for evaluating cartilage biomechanics during gait
title_fullStr A musculoskeletal finite element model of rat knee joint for evaluating cartilage biomechanics during gait
title_full_unstemmed A musculoskeletal finite element model of rat knee joint for evaluating cartilage biomechanics during gait
title_short A musculoskeletal finite element model of rat knee joint for evaluating cartilage biomechanics during gait
title_sort musculoskeletal finite element model of rat knee joint for evaluating cartilage biomechanics during gait
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9166403/
https://www.ncbi.nlm.nih.gov/pubmed/35657996
http://dx.doi.org/10.1371/journal.pcbi.1009398
work_keys_str_mv AT orozcogustavoa amusculoskeletalfiniteelementmodelofratkneejointforevaluatingcartilagebiomechanicsduringgait
AT karjalainenkalle amusculoskeletalfiniteelementmodelofratkneejointforevaluatingcartilagebiomechanicsduringgait
AT mooengkuan amusculoskeletalfiniteelementmodelofratkneejointforevaluatingcartilagebiomechanicsduringgait
AT stenrothlauri amusculoskeletalfiniteelementmodelofratkneejointforevaluatingcartilagebiomechanicsduringgait
AT tanskapetri amusculoskeletalfiniteelementmodelofratkneejointforevaluatingcartilagebiomechanicsduringgait
AT riosjaquelinelourdes amusculoskeletalfiniteelementmodelofratkneejointforevaluatingcartilagebiomechanicsduringgait
AT tuomainenteemuv amusculoskeletalfiniteelementmodelofratkneejointforevaluatingcartilagebiomechanicsduringgait
AT nissimikkoj amusculoskeletalfiniteelementmodelofratkneejointforevaluatingcartilagebiomechanicsduringgait
AT isakssonhanna amusculoskeletalfiniteelementmodelofratkneejointforevaluatingcartilagebiomechanicsduringgait
AT herzogwalter amusculoskeletalfiniteelementmodelofratkneejointforevaluatingcartilagebiomechanicsduringgait
AT korhonenramik amusculoskeletalfiniteelementmodelofratkneejointforevaluatingcartilagebiomechanicsduringgait
AT orozcogustavoa musculoskeletalfiniteelementmodelofratkneejointforevaluatingcartilagebiomechanicsduringgait
AT karjalainenkalle musculoskeletalfiniteelementmodelofratkneejointforevaluatingcartilagebiomechanicsduringgait
AT mooengkuan musculoskeletalfiniteelementmodelofratkneejointforevaluatingcartilagebiomechanicsduringgait
AT stenrothlauri musculoskeletalfiniteelementmodelofratkneejointforevaluatingcartilagebiomechanicsduringgait
AT tanskapetri musculoskeletalfiniteelementmodelofratkneejointforevaluatingcartilagebiomechanicsduringgait
AT riosjaquelinelourdes musculoskeletalfiniteelementmodelofratkneejointforevaluatingcartilagebiomechanicsduringgait
AT tuomainenteemuv musculoskeletalfiniteelementmodelofratkneejointforevaluatingcartilagebiomechanicsduringgait
AT nissimikkoj musculoskeletalfiniteelementmodelofratkneejointforevaluatingcartilagebiomechanicsduringgait
AT isakssonhanna musculoskeletalfiniteelementmodelofratkneejointforevaluatingcartilagebiomechanicsduringgait
AT herzogwalter musculoskeletalfiniteelementmodelofratkneejointforevaluatingcartilagebiomechanicsduringgait
AT korhonenramik musculoskeletalfiniteelementmodelofratkneejointforevaluatingcartilagebiomechanicsduringgait