Cargando…

Biomechanical stress regulates mammalian tooth replacement via the integrin β1‐RUNX2‐Wnt pathway

Renewal of integumentary organs occurs cyclically throughout an organism's lifetime, but the mechanism that initiates each cycle remains largely unknown. In a miniature pig model of tooth development that resembles tooth development in humans, the permanent tooth did not begin transitioning fro...

Descripción completa

Detalles Bibliográficos
Autores principales: Wu, Xiaoshan, Hu, Jinrong, Li, Guoqing, Li, Yan, Li, Yang, Zhang, Jing, Wang, Fu, Li, Ang, Hu, Lei, Fan, Zhipeng, Lü, Shouqin, Ding, Gang, Zhang, Chunmei, Wang, Jinsong, Long, Mian, Wang, Songlin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6996503/
https://www.ncbi.nlm.nih.gov/pubmed/31830314
http://dx.doi.org/10.15252/embj.2019102374
_version_ 1783493526007316480
author Wu, Xiaoshan
Hu, Jinrong
Li, Guoqing
Li, Yan
Li, Yang
Zhang, Jing
Wang, Fu
Li, Ang
Hu, Lei
Fan, Zhipeng
Lü, Shouqin
Ding, Gang
Zhang, Chunmei
Wang, Jinsong
Long, Mian
Wang, Songlin
author_facet Wu, Xiaoshan
Hu, Jinrong
Li, Guoqing
Li, Yan
Li, Yang
Zhang, Jing
Wang, Fu
Li, Ang
Hu, Lei
Fan, Zhipeng
Lü, Shouqin
Ding, Gang
Zhang, Chunmei
Wang, Jinsong
Long, Mian
Wang, Songlin
author_sort Wu, Xiaoshan
collection PubMed
description Renewal of integumentary organs occurs cyclically throughout an organism's lifetime, but the mechanism that initiates each cycle remains largely unknown. In a miniature pig model of tooth development that resembles tooth development in humans, the permanent tooth did not begin transitioning from the resting to the initiation stage until the deciduous tooth began to erupt. This eruption released the accumulated mechanical stress inside the mandible. Mechanical stress prevented permanent tooth development by regulating expression and activity of the integrin β1‐ERK1‐RUNX2 axis in the surrounding mesenchyme. We observed similar molecular expression patterns in human tooth germs. Importantly, the release of biomechanical stress induced downregulation of RUNX2‐wingless/integrated (Wnt) signaling in the mesenchyme between the deciduous and permanent tooth and upregulation of Wnt signaling in the epithelium of the permanent tooth, triggering initiation of its development. Consequently, our findings identified biomechanical stress‐associated Wnt modulation as a critical initiator of organ renewal, possibly shedding light on the mechanisms of integumentary organ regeneration.
format Online
Article
Text
id pubmed-6996503
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher John Wiley and Sons Inc.
record_format MEDLINE/PubMed
spelling pubmed-69965032020-02-05 Biomechanical stress regulates mammalian tooth replacement via the integrin β1‐RUNX2‐Wnt pathway Wu, Xiaoshan Hu, Jinrong Li, Guoqing Li, Yan Li, Yang Zhang, Jing Wang, Fu Li, Ang Hu, Lei Fan, Zhipeng Lü, Shouqin Ding, Gang Zhang, Chunmei Wang, Jinsong Long, Mian Wang, Songlin EMBO J Articles Renewal of integumentary organs occurs cyclically throughout an organism's lifetime, but the mechanism that initiates each cycle remains largely unknown. In a miniature pig model of tooth development that resembles tooth development in humans, the permanent tooth did not begin transitioning from the resting to the initiation stage until the deciduous tooth began to erupt. This eruption released the accumulated mechanical stress inside the mandible. Mechanical stress prevented permanent tooth development by regulating expression and activity of the integrin β1‐ERK1‐RUNX2 axis