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Early forming label-retaining muscle stem cells require p27(kip1) for maintenance of the primitive state

Across different niches, subsets of highly functional stem cells are maintained in a relatively dormant rather than proliferative state. Our understanding of proliferative dynamics in tissue-specific stem cells during conditions of increased tissue turnover remains limited. Using a TetO-H2B-GFP repo...

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Autores principales: Chakkalakal, Joe V., Christensen, Josef, Xiang, Wanyi, Tierney, Mathew T., Boscolo, Francesca S., Sacco, Alessandra, Brack, Andrew S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Company of Biologists 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3978835/
https://www.ncbi.nlm.nih.gov/pubmed/24715455
http://dx.doi.org/10.1242/dev.100842
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author Chakkalakal, Joe V.
Christensen, Josef
Xiang, Wanyi
Tierney, Mathew T.
Boscolo, Francesca S.
Sacco, Alessandra
Brack, Andrew S.
author_facet Chakkalakal, Joe V.
Christensen, Josef
Xiang, Wanyi
Tierney, Mathew T.
Boscolo, Francesca S.
Sacco, Alessandra
Brack, Andrew S.
author_sort Chakkalakal, Joe V.
collection PubMed
description Across different niches, subsets of highly functional stem cells are maintained in a relatively dormant rather than proliferative state. Our understanding of proliferative dynamics in tissue-specific stem cells during conditions of increased tissue turnover remains limited. Using a TetO-H2B-GFP reporter of proliferative history, we identify skeletal muscle stem cell, or satellite cells, that retain (LRC) or lose (nonLRC) the H2B-GFP label. We show in mice that LRCs and nonLRCs are formed at birth and persist during postnatal growth and adult muscle repair. Functionally, LRCs and nonLRCs are born equivalent and transition during postnatal maturation into distinct and hierarchically organized subsets. Adult LRCs give rise to LRCs and nonLRCs; the former are able to self-renew, whereas the latter are restricted to differentiation. Expression analysis revealed the CIP/KIP family members p21(cip1) (Cdkn1a) and p27(kip1) (Cdkn1b) to be expressed at higher levels in LRCs. In accordance with a crucial role in LRC fate, loss of p27(kip1) promoted proliferation and differentiation of LRCs in vitro and impaired satellite cell self-renewal after muscle injury. By contrast, loss of p21(cip1) only affected nonLRCs, in which myogenic commitment was inhibited. Our results provide evidence that restriction of self-renewal potential to LRCs is established early in life and is maintained during increased tissue turnover through the cell cycle inhibitor p27(kip1). They also reveal the differential role of CIP/KIP family members at discrete steps within the stem cell hierarchy.
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spelling pubmed-39788352014-05-14 Early forming label-retaining muscle stem cells require p27(kip1) for maintenance of the primitive state Chakkalakal, Joe V. Christensen, Josef Xiang, Wanyi Tierney, Mathew T. Boscolo, Francesca S. Sacco, Alessandra Brack, Andrew S. Development Stem Cells and Regeneration Across different niches, subsets of highly functional stem cells are maintained in a relatively dormant rather than proliferative state. Our understanding of proliferative dynamics in tissue-specific stem cells during conditions of increased tissue turnover remains limited. Using a TetO-H2B-GFP reporter of proliferative history, we identify skeletal muscle stem cell, or satellite cells, that retain (LRC) or lose (nonLRC) the H2B-GFP label. We show in mice that LRCs and nonLRCs are formed at birth and persist during postnatal growth and adult muscle repair. Functionally, LRCs and nonLRCs are born equivalent and transition during postnatal maturation into distinct and hierarchically organized subsets. Adult LRCs give rise to LRCs and nonLRCs; the former are able to self-renew, whereas the latter are restricted to differentiation. Expression analysis revealed the CIP/KIP family members p21(cip1) (Cdkn1a) and p27(kip1) (Cdkn1b) to be expressed at higher levels in LRCs. In accordance with a crucial role in LRC fate, loss of p27(kip1) promoted proliferation and differentiation of LRCs in vitro and impaired satellite cell self-renewal after muscle injury. By contrast, loss of p21(cip1) only affected nonLRCs, in which myogenic commitment was inhibited. Our results provide evidence that restriction of self-renewal potential to LRCs is established early in life and is maintained during increased tissue turnover through the cell cycle inhibitor p27(kip1). They also reveal the differential role of CIP/KIP family members at discrete steps within the stem cell hierarchy. The Company of Biologists 2014-04 /pmc/articles/PMC3978835/ /pubmed/24715455 http://dx.doi.org/10.1242/dev.100842 Text en © 2014. Published by The Company of Biologists Ltd http://creativecommons.org/licenses/by/3.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/3.0), which permits unrestricted use, distribution and reproduction in any medium provided that the original work is properly attributed.
spellingShingle Stem Cells and Regeneration
Chakkalakal, Joe V.
Christensen, Josef
Xiang, Wanyi
Tierney, Mathew T.
Boscolo, Francesca S.
Sacco, Alessandra
Brack, Andrew S.
Early forming label-retaining muscle stem cells require p27(kip1) for maintenance of the primitive state
title Early forming label-retaining muscle stem cells require p27(kip1) for maintenance of the primitive state
title_full Early forming label-retaining muscle stem cells require p27(kip1) for maintenance of the primitive state
title_fullStr Early forming label-retaining muscle stem cells require p27(kip1) for maintenance of the primitive state
title_full_unstemmed Early forming label-retaining muscle stem cells require p27(kip1) for maintenance of the primitive state
title_short Early forming label-retaining muscle stem cells require p27(kip1) for maintenance of the primitive state
title_sort early forming label-retaining muscle stem cells require p27(kip1) for maintenance of the primitive state
topic Stem Cells and Regeneration
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3978835/
https://www.ncbi.nlm.nih.gov/pubmed/24715455
http://dx.doi.org/10.1242/dev.100842
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