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Vibration acceleration promotes endochondral formation during fracture healing through cellular chondrogenic differentiation

Vibration acceleration through whole body vibration has been reported to promote fracture healing. However, the mechanism responsible for this effect remains unclear. Purpose of this study was to determine whether vibration acceleration directly affects cells around the fracture site and promotes en...

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Autores principales: Yokoi, Hiroyuki, Take, Yasuhiro, Uchida, Ryohei, Magome, Takuya, Shimomura, Kazunori, Mae, Tatsuo, Okamoto, Tomoko, Hanai, Tatsuhiro, Chong, Yang, Sato, Seira, Hikida, Minami, Nakata, Ken
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7058294/
https://www.ncbi.nlm.nih.gov/pubmed/32134943
http://dx.doi.org/10.1371/journal.pone.0229127
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author Yokoi, Hiroyuki
Take, Yasuhiro
Uchida, Ryohei
Magome, Takuya
Shimomura, Kazunori
Mae, Tatsuo
Okamoto, Tomoko
Hanai, Tatsuhiro
Chong, Yang
Sato, Seira
Hikida, Minami
Nakata, Ken
author_facet Yokoi, Hiroyuki
Take, Yasuhiro
Uchida, Ryohei
Magome, Takuya
Shimomura, Kazunori
Mae, Tatsuo
Okamoto, Tomoko
Hanai, Tatsuhiro
Chong, Yang
Sato, Seira
Hikida, Minami
Nakata, Ken
author_sort Yokoi, Hiroyuki
collection PubMed
description Vibration acceleration through whole body vibration has been reported to promote fracture healing. However, the mechanism responsible for this effect remains unclear. Purpose of this study was to determine whether vibration acceleration directly affects cells around the fracture site and promotes endochondral ossification. Four-week-old female Wistar Hannover rats were divided into two groups (vibration [V group] and control [C group]). The eighth ribs on both sides were cut vertically using scissors. From postoperative day 3 to 11, vibration acceleration using Power Plate(®) (30 Hz, low amplitude [30-Low], 10 min/day) was applied in the V group. Mature calluses appeared earlier in the V group than in the C group by histological analysis. The GAG content in the fracture callus on day 6 was significantly higher in the V group than in the C group. The mRNA expressions of SOX-9, aggrecan, and Col-II in the fracture callus on day 6 and Col-X on day 9 were significantly higher in the V group than in the C group. For in vitro analysis, four different conditions of vibration acceleration (30 or 50 Hz with low or high amplitude [30-Low, 30-High, 50-Low, and 50-High], 10 min/day) were applied to a prechondrogenic cell (ATDC5) and an undifferentiated cell (C3H10T1/2). There was no significant difference in cell proliferation between the control and any of the four vibration conditions for both cell lines. For both cell lines, alcian blue staining was greater under 30-Low and 50-Low conditions than under control as well as 30-High and 50-High conditions on days 7 and 14. Vibration acceleration under 30-L condition upregulated chondrogenic gene expressions of SOX-9, aggrecan, Col-II, and Col-X. Low-amplitude vibration acceleration can promote endochondral ossification in the fracture healing in vivo and chondrogenic differentiation in vitro.
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spelling pubmed-70582942020-03-13 Vibration acceleration promotes endochondral formation during fracture healing through cellular chondrogenic differentiation Yokoi, Hiroyuki Take, Yasuhiro Uchida, Ryohei Magome, Takuya Shimomura, Kazunori Mae, Tatsuo Okamoto, Tomoko Hanai, Tatsuhiro Chong, Yang Sato, Seira Hikida, Minami Nakata, Ken PLoS One Research Article Vibration acceleration through whole body vibration has been reported to promote fracture healing. However, the mechanism responsible for this effect remains unclear. Purpose of this study was to determine whether vibration acceleration directly affects cells around the fracture site and promotes endochondral ossification. Four-week-old female Wistar Hannover rats were divided into two groups (vibration [V group] and control [C group]). The eighth ribs on both sides were cut vertically using scissors. From postoperative day 3 to 11, vibration acceleration using Power Plate(®) (30 Hz, low amplitude [30-Low], 10 min/day) was applied in the V group. Mature calluses appeared earlier in the V group than in the C group by histological analysis. The GAG content in the fracture callus on day 6 was significantly higher in the V group than in the C group. The mRNA expressions of SOX-9, aggrecan, and Col-II in the fracture callus on day 6 and Col-X on day 9 were significantly higher in the V group than in the C group. For in vitro analysis, four different conditions of vibration acceleration (30 or 50 Hz with low or high amplitude [30-Low, 30-High, 50-Low, and 50-High], 10 min/day) were applied to a prechondrogenic cell (ATDC5) and an undifferentiated cell (C3H10T1/2). There was no significant difference in cell proliferation between the control and any of the four vibration conditions for both cell lines. For both cell lines, alcian blue staining was greater under 30-Low and 50-Low conditions than under control as well as 30-High and 50-High conditions on days 7 and 14. Vibration acceleration under 30-L condition upregulated chondrogenic gene expressions of SOX-9, aggrecan, Col-II, and Col-X. Low-amplitude vibration acceleration can promote endochondral ossification in the fracture healing in vivo and chondrogenic differentiation in vitro. Public Library of Science 2020-03-05 /pmc/articles/PMC7058294/ /pubmed/32134943 http://dx.doi.org/10.1371/journal.pone.0229127 Text en © 2020 Yokoi et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://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 Research Article
Yokoi, Hiroyuki
Take, Yasuhiro
Uchida, Ryohei
Magome, Takuya
Shimomura, Kazunori
Mae, Tatsuo
Okamoto, Tomoko
Hanai, Tatsuhiro
Chong, Yang
Sato, Seira
Hikida, Minami
Nakata, Ken
Vibration acceleration promotes endochondral formation during fracture healing through cellular chondrogenic differentiation
title Vibration acceleration promotes endochondral formation during fracture healing through cellular chondrogenic differentiation
title_full Vibration acceleration promotes endochondral formation during fracture healing through cellular chondrogenic differentiation
title_fullStr Vibration acceleration promotes endochondral formation during fracture healing through cellular chondrogenic differentiation
title_full_unstemmed Vibration acceleration promotes endochondral formation during fracture healing through cellular chondrogenic differentiation
title_short Vibration acceleration promotes endochondral formation during fracture healing through cellular chondrogenic differentiation
title_sort vibration acceleration promotes endochondral formation during fracture healing through cellular chondrogenic differentiation
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7058294/
https://www.ncbi.nlm.nih.gov/pubmed/32134943
http://dx.doi.org/10.1371/journal.pone.0229127
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