Effect of Training-Induced Changes in Achilles Tendon Stiffness on Muscle–Tendon Behavior During Landing

During rapid deceleration of the body, tendons buffer part of the elongation of the muscle–tendon unit (MTU), enabling safe energy dissipation via eccentric muscle contraction. Yet, the influence of changes in tendon stiffness within the physiological range upon these lengthening contractions is unk...

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Main Authors: Amelie Werkhausen, Kirsten Albracht, Neil J. Cronin, Gøran Paulsen, Jens Bojsen-Møller, Olivier R. Seynnes
Format: Article
Language:English
Published: Frontiers Media S.A. 2018-06-01
Series:Frontiers in Physiology
Subjects:
Online Access:https://www.frontiersin.org/article/10.3389/fphys.2018.00794/full
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spelling doaj-76e8813466e64fe998f31a7ccb1e53832020-11-24T20:41:41ZengFrontiers Media S.A.Frontiers in Physiology1664-042X2018-06-01910.3389/fphys.2018.00794369970Effect of Training-Induced Changes in Achilles Tendon Stiffness on Muscle–Tendon Behavior During LandingAmelie Werkhausen0Kirsten Albracht1Kirsten Albracht2Neil J. Cronin3Gøran Paulsen4Jens Bojsen-Møller5Olivier R. Seynnes6Department of Physical Performance, Norwegian School of Sport Sciences, Oslo, NorwayInstitute of Biomechanics and Orthopaedics, German Sport University Cologne, Cologne, GermanyDepartment of Medical Engineering and Technomathematics, Aachen University of Applied Sciences, Aachen, GermanyNeuromuscular Research Centre, Faculty of Sport and Health Sciences, University of Jyväskylä, Jyväskylä, FinlandThe Norwegian Olympic and Paralympic Committee and Confederation of Sports, Oslo, NorwayDepartment of Physical Performance, Norwegian School of Sport Sciences, Oslo, NorwayDepartment of Physical Performance, Norwegian School of Sport Sciences, Oslo, NorwayDuring rapid deceleration of the body, tendons buffer part of the elongation of the muscle–tendon unit (MTU), enabling safe energy dissipation via eccentric muscle contraction. Yet, the influence of changes in tendon stiffness within the physiological range upon these lengthening contractions is unknown. This study aimed to examine the effect of training-induced stiffening of the Achilles tendon on triceps surae muscle–tendon behavior during a landing task. Twenty-one male subjects were assigned to either a 10-week resistance-training program consisting of single-leg isometric plantarflexion (n = 11) or to a non-training control group (n = 10). Before and after the training period, plantarflexion force, peak Achilles tendon strain and stiffness were measured during isometric contractions, using a combination of dynamometry, ultrasound and kinematics data. Additionally, testing included a step-landing task, during which joint mechanics and lengths of gastrocnemius and soleus fascicles, Achilles tendon, and MTU were determined using synchronized ultrasound, kinematics and kinetics data collection. After training, plantarflexion strength and Achilles tendon stiffness increased (15 and 18%, respectively), and tendon strain during landing remained similar. Likewise, lengthening and negative work produced by the gastrocnemius MTU did not change detectably. However, in the training group, gastrocnemius fascicle length was offset (8%) to a longer length at touch down and, surprisingly, fascicle lengthening and velocity were reduced by 27 and 21%, respectively. These changes were not observed for soleus fascicles when accounting for variation in task execution between tests. These results indicate that a training-induced increase in tendon stiffness does not noticeably affect the buffering action of the tendon when the MTU is rapidly stretched. Reductions in gastrocnemius fascicle lengthening and lengthening velocity during landing occurred independently from tendon strain. Future studies are required to provide insight into the mechanisms underpinning these observations and their influence on energy dissipation.https://www.frontiersin.org/article/10.3389/fphys.2018.00794/fullAchilles tendonenergy absorptionmechanical bufferstiffnesstendon propertiesenergy dissipation
collection DOAJ
language English
format Article
sources DOAJ
author Amelie Werkhausen
Kirsten Albracht
Kirsten Albracht
Neil J. Cronin
Gøran Paulsen
Jens Bojsen-Møller
Olivier R. Seynnes
spellingShingle Amelie Werkhausen
Kirsten Albracht
Kirsten Albracht
Neil J. Cronin
Gøran Paulsen
Jens Bojsen-Møller
Olivier R. Seynnes
Effect of Training-Induced Changes in Achilles Tendon Stiffness on Muscle–Tendon Behavior During Landing
Frontiers in Physiology
Achilles tendon
energy absorption
mechanical buffer
stiffness
tendon properties
energy dissipation
author_facet Amelie Werkhausen
Kirsten Albracht
Kirsten Albracht
Neil J. Cronin
Gøran Paulsen
Jens Bojsen-Møller
Olivier R. Seynnes
author_sort Amelie Werkhausen
title Effect of Training-Induced Changes in Achilles Tendon Stiffness on Muscle–Tendon Behavior During Landing
title_short Effect of Training-Induced Changes in Achilles Tendon Stiffness on Muscle–Tendon Behavior During Landing
title_full Effect of Training-Induced Changes in Achilles Tendon Stiffness on Muscle–Tendon Behavior During Landing
title_fullStr Effect of Training-Induced Changes in Achilles Tendon Stiffness on Muscle–Tendon Behavior During Landing
title_full_unstemmed Effect of Training-Induced Changes in Achilles Tendon Stiffness on Muscle–Tendon Behavior During Landing
title_sort effect of training-induced changes in achilles tendon stiffness on muscle–tendon behavior during landing
publisher Frontiers Media S.A.
series Frontiers in Physiology
issn 1664-042X
publishDate 2018-06-01
description During rapid deceleration of the body, tendons buffer part of the elongation of the muscle–tendon unit (MTU), enabling safe energy dissipation via eccentric muscle contraction. Yet, the influence of changes in tendon stiffness within the physiological range upon these lengthening contractions is unknown. This study aimed to examine the effect of training-induced stiffening of the Achilles tendon on triceps surae muscle–tendon behavior during a landing task. Twenty-one male subjects were assigned to either a 10-week resistance-training program consisting of single-leg isometric plantarflexion (n = 11) or to a non-training control group (n = 10). Before and after the training period, plantarflexion force, peak Achilles tendon strain and stiffness were measured during isometric contractions, using a combination of dynamometry, ultrasound and kinematics data. Additionally, testing included a step-landing task, during which joint mechanics and lengths of gastrocnemius and soleus fascicles, Achilles tendon, and MTU were determined using synchronized ultrasound, kinematics and kinetics data collection. After training, plantarflexion strength and Achilles tendon stiffness increased (15 and 18%, respectively), and tendon strain during landing remained similar. Likewise, lengthening and negative work produced by the gastrocnemius MTU did not change detectably. However, in the training group, gastrocnemius fascicle length was offset (8%) to a longer length at touch down and, surprisingly, fascicle lengthening and velocity were reduced by 27 and 21%, respectively. These changes were not observed for soleus fascicles when accounting for variation in task execution between tests. These results indicate that a training-induced increase in tendon stiffness does not noticeably affect the buffering action of the tendon when the MTU is rapidly stretched. Reductions in gastrocnemius fascicle lengthening and lengthening velocity during landing occurred independently from tendon strain. Future studies are required to provide insight into the mechanisms underpinning these observations and their influence on energy dissipation.
topic Achilles tendon
energy absorption
mechanical buffer
stiffness
tendon properties
energy dissipation
url https://www.frontiersin.org/article/10.3389/fphys.2018.00794/full
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