Cargando…

Muscle activity in the lower limbs during push-down movement with a new active-exercise apparatus for the leg

[Purpose] Lower-limb deep vein thrombosis is a complication of orthopedic surgery. A leg-exercise apparatus named “LEX” was developed as a novel active-exercise apparatus for deep vein thrombosis prevention. Muscle activity was evaluated to assess the effectiveness of exercise with LEX in the preven...

Descripción completa

Detalles Bibliográficos
Autores principales: Tanaka, Kenta, Kamada, Hiroshi, Shimizu, Yukiyo, Aikawa, Shizu, Irie, Shun, Ochiai, Naoyuki, Sakane, Masataka, Yamazaki, Masashi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Society of Physical Therapy Science 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4842422/
https://www.ncbi.nlm.nih.gov/pubmed/27134410
http://dx.doi.org/10.1589/jpts.28.1050
_version_ 1782428511479267328
author Tanaka, Kenta
Kamada, Hiroshi
Shimizu, Yukiyo
Aikawa, Shizu
Irie, Shun
Ochiai, Naoyuki
Sakane, Masataka
Yamazaki, Masashi
author_facet Tanaka, Kenta
Kamada, Hiroshi
Shimizu, Yukiyo
Aikawa, Shizu
Irie, Shun
Ochiai, Naoyuki
Sakane, Masataka
Yamazaki, Masashi
author_sort Tanaka, Kenta
collection PubMed
description [Purpose] Lower-limb deep vein thrombosis is a complication of orthopedic surgery. A leg-exercise apparatus named “LEX” was developed as a novel active-exercise apparatus for deep vein thrombosis prevention. Muscle activity was evaluated to assess the effectiveness of exercise with LEX in the prevention. [Subjects] Eight healthy volunteers participated in this study. [Methods] Muscle activities were determined through electromyography during exercise with LEX [LEX (+)] and during active ankle movements [LEX (−)]. The end points were peak % maximum voluntary contraction and % integrated electromyogram of rectus femoris, vastus lateralis, biceps femoris, tibialis anterior, gastrocnemius, and soleus. [Results] LEX (+) resulted in higher average values in all muscles except the tibialis anterior. Significant differences were noted in the peak of the biceps femoris and gastrocnemius and in the integrated electromyogram of the rectus femoris, vastus lateralis, gastrocnemius, and soleus. The LEX (+)/LEX (−) ratio of the peak was 2.2 for the biceps femoris and 2.0 for the gastrocnemius . The integrated electromyogram was 1.8 for the gastrocnemius, 1.5 for the rectus femoris, 1.4 for the vastus lateralis, and 1.2 for the soleus. [Conclusion] Higher muscle activity was observed with LEX (+). LEX might be a good tool for increasing lower-limb blood flow and deep vein thrombosis prevention.
format Online
Article
Text
id pubmed-4842422
institution National Center for Biotechnology Information
language English
publishDate 2016
publisher The Society of Physical Therapy Science
record_format MEDLINE/PubMed
spelling pubmed-48424222016-04-29 Muscle activity in the lower limbs during push-down movement with a new active-exercise apparatus for the leg Tanaka, Kenta Kamada, Hiroshi Shimizu, Yukiyo Aikawa, Shizu Irie, Shun Ochiai, Naoyuki Sakane, Masataka Yamazaki, Masashi J Phys Ther Sci Original Article [Purpose] Lower-limb deep vein thrombosis is a complication of orthopedic surgery. A leg-exercise apparatus named “LEX” was developed as a novel active-exercise apparatus for deep vein thrombosis prevention. Muscle activity was evaluated to assess the effectiveness of exercise with LEX in the prevention. [Subjects] Eight healthy volunteers participated in this study. [Methods] Muscle activities were determined through electromyography during exercise with LEX [LEX (+)] and during active ankle movements [LEX (−)]. The end points were peak % maximum voluntary contraction and % integrated electromyogram of rectus femoris, vastus lateralis, biceps femoris, tibialis anterior, gastrocnemius, and soleus. [Results] LEX (+) resulted in higher average values in all muscles except the tibialis anterior. Significant differences were noted in the peak of the biceps femoris and gastrocnemius and in the integrated electromyogram of the rectus femoris, vastus lateralis, gastrocnemius, and soleus. The LEX (+)/LEX (−) ratio of the peak was 2.2 for the biceps femoris and 2.0 for the gastrocnemius . The integrated electromyogram was 1.8 for the gastrocnemius, 1.5 for the rectus femoris, 1.4 for the vastus lateralis, and 1.2 for the soleus. [Conclusion] Higher muscle activity was observed with LEX (+). LEX might be a good tool for increasing lower-limb blood flow and deep vein thrombosis prevention. The Society of Physical Therapy Science 2016-03-31 2016-03 /pmc/articles/PMC4842422/ /pubmed/27134410 http://dx.doi.org/10.1589/jpts.28.1050 Text en 2016©by the Society of Physical Therapy Science. Published by IPEC Inc. http://creativecommons.org/licenses/by-nc-nd/3.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution Non-Commercial No Derivatives (by-nc-nd) License.
spellingShingle Original Article
Tanaka, Kenta
Kamada, Hiroshi
Shimizu, Yukiyo
Aikawa, Shizu
Irie, Shun
Ochiai, Naoyuki
Sakane, Masataka
Yamazaki, Masashi
Muscle activity in the lower limbs during push-down movement with a new active-exercise apparatus for the leg
title Muscle activity in the lower limbs during push-down movement with a new active-exercise apparatus for the leg
title_full Muscle activity in the lower limbs during push-down movement with a new active-exercise apparatus for the leg
title_fullStr Muscle activity in the lower limbs during push-down movement with a new active-exercise apparatus for the leg
title_full_unstemmed Muscle activity in the lower limbs during push-down movement with a new active-exercise apparatus for the leg
title_short Muscle activity in the lower limbs during push-down movement with a new active-exercise apparatus for the leg
title_sort muscle activity in the lower limbs during push-down movement with a new active-exercise apparatus for the leg
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4842422/
https://www.ncbi.nlm.nih.gov/pubmed/27134410
http://dx.doi.org/10.1589/jpts.28.1050
work_keys_str_mv AT tanakakenta muscleactivityinthelowerlimbsduringpushdownmovementwithanewactiveexerciseapparatusfortheleg
AT kamadahiroshi muscleactivityinthelowerlimbsduringpushdownmovementwithanewactiveexerciseapparatusfortheleg
AT shimizuyukiyo muscleactivityinthelowerlimbsduringpushdownmovementwithanewactiveexerciseapparatusfortheleg
AT aikawashizu muscleactivityinthelowerlimbsduringpushdownmovementwithanewactiveexerciseapparatusfortheleg
AT irieshun muscleactivityinthelowerlimbsduringpushdownmovementwithanewactiveexerciseapparatusfortheleg
AT ochiainaoyuki muscleactivityinthelowerlimbsduringpushdownmovementwithanewactiveexerciseapparatusfortheleg
AT sakanemasataka muscleactivityinthelowerlimbsduringpushdownmovementwithanewactiveexerciseapparatusfortheleg
AT yamazakimasashi muscleactivityinthelowerlimbsduringpushdownmovementwithanewactiveexerciseapparatusfortheleg