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Whole body vibration accelerates the functional recovery of motor nerve components in sciatic nerve-crush injury model rats

This study aimed to investigate the effect of whole body vibration (WBV) on the sensory and motor nerve components with sciatic nerve injury model rats. Surgery was performed on 21 female Wister rats (6–8 weeks) under intraperitoneal anesthesia. The nerve-crush injuries for the left sciatic nerve we...

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Autores principales: Doi, Atsushi, Oda, Kyoka, Matsumoto, Masaki, Sakoguchi, Honoka, Honda, Mizuki, Ogata, Yuma, Nakano, Asuka, Taniguchi, Misato, Fukushima, Shunya, Imayoshi, Kyogo, Nagao, Kanta, Toyoda, Masami, Kameyama, Hiroki, Sonohata, Motoki, Shin, Min-Chul
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Korean Society of Exercise Rehabilitation 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10331141/
https://www.ncbi.nlm.nih.gov/pubmed/37435594
http://dx.doi.org/10.12965/jer.2346178.089
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author Doi, Atsushi
Oda, Kyoka
Matsumoto, Masaki
Sakoguchi, Honoka
Honda, Mizuki
Ogata, Yuma
Nakano, Asuka
Taniguchi, Misato
Fukushima, Shunya
Imayoshi, Kyogo
Nagao, Kanta
Toyoda, Masami
Kameyama, Hiroki
Sonohata, Motoki
Shin, Min-Chul
author_facet Doi, Atsushi
Oda, Kyoka
Matsumoto, Masaki
Sakoguchi, Honoka
Honda, Mizuki
Ogata, Yuma
Nakano, Asuka
Taniguchi, Misato
Fukushima, Shunya
Imayoshi, Kyogo
Nagao, Kanta
Toyoda, Masami
Kameyama, Hiroki
Sonohata, Motoki
Shin, Min-Chul
author_sort Doi, Atsushi
collection PubMed
description This study aimed to investigate the effect of whole body vibration (WBV) on the sensory and motor nerve components with sciatic nerve injury model rats. Surgery was performed on 21 female Wister rats (6–8 weeks) under intraperitoneal anesthesia. The nerve-crush injuries for the left sciatic nerve were inflicted using a Sugita aneurysm clip. The sciatic nerve model rats were randomly divided into two groups (n=9; control group, n=12; WBV group). The rats in the WBV group walked in the cage with a vibratory stimulus (frequency 50 Hz, 20 min/day, 5 times/wk), while those in the control group walked in the cage without any vibratory stimulus. We used heat stimulation-induced sensory threshold and lumbar magnetic stimulation-induced motor-evoked potentials (MEPs) to measure the sensory and motor nerve components, respectively. Further, morphological measurements, bilateral hind-limb dimension, bilateral gastrocnemius dimension, and weight were evaluated. Consequently, there were no significant differences in the sensory threshold at the injury side between the control and WBV groups. However, at 4 and 6 weeks postoperatively, MEPs latencies in the WBV group were significantly shorter than those in the control group. Furthermore, both sides of the hind-limb dimension at 6 weeks postoperatively, the left side of the gastrocnemius dimension, and both sides of the gastrocnemius weight significantly increased. In conclusion, WBV especially accelerates the functional recovery of motor nerve components in sciatic nerve-crush injury model rats.
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spelling pubmed-103311412023-07-11 Whole body vibration accelerates the functional recovery of motor nerve components in sciatic nerve-crush injury model rats Doi, Atsushi Oda, Kyoka Matsumoto, Masaki Sakoguchi, Honoka Honda, Mizuki Ogata, Yuma Nakano, Asuka Taniguchi, Misato Fukushima, Shunya Imayoshi, Kyogo Nagao, Kanta Toyoda, Masami Kameyama, Hiroki Sonohata, Motoki Shin, Min-Chul J Exerc Rehabil Original Article This study aimed to investigate the effect of whole body vibration (WBV) on the sensory and motor nerve components with sciatic nerve injury model rats. Surgery was performed on 21 female Wister rats (6–8 weeks) under intraperitoneal anesthesia. The nerve-crush injuries for the left sciatic nerve were inflicted using a Sugita aneurysm clip. The sciatic nerve model rats were randomly divided into two groups (n=9; control group, n=12; WBV group). The rats in the WBV group walked in the cage with a vibratory stimulus (frequency 50 Hz, 20 min/day, 5 times/wk), while those in the control group walked in the cage without any vibratory stimulus. We used heat stimulation-induced sensory threshold and lumbar magnetic stimulation-induced motor-evoked potentials (MEPs) to measure the sensory and motor nerve components, respectively. Further, morphological measurements, bilateral hind-limb dimension, bilateral gastrocnemius dimension, and weight were evaluated. Consequently, there were no significant differences in the sensory threshold at the injury side between the control and WBV groups. However, at 4 and 6 weeks postoperatively, MEPs latencies in the WBV group were significantly shorter than those in the control group. Furthermore, both sides of the hind-limb dimension at 6 weeks postoperatively, the left side of the gastrocnemius dimension, and both sides of the gastrocnemius weight significantly increased. In conclusion, WBV especially accelerates the functional recovery of motor nerve components in sciatic nerve-crush injury model rats. Korean Society of Exercise Rehabilitation 2023-06-28 /pmc/articles/PMC10331141/ /pubmed/37435594 http://dx.doi.org/10.12965/jer.2346178.089 Text en Copyright © 2023 Korean Society of Exercise Rehabilitation https://creativecommons.org/licenses/by-nc/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (https://creativecommons.org/licenses/by-nc/4.0/) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Article
Doi, Atsushi
Oda, Kyoka
Matsumoto, Masaki
Sakoguchi, Honoka
Honda, Mizuki
Ogata, Yuma
Nakano, Asuka
Taniguchi, Misato
Fukushima, Shunya
Imayoshi, Kyogo
Nagao, Kanta
Toyoda, Masami
Kameyama, Hiroki
Sonohata, Motoki
Shin, Min-Chul
Whole body vibration accelerates the functional recovery of motor nerve components in sciatic nerve-crush injury model rats
title Whole body vibration accelerates the functional recovery of motor nerve components in sciatic nerve-crush injury model rats
title_full Whole body vibration accelerates the functional recovery of motor nerve components in sciatic nerve-crush injury model rats
title_fullStr Whole body vibration accelerates the functional recovery of motor nerve components in sciatic nerve-crush injury model rats
title_full_unstemmed Whole body vibration accelerates the functional recovery of motor nerve components in sciatic nerve-crush injury model rats
title_short Whole body vibration accelerates the functional recovery of motor nerve components in sciatic nerve-crush injury model rats
title_sort whole body vibration accelerates the functional recovery of motor nerve components in sciatic nerve-crush injury model rats
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10331141/
https://www.ncbi.nlm.nih.gov/pubmed/37435594
http://dx.doi.org/10.12965/jer.2346178.089
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