3D Models Reveal the Influence of Achilles Subtendon Twist on Strain and Energy Storage

The Achilles tendon (AT) has complex function in walking, exchanging energy due to loading by the triceps surae muscles. AT structure comprises three subtendons which exhibit variable twist among themselves and between individuals. Our goal was to create 3D finite element (FE) models to explore AT s...

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Main Authors: Katherine R. Knaus, Silvia S. Blemker
Format: Article
Language:English
Published: Frontiers Media S.A. 2021-02-01
Series:Frontiers in Bioengineering and Biotechnology
Subjects:
Online Access:https://www.frontiersin.org/articles/10.3389/fbioe.2021.539135/full
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spelling doaj-70a12fe8f505475bb33f76fedc60abcd2021-02-05T06:19:06ZengFrontiers Media S.A.Frontiers in Bioengineering and Biotechnology2296-41852021-02-01910.3389/fbioe.2021.5391355391353D Models Reveal the Influence of Achilles Subtendon Twist on Strain and Energy StorageKatherine R. KnausSilvia S. BlemkerThe Achilles tendon (AT) has complex function in walking, exchanging energy due to loading by the triceps surae muscles. AT structure comprises three subtendons which exhibit variable twist among themselves and between individuals. Our goal was to create 3D finite element (FE) models to explore AT structure-function relationships. By simulating subtendon loading in FE models with different twisted geometries, we investigated how anatomical variation in twisted tendon geometry impacts fascicle lengths, strains, and energy storage. Three tendon FE models, built with elliptical cross sections based on average cadaver measurements, were divided into subtendons with varied geometric twist (low, medium, and high) and equal proportions. Tendon was modeled as transversely isotropic with fascicle directions defined using Laplacian flow simulations, producing fascicle twist. Prescribed forces, representing AT loading during walking, were applied to proximal subtendon ends, with distal ends fixed, and tuned to produce equal tendon elongation in each case, consistent with ultrasound measurements. Subtendon fascicle lengths were greater than free tendon lengths in all models by 1–3.2 mm, and were longer with greater subtendon twist with differences of 1.2–1.9 mm from low to high twist. Subtendon along-fiber strains were lower with greater twist with differences of 1.4–2.6%, and all were less than free tendon longitudinal strain by 2–5.5%. Energy stored in the AT was also lower with greater twist with differences of 1.8–2.4 J. With greater subtendon twist, similar elongation of the AT results in lower tissue strains and forces, so that longitudinal stiffness of the AT is effectively decreased, demonstrating how tendon structure influences mechanical behavior.https://www.frontiersin.org/articles/10.3389/fbioe.2021.539135/fullAchilles tendonfascicle twisttendon straintendon energy storagesubtendon morphologyfinite element modeling
collection DOAJ
language English
format Article
sources DOAJ
author Katherine R. Knaus
Silvia S. Blemker
spellingShingle Katherine R. Knaus
Silvia S. Blemker
3D Models Reveal the Influence of Achilles Subtendon Twist on Strain and Energy Storage
Frontiers in Bioengineering and Biotechnology
Achilles tendon
fascicle twist
tendon strain
tendon energy storage
subtendon morphology
finite element modeling
author_facet Katherine R. Knaus
Silvia S. Blemker
author_sort Katherine R. Knaus
title 3D Models Reveal the Influence of Achilles Subtendon Twist on Strain and Energy Storage
title_short 3D Models Reveal the Influence of Achilles Subtendon Twist on Strain and Energy Storage
title_full 3D Models Reveal the Influence of Achilles Subtendon Twist on Strain and Energy Storage
title_fullStr 3D Models Reveal the Influence of Achilles Subtendon Twist on Strain and Energy Storage
title_full_unstemmed 3D Models Reveal the Influence of Achilles Subtendon Twist on Strain and Energy Storage
title_sort 3d models reveal the influence of achilles subtendon twist on strain and energy storage
publisher Frontiers Media S.A.
series Frontiers in Bioengineering and Biotechnology
issn 2296-4185
publishDate 2021-02-01
description The Achilles tendon (AT) has complex function in walking, exchanging energy due to loading by the triceps surae muscles. AT structure comprises three subtendons which exhibit variable twist among themselves and between individuals. Our goal was to create 3D finite element (FE) models to explore AT structure-function relationships. By simulating subtendon loading in FE models with different twisted geometries, we investigated how anatomical variation in twisted tendon geometry impacts fascicle lengths, strains, and energy storage. Three tendon FE models, built with elliptical cross sections based on average cadaver measurements, were divided into subtendons with varied geometric twist (low, medium, and high) and equal proportions. Tendon was modeled as transversely isotropic with fascicle directions defined using Laplacian flow simulations, producing fascicle twist. Prescribed forces, representing AT loading during walking, were applied to proximal subtendon ends, with distal ends fixed, and tuned to produce equal tendon elongation in each case, consistent with ultrasound measurements. Subtendon fascicle lengths were greater than free tendon lengths in all models by 1–3.2 mm, and were longer with greater subtendon twist with differences of 1.2–1.9 mm from low to high twist. Subtendon along-fiber strains were lower with greater twist with differences of 1.4–2.6%, and all were less than free tendon longitudinal strain by 2–5.5%. Energy stored in the AT was also lower with greater twist with differences of 1.8–2.4 J. With greater subtendon twist, similar elongation of the AT results in lower tissue strains and forces, so that longitudinal stiffness of the AT is effectively decreased, demonstrating how tendon structure influences mechanical behavior.
topic Achilles tendon
fascicle twist
tendon strain
tendon energy storage
subtendon morphology
finite element modeling
url https://www.frontiersin.org/articles/10.3389/fbioe.2021.539135/full
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