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A microRNA network regulates proliferative timing and extracellular matrix synthesis during cellular quiescence in fibroblasts

BACKGROUND: Although quiescence (reversible cell cycle arrest) is a key part in the life history and fate of many mammalian cell types, the mechanisms of gene regulation in quiescent cells are poorly understood. We sought to clarify the role of microRNAs as regulators of the cellular functions of qu...

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Autores principales: Suh, Eric J, Remillard, Matthew Y, Legesse-Miller, Aster, Johnson, Elizabeth L, Lemons, Johanna MS, Chapman, Talia R, Forman, Joshua J, Kojima, Mina, Silberman, Eric S, Coller, Hilary A
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3924601/
https://www.ncbi.nlm.nih.gov/pubmed/23259597
http://dx.doi.org/10.1186/gb-2012-13-12-r121
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author Suh, Eric J
Remillard, Matthew Y
Legesse-Miller, Aster
Johnson, Elizabeth L
Lemons, Johanna MS
Chapman, Talia R
Forman, Joshua J
Kojima, Mina
Silberman, Eric S
Coller, Hilary A
author_facet Suh, Eric J
Remillard, Matthew Y
Legesse-Miller, Aster
Johnson, Elizabeth L
Lemons, Johanna MS
Chapman, Talia R
Forman, Joshua J
Kojima, Mina
Silberman, Eric S
Coller, Hilary A
author_sort Suh, Eric J
collection PubMed
description BACKGROUND: Although quiescence (reversible cell cycle arrest) is a key part in the life history and fate of many mammalian cell types, the mechanisms of gene regulation in quiescent cells are poorly understood. We sought to clarify the role of microRNAs as regulators of the cellular functions of quiescent human fibroblasts. RESULTS: Using microarrays, we discovered that the expression of the majority of profiled microRNAs differed between proliferating and quiescent fibroblasts. Fibroblasts induced into quiescence by contact inhibition or serum starvation had similar microRNA profiles, indicating common changes induced by distinct quiescence signals. By analyzing the gene expression patterns of microRNA target genes with quiescence, we discovered a strong regulatory function for miR-29, which is downregulated with quiescence. Using microarrays and immunoblotting, we confirmed that miR-29 targets genes encoding collagen and other extracellular matrix proteins and that those target genes are induced in quiescence. In addition, overexpression of miR-29 resulted in more rapid cell cycle re-entry from quiescence. We also found that let-7 and miR-125 were upregulated in quiescent cells. Overexpression of either one alone resulted in slower cell cycle re-entry from quiescence, while the combination of both together slowed cell cycle re-entry even further. CONCLUSIONS: microRNAs regulate key aspects of fibroblast quiescence including the proliferative state of the cells as well as their gene expression profiles, in particular, the induction of extracellular matrix proteins in quiescent fibroblasts.
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spelling pubmed-39246012014-02-14 A microRNA network regulates proliferative timing and extracellular matrix synthesis during cellular quiescence in fibroblasts Suh, Eric J Remillard, Matthew Y Legesse-Miller, Aster Johnson, Elizabeth L Lemons, Johanna MS Chapman, Talia R Forman, Joshua J Kojima, Mina Silberman, Eric S Coller, Hilary A Genome Biol Research BACKGROUND: Although quiescence (reversible cell cycle arrest) is a key part in the life history and fate of many mammalian cell types, the mechanisms of gene regulation in quiescent cells are poorly understood. We sought to clarify the role of microRNAs as regulators of the cellular functions of quiescent human fibroblasts. RESULTS: Using microarrays, we discovered that the expression of the majority of profiled microRNAs differed between proliferating and quiescent fibroblasts. Fibroblasts induced into quiescence by contact inhibition or serum starvation had similar microRNA profiles, indicating common changes induced by distinct quiescence signals. By analyzing the gene expression patterns of microRNA target genes with quiescence, we discovered a strong regulatory function for miR-29, which is downregulated with quiescence. Using microarrays and immunoblotting, we confirmed that miR-29 targets genes encoding collagen and other extracellular matrix proteins and that those target genes are induced in quiescence. In addition, overexpression of miR-29 resulted in more rapid cell cycle re-entry from quiescence. We also found that let-7 and miR-125 were upregulated in quiescent cells. Overexpression of either one alone resulted in slower cell cycle re-entry from quiescence, while the combination of both together slowed cell cycle re-entry even further. CONCLUSIONS: microRNAs regulate key aspects of fibroblast quiescence including the proliferative state of the cells as well as their gene expression profiles, in particular, the induction of extracellular matrix proteins in quiescent fibroblasts. BioMed Central 2012 2012-12-22 /pmc/articles/PMC3924601/ /pubmed/23259597 http://dx.doi.org/10.1186/gb-2012-13-12-r121 Text en Copyright © 2012 Suh et al.; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research
Suh, Eric J
Remillard, Matthew Y
Legesse-Miller, Aster
Johnson, Elizabeth L
Lemons, Johanna MS
Chapman, Talia R
Forman, Joshua J
Kojima, Mina
Silberman, Eric S
Coller, Hilary A
A microRNA network regulates proliferative timing and extracellular matrix synthesis during cellular quiescence in fibroblasts
title A microRNA network regulates proliferative timing and extracellular matrix synthesis during cellular quiescence in fibroblasts
title_full A microRNA network regulates proliferative timing and extracellular matrix synthesis during cellular quiescence in fibroblasts
title_fullStr A microRNA network regulates proliferative timing and extracellular matrix synthesis during cellular quiescence in fibroblasts
title_full_unstemmed A microRNA network regulates proliferative timing and extracellular matrix synthesis during cellular quiescence in fibroblasts
title_short A microRNA network regulates proliferative timing and extracellular matrix synthesis during cellular quiescence in fibroblasts
title_sort microrna network regulates proliferative timing and extracellular matrix synthesis during cellular quiescence in fibroblasts
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3924601/
https://www.ncbi.nlm.nih.gov/pubmed/23259597
http://dx.doi.org/10.1186/gb-2012-13-12-r121
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