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Gli1(+) Cells Residing in Bone Sutures Respond to Mechanical Force via IP(3)R to Mediate Osteogenesis

Early orthodontic correction of skeletal malocclusion takes advantage of mechanical force to stimulate unclosed suture remodeling and to promote bone reconstruction; however, the underlying mechanisms remain largely unclear. Gli1(+) cells in maxillofacial sutures have been shown to participate in ma...

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Autores principales: Huang, Xiaoyao, Li, Zihan, Liu, Peisheng, Wu, Meiling, Liu, An-qi, Hu, Chenghu, Liu, Xuemei, Guo, Hao, Yang, Xiaoxue, Guo, Xiaohe, Li, Bei, He, Xiaoning, Xuan, Kun, Jin, Yan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8380501/
https://www.ncbi.nlm.nih.gov/pubmed/34434241
http://dx.doi.org/10.1155/2021/8138374
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author Huang, Xiaoyao
Li, Zihan
Liu, Peisheng
Wu, Meiling
Liu, An-qi
Hu, Chenghu
Liu, Xuemei
Guo, Hao
Yang, Xiaoxue
Guo, Xiaohe
Li, Bei
He, Xiaoning
Xuan, Kun
Jin, Yan
author_facet Huang, Xiaoyao
Li, Zihan
Liu, Peisheng
Wu, Meiling
Liu, An-qi
Hu, Chenghu
Liu, Xuemei
Guo, Hao
Yang, Xiaoxue
Guo, Xiaohe
Li, Bei
He, Xiaoning
Xuan, Kun
Jin, Yan
author_sort Huang, Xiaoyao
collection PubMed
description Early orthodontic correction of skeletal malocclusion takes advantage of mechanical force to stimulate unclosed suture remodeling and to promote bone reconstruction; however, the underlying mechanisms remain largely unclear. Gli1(+) cells in maxillofacial sutures have been shown to participate in maxillofacial bone development and damage repair. Nevertheless, it remains to be investigated whether these cells participate in mechanical force-induced bone remodeling during orthodontic treatment of skeletal malocclusion. In this study, rapid maxillary expansion (RME) mouse models and mechanical stretch loading cell models were established using two types of transgenic mice which are able to label Gli1(+) cells, and we found that Gli1(+) cells participated in mechanical force-induced osteogenesis both in vivo and in vitro. Besides, we found mechanical force-induced osteogenesis through inositol 1,4,5-trisphosphate receptor (IP(3)R), and we observed for the first time that inhibition of Gli1 suppressed an increase in mechanical force-induced IP3R overexpression, suggesting that Gli1(+) cells participate in mechanical force-induced osteogenesis through IP(3)R. Taken together, this study is the first to demonstrate that Gli1(+) cells in maxillofacial sutures are involved in mechanical force-induced bone formation through IP(3)R during orthodontic treatment of skeletal malocclusion. Furthermore, our results provide novel insights regarding the mechanism of orthodontic treatments of skeletal malocclusion.
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spelling pubmed-83805012021-08-24 Gli1(+) Cells Residing in Bone Sutures Respond to Mechanical Force via IP(3)R to Mediate Osteogenesis Huang, Xiaoyao Li, Zihan Liu, Peisheng Wu, Meiling Liu, An-qi Hu, Chenghu Liu, Xuemei Guo, Hao Yang, Xiaoxue Guo, Xiaohe Li, Bei He, Xiaoning Xuan, Kun Jin, Yan Stem Cells Int Research Article Early orthodontic correction of skeletal malocclusion takes advantage of mechanical force to stimulate unclosed suture remodeling and to promote bone reconstruction; however, the underlying mechanisms remain largely unclear. Gli1(+) cells in maxillofacial sutures have been shown to participate in maxillofacial bone development and damage repair. Nevertheless, it remains to be investigated whether these cells participate in mechanical force-induced bone remodeling during orthodontic treatment of skeletal malocclusion. In this study, rapid maxillary expansion (RME) mouse models and mechanical stretch loading cell models were established using two types of transgenic mice which are able to label Gli1(+) cells, and we found that Gli1(+) cells participated in mechanical force-induced osteogenesis both in vivo and in vitro. Besides, we found mechanical force-induced osteogenesis through inositol 1,4,5-trisphosphate receptor (IP(3)R), and we observed for the first time that inhibition of Gli1 suppressed an increase in mechanical force-induced IP3R overexpression, suggesting that Gli1(+) cells participate in mechanical force-induced osteogenesis through IP(3)R. Taken together, this study is the first to demonstrate that Gli1(+) cells in maxillofacial sutures are involved in mechanical force-induced bone formation through IP(3)R during orthodontic treatment of skeletal malocclusion. Furthermore, our results provide novel insights regarding the mechanism of orthodontic treatments of skeletal malocclusion. Hindawi 2021-08-12 /pmc/articles/PMC8380501/ /pubmed/34434241 http://dx.doi.org/10.1155/2021/8138374 Text en Copyright © 2021 Xiaoyao Huang et al. https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Huang, Xiaoyao
Li, Zihan
Liu, Peisheng
Wu, Meiling
Liu, An-qi
Hu, Chenghu
Liu, Xuemei
Guo, Hao
Yang, Xiaoxue
Guo, Xiaohe
Li, Bei
He, Xiaoning
Xuan, Kun
Jin, Yan
Gli1(+) Cells Residing in Bone Sutures Respond to Mechanical Force via IP(3)R to Mediate Osteogenesis
title Gli1(+) Cells Residing in Bone Sutures Respond to Mechanical Force via IP(3)R to Mediate Osteogenesis
title_full Gli1(+) Cells Residing in Bone Sutures Respond to Mechanical Force via IP(3)R to Mediate Osteogenesis
title_fullStr Gli1(+) Cells Residing in Bone Sutures Respond to Mechanical Force via IP(3)R to Mediate Osteogenesis
title_full_unstemmed Gli1(+) Cells Residing in Bone Sutures Respond to Mechanical Force via IP(3)R to Mediate Osteogenesis
title_short Gli1(+) Cells Residing in Bone Sutures Respond to Mechanical Force via IP(3)R to Mediate Osteogenesis
title_sort gli1(+) cells residing in bone sutures respond to mechanical force via ip(3)r to mediate osteogenesis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8380501/
https://www.ncbi.nlm.nih.gov/pubmed/34434241
http://dx.doi.org/10.1155/2021/8138374
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