Muscle structure governs joint function: linking natural variation in medial gastrocnemius structure with isokinetic plantar flexor function

Despite the robust findings linking plantar flexor muscle structure to gross function within athletes, the elderly and patients following Achilles tendon ruptures, the link between natural variation in plantar flexor structure and function in healthy adults is unclear. In this study, we determined t...

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Main Authors: John F. Drazan, Todd J. Hullfish, Josh R. Baxter
Format: Article
Language:English
Published: The Company of Biologists 2019-12-01
Series:Biology Open
Subjects:
Online Access:http://bio.biologists.org/content/8/12/bio048520
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spelling doaj-24659800f3c9405e8b8d46c65a6e8bcc2021-06-02T13:14:19ZengThe Company of BiologistsBiology Open2046-63902019-12-0181210.1242/bio.048520048520Muscle structure governs joint function: linking natural variation in medial gastrocnemius structure with isokinetic plantar flexor functionJohn F. Drazan0Todd J. Hullfish1Josh R. Baxter2 Department of Orthopedic Surgery, University of Pennsylvania, Philadelphia, PA 19104, USA Department of Orthopedic Surgery, University of Pennsylvania, Philadelphia, PA 19104, USA Department of Orthopedic Surgery, University of Pennsylvania, Philadelphia, PA 19104, USA Despite the robust findings linking plantar flexor muscle structure to gross function within athletes, the elderly and patients following Achilles tendon ruptures, the link between natural variation in plantar flexor structure and function in healthy adults is unclear. In this study, we determined the relationship between medial gastrocnemius structure and peak torque and total work about the ankle during maximal effort contractions. We measured resting fascicle length and pennation angle using ultrasound in healthy adults (N=12). Subjects performed maximal effort isometric and isokinetic contractions on a dynamometer. We found that longer fascicles were positively correlated with higher peak torque and total work (R2>0.41, P<0.013) across all isokinetic velocities, ranging from slow (30°/s) to fast (210°/s) contractions. Higher pennation angles were negatively correlated with peak torque and total work (R2>0.296, P<0.067). These correlations were not significant in isometric conditions. We further explored this relationship using a simple computational model to simulate isokinetic contractions. These simulations confirmed that longer fascicle lengths generate more joint torque and work throughout a greater range of motion. This study provides evidence that ankle function is strongly influenced by muscle structure in healthy adults.http://bio.biologists.org/content/8/12/bio048520ultrasounddynamometerforce-lengthforce-velocityanklestructure-function
collection DOAJ
language English
format Article
sources DOAJ
author John F. Drazan
Todd J. Hullfish
Josh R. Baxter
spellingShingle John F. Drazan
Todd J. Hullfish
Josh R. Baxter
Muscle structure governs joint function: linking natural variation in medial gastrocnemius structure with isokinetic plantar flexor function
Biology Open
ultrasound
dynamometer
force-length
force-velocity
ankle
structure-function
author_facet John F. Drazan
Todd J. Hullfish
Josh R. Baxter
author_sort John F. Drazan
title Muscle structure governs joint function: linking natural variation in medial gastrocnemius structure with isokinetic plantar flexor function
title_short Muscle structure governs joint function: linking natural variation in medial gastrocnemius structure with isokinetic plantar flexor function
title_full Muscle structure governs joint function: linking natural variation in medial gastrocnemius structure with isokinetic plantar flexor function
title_fullStr Muscle structure governs joint function: linking natural variation in medial gastrocnemius structure with isokinetic plantar flexor function
title_full_unstemmed Muscle structure governs joint function: linking natural variation in medial gastrocnemius structure with isokinetic plantar flexor function
title_sort muscle structure governs joint function: linking natural variation in medial gastrocnemius structure with isokinetic plantar flexor function
publisher The Company of Biologists
series Biology Open
issn 2046-6390
publishDate 2019-12-01
description Despite the robust findings linking plantar flexor muscle structure to gross function within athletes, the elderly and patients following Achilles tendon ruptures, the link between natural variation in plantar flexor structure and function in healthy adults is unclear. In this study, we determined the relationship between medial gastrocnemius structure and peak torque and total work about the ankle during maximal effort contractions. We measured resting fascicle length and pennation angle using ultrasound in healthy adults (N=12). Subjects performed maximal effort isometric and isokinetic contractions on a dynamometer. We found that longer fascicles were positively correlated with higher peak torque and total work (R2>0.41, P<0.013) across all isokinetic velocities, ranging from slow (30°/s) to fast (210°/s) contractions. Higher pennation angles were negatively correlated with peak torque and total work (R2>0.296, P<0.067). These correlations were not significant in isometric conditions. We further explored this relationship using a simple computational model to simulate isokinetic contractions. These simulations confirmed that longer fascicle lengths generate more joint torque and work throughout a greater range of motion. This study provides evidence that ankle function is strongly influenced by muscle structure in healthy adults.
topic ultrasound
dynamometer
force-length
force-velocity
ankle
structure-function
url http://bio.biologists.org/content/8/12/bio048520
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