Cargando…

TCF3, a novel positive regulator of osteogenesis, plays a crucial role in miR-17 modulating the diverse effect of canonical Wnt signaling in different microenvironments

Wnt signaling pathways are a highly conserved pathway, which plays an important role from the embryonic development to bone formation. The effect of Wnt pathway on osteogenesis relies on their cellular environment and the expression of target genes. However, the molecular mechanism of that remains u...

Descripción completa

Detalles Bibliográficos
Autores principales: Liu, W, Liu, Y, Guo, T, Hu, C, Luo, H, Zhang, L, Shi, S, Cai, T, Ding, Y, Jin, Y
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3613843/
https://www.ncbi.nlm.nih.gov/pubmed/23492770
http://dx.doi.org/10.1038/cddis.2013.65
_version_ 1782264791790780416
author Liu, W
Liu, Y
Guo, T
Hu, C
Luo, H
Zhang, L
Shi, S
Cai, T
Ding, Y
Jin, Y
author_facet Liu, W
Liu, Y
Guo, T
Hu, C
Luo, H
Zhang, L
Shi, S
Cai, T
Ding, Y
Jin, Y
author_sort Liu, W
collection PubMed
description Wnt signaling pathways are a highly conserved pathway, which plays an important role from the embryonic development to bone formation. The effect of Wnt pathway on osteogenesis relies on their cellular environment and the expression of target genes. However, the molecular mechanism of that remains unclear. On the basis of the preliminary results, we observed the contrary effect of canonical Wnt signaling on osteogenic differentiation of periodontal ligament stem cells (PDLSCs) in the different culture environment. Furthermore, we found that the expression level of miR-17 was also varied with the change in the culture environment. Therefore, we hypothesized that miR-17 and canonical Wnt signaling may have potential interactions, particularly the inner regulation relationship in different microenvironments. In this paper, we observed that canonical Wnt signaling promoted osteogenesis of PDLSCs in the fully culture medium, while inhibited it in the osteogenic differentiation medium. Interestingly, alteration in the expression level of endogenous miR-17 could partially reverse the different effect of canonical Wnt signaling. Furthermore, the role of miR-17 was because of its target gene TCF3 (transcription factor 3), a key transcription factor of canonical Wnt pathway. Overexpression of TCF3 attenuated the effect of miR-17 on modulating canonical Wnt signaling. Finally, we elucidated that TCF3 enhanced osteogenesis both in vitro and in vivo. In brief, the different level of miR-17 was the main cause of the different effect of canonical Wnt signaling, and TCF3 was the crucial node of miR-17–canonial Wnt signaling regulation loop. This understanding of microRNAs regulating signaling pathways in different microenvironments may pave the way for fine-tuning the process of osteogenesis in bone-related disorders.
format Online
Article
Text
id pubmed-3613843
institution National Center for Biotechnology Information
language English
publishDate 2013
publisher Nature Publishing Group
record_format MEDLINE/PubMed
spelling pubmed-36138432013-04-04 TCF3, a novel positive regulator of osteogenesis, plays a crucial role in miR-17 modulating the diverse effect of canonical Wnt signaling in different microenvironments Liu, W Liu, Y Guo, T Hu, C Luo, H Zhang, L Shi, S Cai, T Ding, Y Jin, Y Cell Death Dis Original Article Wnt signaling pathways are a highly conserved pathway, which plays an important role from the embryonic development to bone formation. The effect of Wnt pathway on osteogenesis relies on their cellular environment and the expression of target genes. However, the molecular mechanism of that remains unclear. On the basis of the preliminary results, we observed the contrary effect of canonical Wnt signaling on osteogenic differentiation of periodontal ligament stem cells (PDLSCs) in the different culture environment. Furthermore, we found that the expression level of miR-17 was also varied with the change in the culture environment. Therefore, we hypothesized that miR-17 and canonical Wnt signaling may have potential interactions, particularly the inner regulation relationship in different microenvironments. In this paper, we observed that canonical Wnt signaling promoted osteogenesis of PDLSCs in the fully culture medium, while inhibited it