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Notch/CollagenV/CalcR reciprocal signalling retains muscle stem cells in their niche

The microenvironment is critical for stem cell maintenance and can be of cellular and non-cellular composition, including secreted growth factors and extracellular matrix (ECM)1–3. Although Notch and other signalling pathways have been reported to regulate quiescence4–9, the composition and source o...

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Autores principales: Baghdadi, Meryem B., Castel, David, Machado, Léo, Fukada, So-ichiro, Birk, David E., Relaix, Frederic, Tajbakhsh, Shahragim, Mourikis, Philippos
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5985950/
https://www.ncbi.nlm.nih.gov/pubmed/29795344
http://dx.doi.org/10.1038/s41586-018-0144-9
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author Baghdadi, Meryem B.
Castel, David
Machado, Léo
Fukada, So-ichiro
Birk, David E.
Relaix, Frederic
Tajbakhsh, Shahragim
Mourikis, Philippos
author_facet Baghdadi, Meryem B.
Castel, David
Machado, Léo
Fukada, So-ichiro
Birk, David E.
Relaix, Frederic
Tajbakhsh, Shahragim
Mourikis, Philippos
author_sort Baghdadi, Meryem B.
collection PubMed
description The microenvironment is critical for stem cell maintenance and can be of cellular and non-cellular composition, including secreted growth factors and extracellular matrix (ECM)1–3. Although Notch and other signalling pathways have been reported to regulate quiescence4–9, the composition and source of niche molecules remain largely unknown. Here, we show that adult muscle satellite (stem) cells produce ECM collagens to maintain quiescence cell-autonomously. By ChIP-sequencing we identified NOTCH/RBPJ-bound regulatory elements adjacent to specific collagen genes, whose expression is deregulated in Notch mutant mice. Moreover, we show that satellite cell produced collagen V (COLV) is a critical component of the quiescent niche, as conditional deletion of Col5a1 leads to anomalous cell cycle entry and gradual diminution of the stem cell pool. Notably, the interaction of COLV with satellite cells is mediated by CALCR, for which COLV acts as a surrogate local ligand. Strikingly, systemic administration of a calcitonin derivative is sufficient to rescue the quiescence and self-renewal defects scored in COLV null satellite cells. This study unveils a Notch/COLV/CALCR signalling cascade that cell-autonomously maintains the satellite cell quiescent state and raises the possibility of a similar reciprocal mechanism acting in diverse stem cell populations.
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spelling pubmed-59859502018-11-23 Notch/CollagenV/CalcR reciprocal signalling retains muscle stem cells in their niche Baghdadi, Meryem B. Castel, David Machado, Léo Fukada, So-ichiro Birk, David E. Relaix, Frederic Tajbakhsh, Shahragim Mourikis, Philippos Nature Article The microenvironment is critical for stem cell maintenance and can be of cellular and non-cellular composition, including secreted growth factors and extracellular matrix (ECM)1–3. Although Notch and other signalling pathways have been reported to regulate quiescence4–9, the composition and source of niche molecules remain largely unknown. Here, we show that adult muscle satellite (stem) cells produce ECM collagens to maintain quiescence cell-autonomously. By ChIP-sequencing we identified NOTCH/RBPJ-bound regulatory elements adjacent to specific collagen genes, whose expression is deregulated in Notch mutant mice. Moreover, we show that satellite cell produced collagen V (COLV) is a critical component of the quiescent niche, as conditional deletion of Col5a1 leads to anomalous cell cycle entry and gradual diminution of the stem cell pool. Notably, the interaction of COLV with satellite cells is mediated by CALCR, for which COLV acts as a surrogate local ligand. Strikingly, systemic administration of a calcitonin derivative is sufficient to rescue the quiescence and self-renewal defects scored in COLV null satellite cells. This study unveils a Notch/COLV/CALCR signalling cascade that cell-autonomously maintains the satellite cell quiescent state and raises the possibility of a similar reciprocal mechanism acting in diverse stem cell populations. 2018-05-23 2018-05 /pmc/articles/PMC5985950/ /pubmed/29795344 http://dx.doi.org/10.1038/s41586-018-0144-9 Text en Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use:http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Baghdadi, Meryem B.
Castel, David
Machado, Léo
Fukada, So-ichiro
Birk, David E.
Relaix, Frederic
Tajbakhsh, Shahragim
Mourikis, Philippos
Notch/CollagenV/CalcR reciprocal signalling retains muscle stem cells in their niche
title Notch/CollagenV/CalcR reciprocal signalling retains muscle stem cells in their niche
title_full Notch/CollagenV/CalcR reciprocal signalling retains muscle stem cells in their niche
title_fullStr Notch/CollagenV/CalcR reciprocal signalling retains muscle stem cells in their niche
title_full_unstemmed Notch/CollagenV/CalcR reciprocal signalling retains muscle stem cells in their niche
title_short Notch/CollagenV/CalcR reciprocal signalling retains muscle stem cells in their niche
title_sort notch/collagenv/calcr reciprocal signalling retains muscle stem cells in their niche
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5985950/
https://www.ncbi.nlm.nih.gov/pubmed/29795344
http://dx.doi.org/10.1038/s41586-018-0144-9
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