TY - JOUR
T1 - Development and validation of a novel ankle joint musculoskeletal model
AU - Liu, Tao
AU - Dimitrov, Andrea
AU - Jomha, Nadr
AU - Adeeb, Samer
AU - El-Rich, Marwan
AU - Westover, Lindsey
N1 - Publisher Copyright:
© International Federation for Medical and Biological Engineering 2024.
PY - 2024/5
Y1 - 2024/5
N2 - An improved understanding of contact mechanics in the ankle joint is paramount for implant design and ankle disorder treatment. However, existing models generally simplify the ankle joint as a revolute joint that cannot predict contact characteristics. The current study aimed to develop a novel musculoskeletal ankle joint model that can predict contact in the ankle joint, together with muscle and joint reaction forces. We modelled the ankle joint as a multi-axial joint and simulated contact mechanics between the tibia, fibula and talus bones in OpenSim. The developed model was validated with results from experimental studies through passive stiffness and contact. Through this, we found a similar ankle moment-rotation relationship and contact pattern between our study and experimental studies. Next, the musculoskeletal ankle joint model was incorporated into a lower body model to simulate gait. The ankle joint contact characteristics, kinematics, and muscle forces were predicted and compared to the literature. Our results revealed a comparable peak contact force and the same muscle activation patterns in four major muscles. Good agreement was also found in ankle dorsi/plantar-flexion and inversion/eversion. Thus, the developed model was able to accurately model the ankle joint and can be used to predict contact characteristics in gait. Graphical abstract: (Figure presented.).
AB - An improved understanding of contact mechanics in the ankle joint is paramount for implant design and ankle disorder treatment. However, existing models generally simplify the ankle joint as a revolute joint that cannot predict contact characteristics. The current study aimed to develop a novel musculoskeletal ankle joint model that can predict contact in the ankle joint, together with muscle and joint reaction forces. We modelled the ankle joint as a multi-axial joint and simulated contact mechanics between the tibia, fibula and talus bones in OpenSim. The developed model was validated with results from experimental studies through passive stiffness and contact. Through this, we found a similar ankle moment-rotation relationship and contact pattern between our study and experimental studies. Next, the musculoskeletal ankle joint model was incorporated into a lower body model to simulate gait. The ankle joint contact characteristics, kinematics, and muscle forces were predicted and compared to the literature. Our results revealed a comparable peak contact force and the same muscle activation patterns in four major muscles. Good agreement was also found in ankle dorsi/plantar-flexion and inversion/eversion. Thus, the developed model was able to accurately model the ankle joint and can be used to predict contact characteristics in gait. Graphical abstract: (Figure presented.).
KW - Contact characteristics
KW - Elastic foundation model
KW - Gait simulation
KW - Musculoskeletal model
KW - Talus implant design
UR - http://www.scopus.com/inward/record.url?scp=85181935208&partnerID=8YFLogxK
U2 - 10.1007/s11517-023-03010-x
DO - 10.1007/s11517-023-03010-x
M3 - Article
AN - SCOPUS:85181935208
SN - 0140-0118
VL - 62
SP - 1395
EP - 1407
JO - Medical and Biological Engineering and Computing
JF - Medical and Biological Engineering and Computing
IS - 5
ER -