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Analysis of the main soft tissue stress associated with flexible flatfoot deformity: a finite element study.

Abstract
A better understanding of soft tissue stress and its role in supporting the medial longitudinal arch in flexible flatfoot could help to guide the clinical treatment. In this study, a 3-Dimensional finite element (FE) foot model was reconstructed to measure the stress of the soft tissue, and its variation in different scenarios related to flexible flatfoot. All bones, cartilages, ligaments and related tendons around the ankle, and fat pad were included in the finite element model. The equivalent stress on the articular surface of the joints in the medial longitudinal arch and the maximum principal stress of the ligaments around the ankle were obtained. The results show that the plantar fascia (PF) is the main tissue in maintaining the medial longitudinal arch. The equivalent stress of all the joints in the medial longitudinal arch increases when the PF attenuation and the talonavicular joint increases, while other joints decreases when all the three tissue attenuation. Moreover, the maximum principal stress variation of calcaneofibular ligament is largest when the PF attenuation and the tibionavicular ligament and posterior tibiotalar ligament are largest when the posterior tibial tendon (PTT) attenuation. The maximum principal stress variation of tibionavicular ligament and posterior tibiotalar ligament are even larger when all the three tissue attenuation. These findings support that the PF is the main factor in maintaining the medial longitudinal arch. The medial longitudinal arch collapse mainly affects the talonavicular joint and the calcaneofibular ligament, the tibionavicular ligament and the posterior tibiotalar ligament. This approach could help to improve the understanding of adult-acquired flatfoot deformity (AAFD).
AuthorsYi-Jun Zhang, Yan Guo, Xiao Long, Jing-Yu Du, Tao Liu, Xiang-Jin Lin
JournalBiomechanics and modeling in mechanobiology (Biomech Model Mechanobiol) Vol. 20 Issue 6 Pg. 2169-2177 (Dec 2021) ISSN: 1617-7940 [Electronic] Germany
PMID34331169 (Publication Type: Journal Article)
Copyright© 2021. The Author(s), under exclusive licence to Springer-Verlag GmbH Germany, part of Springer Nature.
Topics
  • Adult
  • Ankle (pathology)
  • Biomechanical Phenomena
  • Bone and Bones (diagnostic imaging, pathology)
  • Computer Simulation
  • Finite Element Analysis
  • Flatfoot (diagnostic imaging, pathology)
  • Humans
  • Imaging, Three-Dimensional
  • Ligaments (pathology)
  • Male
  • Models, Biological
  • Pliability
  • Reproducibility of Results
  • Stress, Mechanical
  • Weight-Bearing

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