in the surrounding mesenchyme. We observed similar molecular expression patterns in human tooth germs. Importantly, the release of biomechanical stress induced downregulation of RUNX2‐wingless/integrated (Wnt) signaling in the mesenchyme between the deciduous and permanent tooth and upregulation of Wnt signaling in the epithelium of the permanent tooth, triggering initiation of its development. Consequently, our findings identified biomechanical stress‐associated Wnt modulation as a critical initiator of organ renewal, possibly shedding light on the mechanisms of integumentary organ regeneration. John Wiley and Sons Inc. 2019-12-12 2020-02-03 /pmc/articles/PMC6996503/ /pubmed/31830314 http://dx.doi.org/10.15252/embj.2019102374 Text en © 2019 The Authors. Published under the terms of the CC BY 4.0 license This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Articles
Wu, Xiaoshan
Hu, Jinrong
Li, Guoqing
Li, Yan
Li, Yang
Zhang, Jing
Wang, Fu
Li, Ang
Hu, Lei
Fan, Zhipeng
Lü, Shouqin
Ding, Gang
Zhang, Chunmei
Wang, Jinsong
Long, Mian
Wang, Songlin
Biomechanical stress regulates mammalian tooth replacement via the integrin β1‐RUNX2‐Wnt pathway
title Biomechanical stress regulates mammalian tooth replacement via the integrin β1‐RUNX2‐Wnt pathway
title_full Biomechanical stress regulates mammalian tooth replacement via the integrin β1‐RUNX2‐Wnt pathway
title_fullStr Biomechanical stress regulates mammalian tooth replacement via the integrin β1‐RUNX2‐Wnt pathway
title_full_unstemmed Biomechanical stress regulates mammalian tooth replacement via the integrin β1‐RUNX2‐Wnt pathway
title_short Biomechanical stress regulates mammalian tooth replacement via the integrin β1‐RUNX2‐Wnt pathway
title_sort biomechanical stress regulates mammalian tooth replacement via the integrin β1‐runx2‐wnt pathway
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6996503/
https://www.ncbi.nlm.nih.gov/pubmed/31830314
http://dx.doi.org/10.15252/embj.2019102374
work_keys_str_mv AT wuxiaoshan biomechanicalstressregulatesmammaliantoothreplacementviatheintegrinb1runx2wntpathway
AT hujinrong biomechanicalstressregulatesmammaliantoothreplacementviatheintegrinb1runx2wntpathway
AT liguoqing biomechanicalstressregulatesmammaliantoothreplacementviatheintegrinb1runx2wntpathway
AT liyan biomechanicalstressregulatesmammaliantoothreplacementviatheintegrinb1runx2wntpathway
AT liyang biomechanicalstressregulatesmammaliantoothreplacementviatheintegrinb1runx2wntpathway
AT zhangjing biomechanicalstressregulatesmammaliantoothreplacementviatheintegrinb1runx2wntpathway
AT wangfu biomechanicalstressregulatesmammaliantoothreplacementviatheintegrinb1runx2wntpathway
AT liang biomechanicalstressregulatesmammaliantoothreplacementviatheintegrinb1runx2wntpathway
AT hulei biomechanicalstressregulatesmammaliantoothreplacementviatheintegrinb1runx2wntpathway
AT fanzhipeng biomechanicalstressregulatesmammaliantoothreplacementviatheintegrinb1runx2wntpathway
AT lushouqin biomechanicalstressregulatesmammaliantoothreplacementviatheintegrinb1runx2wntpathway
AT dinggang biomechanicalstressregulatesmammaliantoothreplacementviatheintegrinb1runx2wntpathway
AT zhangchunmei biomechanicalstressregulatesmammaliantoothreplacementviatheintegrinb1runx2wntpathway
AT wangjinsong biomechanicalstressregulatesmammaliantoothreplacementviatheintegrinb1runx2wntpathway
AT longmian biomechanicalstressregulatesmammaliantoothreplacementviatheintegrinb1runx2wntpathway
AT wangsonglin biomechanicalstressregulatesmammaliantoothreplacementviatheintegrinb1runx2wntpathway