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Ankle and midtarsal joint quasi-stiffness during walking with added mass

Examination of how the ankle and midtarsal joints modulate stiffness in response to increased force demand will aid understanding of overall limb function and inform the development of bio-inspired assistive and robotic devices. The purpose of this study is to identify how ankle and midtarsal joint...

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Autores principales: Kern, Andrew M., Papachatzis, Nikolaos, Patterson, Jeffrey M., Bruening, Dustin A., Takahashi, Kota Z.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: PeerJ Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6754976/
https://www.ncbi.nlm.nih.gov/pubmed/31579566
http://dx.doi.org/10.7717/peerj.7487
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author Kern, Andrew M.
Papachatzis, Nikolaos
Patterson, Jeffrey M.
Bruening, Dustin A.
Takahashi, Kota Z.
author_facet Kern, Andrew M.
Papachatzis, Nikolaos
Patterson, Jeffrey M.
Bruening, Dustin A.
Takahashi, Kota Z.
author_sort Kern, Andrew M.
collection PubMed
description Examination of how the ankle and midtarsal joints modulate stiffness in response to increased force demand will aid understanding of overall limb function and inform the development of bio-inspired assistive and robotic devices. The purpose of this study is to identify how ankle and midtarsal joint quasi-stiffness are affected by added body mass during over-ground walking. Healthy participants walked barefoot over-ground at 1.25 m/s wearing a weighted vest with 0%, 15% and 30% additional body mass. The effect of added mass was investigated on ankle and midtarsal joint range of motion (ROM), peak moment and quasi-stiffness. Joint quasi-stiffness was broken into two phases, dorsiflexion (DF) and plantarflexion (PF), representing approximately linear regions of their moment-angle curve. Added mass significantly increased ankle joint quasi-stiffness in DF (p < 0.001) and PF (p < 0.001), as well as midtarsal joint quasi-stiffness in DF (p < 0.006) and PF (p < 0.001). Notably, the midtarsal joint quasi-stiffness during DF was ~2.5 times higher than that of the ankle joint. The increase in midtarsal quasi-stiffness when walking with added mass could not be explained by the windlass mechanism, as the ROM of the metatarsophalangeal joints was not correlated with midtarsal joint quasi-stiffness (r = −0.142, p = 0.540). The likely source for the quasi-stiffness modulation may be from active foot muscles, however, future research is needed to confirm which anatomical structures (passive or active) contribute to the overall joint quasi-stiffness across locomotor tasks.
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spelling pubmed-67549762019-10-02 Ankle and midtarsal joint quasi-stiffness during walking with added mass Kern, Andrew M. Papachatzis, Nikolaos Patterson, Jeffrey M. Bruening, Dustin A. Takahashi, Kota Z. PeerJ Anatomy and Physiology Examination of how the ankle and midtarsal joints modulate stiffness in response to increased force demand will aid understanding of overall limb function and inform the development of bio-inspired assistive and robotic devices. The purpose of this study is to identify how ankle and midtarsal joint quasi-stiffness are affected by added body mass during over-ground walking. Healthy participants walked barefoot over-ground at 1.25 m/s wearing a weighted vest with 0%, 15% and 30% additional body mass. The effect of added mass was investigated on ankle and midtarsal joint range of motion (ROM), peak moment and quasi-stiffness. Joint quasi-stiffness was broken into two phases, dorsiflexion (DF) and plantarflexion (PF), representing approximately linear regions of their moment-angle curve. Added mass significantly increased ankle joint quasi-stiffness in DF (p < 0.001) and PF (p < 0.001), as well as midtarsal joint quasi-stiffness in DF (p < 0.006) and PF (p < 0.001). Notably, the midtarsal joint quasi-stiffness during DF was ~2.5 times higher than that of the ankle joint. The increase in midtarsal quasi-stiffness when walking with added mass could not be explained by the windlass mechanism, as the ROM of the metatarsophalangeal joints was not correlated with midtarsal joint quasi-stiffness (r = −0.142, p = 0.540). The likely source for the quasi-stiffness modulation may be from active foot muscles, however, future research is needed to confirm which anatomical structures (passive or active) contribute to the overall joint quasi-stiffness across locomotor tasks. PeerJ Inc. 2019-09-19 /pmc/articles/PMC6754976/ /pubmed/31579566 http://dx.doi.org/10.7717/peerj.7487 Text en © 2019 Kern 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, reproduction and adaptation in any medium and for any purpose provided that it is properly attributed. For attribution, the original author(s), title, publication source (PeerJ) and either DOI or URL of the article must be cited.
spellingShingle Anatomy and Physiology
Kern, Andrew M.
Papachatzis, Nikolaos
Patterson, Jeffrey M.
Bruening, Dustin A.
Takahashi, Kota Z.
Ankle and midtarsal joint quasi-stiffness during walking with added mass
title Ankle and midtarsal joint quasi-stiffness during walking with added mass
title_full Ankle and midtarsal joint quasi-stiffness during walking with added mass
title_fullStr Ankle and midtarsal joint quasi-stiffness during walking with added mass
title_full_unstemmed Ankle and midtarsal joint quasi-stiffness during walking with added mass
title_short Ankle and midtarsal joint quasi-stiffness during walking with added mass
title_sort ankle and midtarsal joint quasi-stiffness during walking with added mass
topic Anatomy and Physiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6754976/
https://www.ncbi.nlm.nih.gov/pubmed/31579566
http://dx.doi.org/10.7717/peerj.7487
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