in the osteogenic differentiation medium. Interestingly, alteration in the expression level of endogenous miR-17 could partially reverse the different effect of canonical Wnt signaling. Furthermore, the role of miR-17 was because of its target gene TCF3 (transcription factor 3), a key transcription factor of canonical Wnt pathway. Overexpression of TCF3 attenuated the effect of miR-17 on modulating canonical Wnt signaling. Finally, we elucidated that TCF3 enhanced osteogenesis both in vitro and in vivo. In brief, the different level of miR-17 was the main cause of the different effect of canonical Wnt signaling, and TCF3 was the crucial node of miR-17–canonial Wnt signaling regulation loop. This understanding of microRNAs regulating signaling pathways in different microenvironments may pave the way for fine-tuning the process of osteogenesis in bone-related disorders. Nature Publishing Group 2013-03 2013-03-14 /pmc/articles/PMC3613843/ /pubmed/23492770 http://dx.doi.org/10.1038/cddis.2013.65 Text en Copyright © 2013 Macmillan Publishers Limited http://creativecommons.org/licenses/by-nc-nd/3.0/ This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivs 3.0 Unported License. To view a copy of this license, visit http://creativecommons.org/licenses/by-nc-nd/3.0/
spellingShingle Original Article
Liu, W
Liu, Y
Guo, T
Hu, C
Luo, H
Zhang, L
Shi, S
Cai, T
Ding, Y
Jin, Y
TCF3, a novel positive regulator of osteogenesis, plays a crucial role in miR-17 modulating the diverse effect of canonical Wnt signaling in different microenvironments
title TCF3, a novel positive regulator of osteogenesis, plays a crucial role in miR-17 modulating the diverse effect of canonical Wnt signaling in different microenvironments
title_full TCF3, a novel positive regulator of osteogenesis, plays a crucial role in miR-17 modulating the diverse effect of canonical Wnt signaling in different microenvironments
title_fullStr TCF3, a novel positive regulator of osteogenesis, plays a crucial role in miR-17 modulating the diverse effect of canonical Wnt signaling in different microenvironments
title_full_unstemmed TCF3, a novel positive regulator of osteogenesis, plays a crucial role in miR-17 modulating the diverse effect of canonical Wnt signaling in different microenvironments
title_short TCF3, a novel positive regulator of osteogenesis, plays a crucial role in miR-17 modulating the diverse effect of canonical Wnt signaling in different microenvironments
title_sort tcf3, a novel positive regulator of osteogenesis, plays a crucial role in mir-17 modulating the diverse effect of canonical wnt signaling in different microenvironments
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3613843/
https://www.ncbi.nlm.nih.gov/pubmed/23492770
http://dx.doi.org/10.1038/cddis.2013.65
work_keys_str_mv AT liuw tcf3anovelpositiveregulatorofosteogenesisplaysacrucialroleinmir17modulatingthediverseeffectofcanonicalwntsignalingindifferentmicroenvironments
AT liuy tcf3anovelpositiveregulatorofosteogenesisplaysacrucialroleinmir17modulatingthediverseeffectofcanonicalwntsignalingindifferentmicroenvironments
AT guot tcf3anovelpositiveregulatorofosteogenesisplaysacrucialroleinmir17modulatingthediverseeffectofcanonicalwntsignalingindifferentmicroenvironments
AT huc tcf3anovelpositiveregulatorofosteogenesisplaysacrucialroleinmir17modulatingthediverseeffectofcanonicalwntsignalingindifferentmicroenvironments
AT luoh tcf3anovelpositiveregulatorofosteogenesisplaysacrucialroleinmir17modulatingthediverseeffectofcanonicalwntsignalingindifferentmicroenvironments
AT zhangl tcf3anovelpositiveregulatorofosteogenesisplaysacrucialroleinmir17modulatingthediverseeffectofcanonicalwntsignalingindifferentmicroenvironments
AT shis tcf3anovelpositiveregulatorofosteogenesisplaysacrucialroleinmir17modulatingthediverseeffectofcanonicalwntsignalingindifferentmicroenvironments
AT cait tcf3anovelpositiveregulatorofosteogenesisplaysacrucialroleinmir17modulatingthediverseeffectofcanonicalwntsignalingindifferentmicroenvironments
AT dingy tcf3anovelpositiveregulatorofosteogenesisplaysacrucialroleinmir17modulatingthediverseeffectofcanonicalwntsignalingindifferentmicroenvironments
AT jiny tcf3anovelpositiveregulatorofosteogenesisplaysacrucialroleinmir17modulatingthediverseeffectofcanonicalwntsignalingindifferentmicroenvironments