Cargando…

A Dynamic Submaximal Fatigue Protocol Alters Wrist Biomechanical Properties and Proprioception

Fatigue is a temporary condition that arises as a result of intense and/or prolonged use of muscles and can affect skilled human performance. Therefore, the quantitative analysis of these effects is a topic of crucial interest in both ergonomics and clinical settings. This study introduced a novel p...

Descripción completa

Detalles Bibliográficos
Autores principales: Albanese, Giulia A., Falzarano, Valeria, Holmes, Michael W. R., Morasso, Pietro, Zenzeri, Jacopo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9196583/
https://www.ncbi.nlm.nih.gov/pubmed/35712530
http://dx.doi.org/10.3389/fnhum.2022.887270
_version_ 1784727226878525440
author Albanese, Giulia A.
Falzarano, Valeria
Holmes, Michael W. R.
Morasso, Pietro
Zenzeri, Jacopo
author_facet Albanese, Giulia A.
Falzarano, Valeria
Holmes, Michael W. R.
Morasso, Pietro
Zenzeri, Jacopo
author_sort Albanese, Giulia A.
collection PubMed
description Fatigue is a temporary condition that arises as a result of intense and/or prolonged use of muscles and can affect skilled human performance. Therefore, the quantitative analysis of these effects is a topic of crucial interest in both ergonomics and clinical settings. This study introduced a novel protocol, based on robotic techniques, to quantitatively assess the effects of fatigue on the human wrist joint. A wrist manipulandum was used for two concurrent purposes: (1) implementing the fatigue task and (2) assessing the functional changes both before and at four time points after the end of the fatigue task. Fourteen participants completed the experimental protocol, which included the fatigue task and assessment sessions over 2 days. Specifically, the assessments performed are related to the following indicators: (1) isometric forces, (2) biomechanical properties of the wrist, (3) position sense, and (4) stretch reflexes of the muscles involved. The proposed fatigue task was a short-term, submaximal and dynamic wrist flexion/extension task designed with a torque opposing wrist flexion. A novel task termination criterion was employed and based on a percentage decrease in the mean frequency of muscles measured using surface electromyography. The muscle fatigue analysis demonstrated a change in mean frequency for both the wrist flexors and extensors, however, only the isometric flexion force decreased 4 min after the end of the task. At the same time point, wrist position sense was significantly improved and stiffness was the lowest. Viscosity presented different behaviors depending on the direction evaluated. At the end of the experiment (about 12 min after the end of the fatigue task), wrist position sense recovered to pre-fatigue values, while biomechanical properties did not return to their pre-fatigue values. Due to the wide variety of fatigue tasks proposed in the literature, it has been difficult to define a complete framework that presents the dynamic of fatigue-related changes in different components associated with wrist function. This work enables us to discuss the possible causes and the mutual relationship of the changes detected after the same task.
format Online
Article
Text
id pubmed-9196583
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher Frontiers Media S.A.
record_format MEDLINE/PubMed
spelling pubmed-91965832022-06-15 A Dynamic Submaximal Fatigue Protocol Alters Wrist Biomechanical Properties and Proprioception Albanese, Giulia A. Falzarano, Valeria Holmes, Michael W. R. Morasso, Pietro Zenzeri, Jacopo Front Hum Neurosci Neuroscience Fatigue is a temporary condition that arises as a result of intense and/or prolonged use of muscles and can affect skilled human performance. Therefore, the quantitative analysis of these effects is a topic of crucial interest in both ergonomics and clinical settings. This study introduced a novel protocol, based on robotic techniques, to quantitatively assess the effects of fatigue on the human wrist joint. A wrist manipulandum was used for two concurrent purposes: (1) implementing the fatigue task and (2) assessing the functional changes both before and at four time points after the end of the fatigue task. Fourteen participants completed the experimental protocol, which included the fatigue task and assessment sessions over 2 days. Specifically, the assessments performed are related to the following indicators: (1) isometric forces, (2) biomechanical properties of the wrist, (3) position sense, and (4) stretch reflexes of the muscles involved. The proposed fatigue task was a short-term, submaximal and dynamic wrist flexion/extension task designed with a torque opposing wrist flexion. A novel task termination criterion was employed and based on a percentage decrease in the mean frequency of muscles measured using surface electromyography. The muscle fatigue analysis demonstrated a change in mean frequency for both the wrist flexors and extensors, however, only the isometric flexion force decreased 4 min after the end of the task. At the same time point, wrist position sense was significantly improved and stiffness was the lowest. Viscosity presented different behaviors depending on the direction evaluated. At the end of the experiment (about 12 min after the end of the fatigue task), wrist position sense recovered to pre-fatigue values, while biomechanical properties did not return to their pre-fatigue values. Due to the wide variety of fatigue tasks proposed in the literature, it has been difficult to define a complete framework that presents the dynamic of fatigue-related changes in different components associated with wrist function. This work enables us to discuss the possible causes and the mutual relationship of the changes detected after the same task. Frontiers Media S.A. 2022-05-30 /pmc/articles/PMC9196583/ /pubmed/35712530 http://dx.doi.org/10.3389/fnhum.2022.887270 Text en Copyright © 2022 Albanese, Falzarano, Holmes, Morasso and Zenzeri. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Neuroscience
Albanese, Giulia A.
Falzarano, Valeria
Holmes, Michael W. R.
Morasso, Pietro
Zenzeri, Jacopo
A Dynamic Submaximal Fatigue Protocol Alters Wrist Biomechanical Properties and Proprioception
title A Dynamic Submaximal Fatigue Protocol Alters Wrist Biomechanical Properties and Proprioception
title_full A Dynamic Submaximal Fatigue Protocol Alters Wrist Biomechanical Properties and Proprioception
title_fullStr A Dynamic Submaximal Fatigue Protocol Alters Wrist Biomechanical Properties and Proprioception
title_full_unstemmed A Dynamic Submaximal Fatigue Protocol Alters Wrist Biomechanical Properties and Proprioception
title_short A Dynamic Submaximal Fatigue Protocol Alters Wrist Biomechanical Properties and Proprioception
title_sort dynamic submaximal fatigue protocol alters wrist biomechanical properties and proprioception
topic Neuroscience
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9196583/
https://www.ncbi.nlm.nih.gov/pubmed/35712530
http://dx.doi.org/10.3389/fnhum.2022.887270
work_keys_str_mv AT albanesegiuliaa adynamicsubmaximalfatigueprotocolalterswristbiomechanicalpropertiesandproprioception
AT falzaranovaleria adynamicsubmaximalfatigueprotocolalterswristbiomechanicalpropertiesandproprioception
AT holmesmichaelwr adynamicsubmaximalfatigueprotocolalterswristbiomechanicalpropertiesandproprioception
AT morassopietro adynamicsubmaximalfatigueprotocolalterswristbiomechanicalpropertiesandproprioception
AT zenzerijacopo adynamicsubmaximalfatigueprotocolalterswristbiomechanicalpropertiesandproprioception
AT albanesegiuliaa dynamicsubmaximalfatigueprotocolalterswristbiomechanicalpropertiesandproprioception
AT falzaranovaleria dynamicsubmaximalfatigueprotocolalterswristbiomechanicalpropertiesandproprioception
AT holmesmichaelwr dynamicsubmaximalfatigueprotocolalterswristbiomechanicalpropertiesandproprioception
AT morassopietro dynamicsubmaximalfatigueprotocolalterswristbiomechanicalpropertiesandproprioception
AT zenzerijacopo dynamicsubmaximalfatigueprotocolalterswristbiomechanicalpropertiesandproprioception