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

Author:

Orozco Gustavo A.ORCID,Karjalainen KalleORCID,Moo Eng KuanORCID,Stenroth LauriORCID,Tanska PetriORCID,Rios Jaqueline LourdesORCID,Tuomainen Teemu V.ORCID,Nissi Mikko J.ORCID,Isaksson HannaORCID,Herzog Walter,Korhonen Rami K.ORCID

Abstract

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.

Funder

H2020 Marie Skłodowska-Curie Actions

Itä-Suomen Yliopisto

Academy of Finland

Vetenskapsrådet

European Regional Development Fund

Innovationsfonden

Suomen Kulttuurirahasto

Maire Lisko Foundation

Sigrid Juséliuksen Säätiö

Päivikki ja Sakari Sohlbergin Säätiö

Maud Kuistilan Muistosäätiö

Saastamoinen Foundation

The Killam Foundation

The Canada Research Chair Programme

Canadian Institutes for Health Research

Publisher

Public Library of Science (PLoS)

Subject

Computational Theory and Mathematics,Cellular and Molecular Neuroscience,Genetics,Molecular Biology,Ecology,Modeling and Simulation,Ecology, Evolution, Behavior and Systematics

Reference89 articles.

1. Epidemiology of Osteoarthritis.;Y Zhang;Clin Geriatr Med,2010

2. Posttraumatic osteoarthritis: a first estimate of incidence, prevalence, and burden of disease;TD Brown;J Orthop Trauma,2006

3. Post-traumatic osteoarthritis: improved understanding and opportunities for early intervention;DD Anderson;J Orthop Res,2011

4. Pathogenetic mechanisms of posttraumatic osteoarthritis: opportunities for early intervention;WC Kramer;Int J Clin Exp Med,2011

5. Gait analysis in a rat model of osteoarthrosis;KA Clarke;Physiol Behav,1997

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