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Movement in low gravity environments (MoLo) programme–The MoLo-L.O.O.P. study protocol

BACKGROUND: Exposure to prolonged periods in microgravity is associated with deconditioning of the musculoskeletal system due to chronic changes in mechanical stimulation. Given astronauts will operate on the Lunar surface for extended periods of time, it is critical to quantify both external (e.g.,...

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Autores principales: Herssens, Nolan, Cowburn, James, Albracht, Kirsten, Braunstein, Bjoern, Cazzola, Dario, Colyer, Steffi, Minetti, Alberto E., Pavei, Gaspare, Rittweger, Jörn, Weber, Tobias, Green, David A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9683620/
https://www.ncbi.nlm.nih.gov/pubmed/36417480
http://dx.doi.org/10.1371/journal.pone.0278051
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author Herssens, Nolan
Cowburn, James
Albracht, Kirsten
Braunstein, Bjoern
Cazzola, Dario
Colyer, Steffi
Minetti, Alberto E.
Pavei, Gaspare
Rittweger, Jörn
Weber, Tobias
Green, David A.
author_facet Herssens, Nolan
Cowburn, James
Albracht, Kirsten
Braunstein, Bjoern
Cazzola, Dario
Colyer, Steffi
Minetti, Alberto E.
Pavei, Gaspare
Rittweger, Jörn
Weber, Tobias
Green, David A.
author_sort Herssens, Nolan
collection PubMed
description BACKGROUND: Exposure to prolonged periods in microgravity is associated with deconditioning of the musculoskeletal system due to chronic changes in mechanical stimulation. Given astronauts will operate on the Lunar surface for extended periods of time, it is critical to quantify both external (e.g., ground reaction forces) and internal (e.g., joint reaction forces) loads of relevant movements performed during Lunar missions. Such knowledge is key to predict musculoskeletal deconditioning and determine appropriate exercise countermeasures associated with extended exposure to hypogravity. OBJECTIVES: The aim of this paper is to define an experimental protocol and methodology suitable to estimate in high-fidelity hypogravity conditions the lower limb internal joint reaction forces. State-of-the-art movement kinetics, kinematics, muscle activation and muscle-tendon unit behaviour during locomotor and plyometric movements will be collected and used as inputs (Objective 1), with musculoskeletal modelling and an optimisation framework used to estimate lower limb internal joint loading (Objective 2). METHODS: Twenty-six healthy participants will be recruited for this cross-sectional study. Participants will walk, skip and run, at speeds ranging between 0.56–3.6 m/s, and perform plyometric movement trials at each gravity level (1, 0.7, 0.5, 0.38, 0.27 and 0.16g) in a randomized order. Through the collection of state-of-the-art kinetics, kinematics, muscle activation and muscle-tendon behaviour, a musculoskeletal modelling framework will be used to estimate lower limb joint reaction forces via tracking simulations. CONCLUSION: The results of this study will provide first estimations of internal musculoskeletal loads associated with human movement performed in a range of hypogravity levels. Thus, our unique data will be a key step towards modelling the musculoskeletal deconditioning associated with long term habitation on the Lunar surface, and thereby aiding the design of Lunar exercise countermeasures and mitigation strategies.
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spelling pubmed-96836202022-11-24 Movement in low gravity environments (MoLo) programme–The MoLo-L.O.O.P. study protocol Herssens, Nolan Cowburn, James Albracht, Kirsten Braunstein, Bjoern Cazzola, Dario Colyer, Steffi Minetti, Alberto E. Pavei, Gaspare Rittweger, Jörn Weber, Tobias Green, David A. PLoS One Study Protocol BACKGROUND: Exposure to prolonged periods in microgravity is associated with deconditioning of the musculoskeletal system due to chronic changes in mechanical stimulation. Given astronauts will operate on the Lunar surface for extended periods of time, it is critical to quantify both external (e.g., ground reaction forces) and internal (e.g., joint reaction forces) loads of relevant movements performed during Lunar missions. Such knowledge is key to predict musculoskeletal deconditioning and determine appropriate exercise countermeasures associated with extended exposure to hypogravity. OBJECTIVES: The aim of this paper is to define an experimental protocol and methodology suitable to estimate in high-fidelity hypogravity conditions the lower limb internal joint reaction forces. State-of-the-art movement kinetics, kinematics, muscle activation and muscle-tendon unit behaviour during locomotor and plyometric movements will be collected and used as inputs (Objective 1), with musculoskeletal modelling and an optimisation framework used to estimate lower limb internal joint loading (Objective 2). METHODS: Twenty-six healthy participants will be recruited for this cross-sectional study. Participants will walk, skip and run, at speeds ranging between 0.56–3.6 m/s, and perform plyometric movement trials at each gravity level (1, 0.7, 0.5, 0.38, 0.27 and 0.16g) in a randomized order. Through the collection of state-of-the-art kinetics, kinematics, muscle activation and muscle-tendon behaviour, a musculoskeletal modelling framework will be used to estimate lower limb joint reaction forces via tracking simulations. CONCLUSION: The results of this study will provide first estimations of internal musculoskeletal loads associated with human movement performed in a range of hypogravity levels. Thus, our unique data will be a key step towards modelling the musculoskeletal deconditioning associated with long term habitation on the Lunar surface, and thereby aiding the design of Lunar exercise countermeasures and mitigation strategies. Public Library of Science 2022-11-23 /pmc/articles/PMC9683620/ /pubmed/36417480 http://dx.doi.org/10.1371/journal.pone.0278051 Text en © 2022 Herssens 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, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Study Protocol
Herssens, Nolan
Cowburn, James
Albracht, Kirsten
Braunstein, Bjoern
Cazzola, Dario
Colyer, Steffi
Minetti, Alberto E.
Pavei, Gaspare
Rittweger, Jörn
Weber, Tobias
Green, David A.
Movement in low gravity environments (MoLo) programme–The MoLo-L.O.O.P. study protocol
title Movement in low gravity environments (MoLo) programme–The MoLo-L.O.O.P. study protocol
title_full Movement in low gravity environments (MoLo) programme–The MoLo-L.O.O.P. study protocol
title_fullStr Movement in low gravity environments (MoLo) programme–The MoLo-L.O.O.P. study protocol
title_full_unstemmed Movement in low gravity environments (MoLo) programme–The MoLo-L.O.O.P. study protocol
title_short Movement in low gravity environments (MoLo) programme–The MoLo-L.O.O.P. study protocol
title_sort movement in low gravity environments (molo) programme–the molo-l.o.o.p. study protocol
topic Study Protocol
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9683620/
https://www.ncbi.nlm.nih.gov/pubmed/36417480
http://dx.doi.org/10.1371/journal.pone.0278051
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