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Physiological Notch Signaling Maintains Bone Homeostasis via RBPjk and Hey Upstream of NFATc1

Notch signaling between neighboring cells controls many cell fate decisions in metazoans both during embryogenesis and in postnatal life. Previously, we uncovered a critical role for physiological Notch signaling in suppressing osteoblast differentiation in vivo. However, the contribution of individ...

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Autores principales: Tu, Xiaolin, Chen, Jianquan, Lim, Joohyun, Karner, Courtney M., Lee, Seung-Yon, Heisig, Julia, Wiese, Cornelia, Surendran, Kameswaran, Kopan, Raphael, Gessler, Manfred, Long, Fanxin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3310726/
https://www.ncbi.nlm.nih.gov/pubmed/22457635
http://dx.doi.org/10.1371/journal.pgen.1002577
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author Tu, Xiaolin
Chen, Jianquan
Lim, Joohyun
Karner, Courtney M.
Lee, Seung-Yon
Heisig, Julia
Wiese, Cornelia
Surendran, Kameswaran
Kopan, Raphael
Gessler, Manfred
Long, Fanxin
author_facet Tu, Xiaolin
Chen, Jianquan
Lim, Joohyun
Karner, Courtney M.
Lee, Seung-Yon
Heisig, Julia
Wiese, Cornelia
Surendran, Kameswaran
Kopan, Raphael
Gessler, Manfred
Long, Fanxin
author_sort Tu, Xiaolin
collection PubMed
description Notch signaling between neighboring cells controls many cell fate decisions in metazoans both during embryogenesis and in postnatal life. Previously, we uncovered a critical role for physiological Notch signaling in suppressing osteoblast differentiation in vivo. However, the contribution of individual Notch receptors and the downstream signaling mechanism have not been elucidated. Here we report that removal of Notch2, but not Notch1, from the embryonic limb mesenchyme markedly increased trabecular bone mass in adolescent mice. Deletion of the transcription factor RBPjk, a mediator of all canonical Notch signaling, in the mesenchymal progenitors but not the more mature osteoblast-lineage cells, caused a dramatic high-bone-mass phenotype characterized by increased osteoblast numbers, diminished bone marrow mesenchymal progenitor pool, and rapid age-dependent bone loss. Moreover, mice deficient in Hey1 and HeyL, two target genes of Notch-RBPjk signaling, exhibited high bone mass. Interestingly, Hey1 bound to and suppressed the NFATc1 promoter, and RBPjk deletion increased NFATc1 expression in bone. Finally, pharmacological inhibition of NFAT alleviated the high-bone-mass phenotype caused by RBPjk deletion. Thus, Notch-RBPjk signaling functions in part through Hey1-mediated inhibition of NFATc1 to suppress osteoblastogenesis, contributing to bone homeostasis in vivo.
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spelling pubmed-33107262012-03-28 Physiological Notch Signaling Maintains Bone Homeostasis via RBPjk and Hey Upstream of NFATc1 Tu, Xiaolin Chen, Jianquan Lim, Joohyun Karner, Courtney M. Lee, Seung-Yon Heisig, Julia Wiese, Cornelia Surendran, Kameswaran Kopan, Raphael Gessler, Manfred Long, Fanxin PLoS Genet Research Article Notch signaling between neighboring cells controls many cell fate decisions in metazoans both during embryogenesis and in postnatal life. Previously, we uncovered a critical role for physiological Notch signaling in suppressing osteoblast differentiation in vivo. However, the contribution of individual Notch receptors and the downstream signaling mechanism have not been elucidated. Here we report that removal of Notch2, but not Notch1, from the embryonic limb mesenchyme markedly increased trabecular bone mass in adolescent mice. Deletion of the transcription factor RBPjk, a mediator of all canonical Notch signaling, in the mesenchymal progenitors but not the more mature osteoblast-lineage cells, caused a dramatic high-bone-mass phenotype characterized by increased osteoblast numbers, diminished bone marrow mesenchymal progenitor pool, and rapid age-dependent bone loss. Moreover, mice deficient in Hey1 and HeyL, two target genes of Notch-RBPjk signaling, exhibited high bone mass. Interestingly, Hey1 bound to and suppressed the NFATc1 promoter, and RBPjk deletion increased NFATc1 expression in bone. Finally, pharmacological inhibition of NFAT alleviated the high-bone-mass phenotype caused by RBPjk deletion. Thus, Notch-RBPjk signaling functions in part through Hey1-mediated inhibition of NFATc1 to suppress osteoblastogenesis, contributing to bone homeostasis in vivo. Public Library of Science 2012-03-22 /pmc/articles/PMC3310726/ /pubmed/22457635 http://dx.doi.org/10.1371/journal.pgen.1002577 Text en Tu 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, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Tu, Xiaolin
Chen, Jianquan
Lim, Joohyun
Karner, Courtney M.
Lee, Seung-Yon
Heisig, Julia
Wiese, Cornelia
Surendran, Kameswaran
Kopan, Raphael
Gessler, Manfred
Long, Fanxin
Physiological Notch Signaling Maintains Bone Homeostasis via RBPjk and Hey Upstream of NFATc1
title Physiological Notch Signaling Maintains Bone Homeostasis via RBPjk and Hey Upstream of NFATc1
title_full Physiological Notch Signaling Maintains Bone Homeostasis via RBPjk and Hey Upstream of NFATc1
title_fullStr Physiological Notch Signaling Maintains Bone Homeostasis via RBPjk and Hey Upstream of NFATc1
title_full_unstemmed Physiological Notch Signaling Maintains Bone Homeostasis via RBPjk and Hey Upstream of NFATc1
title_short Physiological Notch Signaling Maintains Bone Homeostasis via RBPjk and Hey Upstream of NFATc1
title_sort physiological notch signaling maintains bone homeostasis via rbpjk and hey upstream of nfatc1
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3310726/
https://www.ncbi.nlm.nih.gov/pubmed/22457635
http://dx.doi.org/10.1371/journal.pgen.1002577
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