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miR-17, miR-19b, miR-20a, and miR-106a are down-regulated in human aging

Aging is a multifactorial process where deterioration of body functions is driven by stochastic damage while counteracted by distinct genetically encoded repair systems. To better understand the genetic component of aging, many studies have addressed the gene and protein expression profiles of vario...

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Autores principales: Hackl, Matthias, Brunner, Stefan, Fortschegger, Klaus, Schreiner, Carina, Micutkova, Lucia, Mück, Christoph, Laschober, Gerhard T, Lepperdinger, Günter, Sampson, Natalie, Berger, Peter, Herndler-Brandstetter, Dietmar, Wieser, Matthias, Kühnel, Harald, Strasser, Alois, Rinnerthaler, Mark, Breitenbach, Michael, Mildner, Michael, Eckhart, Leopold, Tschachler, Erwin, Trost, Andrea, Bauer, Johann W, Papak, Christine, Trajanoski, Zlatko, Scheideler, Marcel, Grillari-Voglauer, Regina, Grubeck-Loebenstein, Beatrix, Jansen-Dürr, Pidder, Grillari, Johannes
Formato: Texto
Lenguaje:English
Publicado: Blackwell Publishing Ltd 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2848978/
https://www.ncbi.nlm.nih.gov/pubmed/20089119
http://dx.doi.org/10.1111/j.1474-9726.2010.00549.x
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author Hackl, Matthias
Brunner, Stefan
Fortschegger, Klaus
Schreiner, Carina
Micutkova, Lucia
Mück, Christoph
Laschober, Gerhard T
Lepperdinger, Günter
Sampson, Natalie
Berger, Peter
Herndler-Brandstetter, Dietmar
Wieser, Matthias
Kühnel, Harald
Strasser, Alois
Rinnerthaler, Mark
Breitenbach, Michael
Mildner, Michael
Eckhart, Leopold
Tschachler, Erwin
Trost, Andrea
Bauer, Johann W
Papak, Christine
Trajanoski, Zlatko
Scheideler, Marcel
Grillari-Voglauer, Regina
Grubeck-Loebenstein, Beatrix
Jansen-Dürr, Pidder
Grillari, Johannes
author_facet Hackl, Matthias
Brunner, Stefan
Fortschegger, Klaus
Schreiner, Carina
Micutkova, Lucia
Mück, Christoph
Laschober, Gerhard T
Lepperdinger, Günter
Sampson, Natalie
Berger, Peter
Herndler-Brandstetter, Dietmar
Wieser, Matthias
Kühnel, Harald
Strasser, Alois
Rinnerthaler, Mark
Breitenbach, Michael
Mildner, Michael
Eckhart, Leopold
Tschachler, Erwin
Trost, Andrea
Bauer, Johann W
Papak, Christine
Trajanoski, Zlatko
Scheideler, Marcel
Grillari-Voglauer, Regina
Grubeck-Loebenstein, Beatrix
Jansen-Dürr, Pidder
Grillari, Johannes
author_sort Hackl, Matthias
collection PubMed
description Aging is a multifactorial process where deterioration of body functions is driven by stochastic damage while counteracted by distinct genetically encoded repair systems. To better understand the genetic component of aging, many studies have addressed the gene and protein expression profiles of various aging model systems engaging different organisms from yeast to human. The recently identified small non-coding miRNAs are potent post-transcriptional regulators that can modify the expression of up to several hundred target genes per single miRNA, similar to transcription factors. Increasing evidence shows that miRNAs contribute to the regulation of most if not all important physiological processes, including aging. However, so far the contribution of miRNAs to age-related and senescence-related changes in gene expression remains elusive. To address this question, we have selected four replicative cell aging models including endothelial cells, replicated CD8(+) T cells, renal proximal tubular epithelial cells, and skin fibroblasts. Further included were three organismal aging models including foreskin, mesenchymal stem cells, and CD8(+) T cell populations from old and young donors. Using locked nucleic acid-based miRNA microarrays, we identified four commonly regulated miRNAs, miR-17 down-regulated in all seven; miR-19b and miR-20a, down-regulated in six models; and miR-106a down-regulated in five models. Decrease in these miRNAs correlated with increased transcript levels of some established target genes, especially the cdk inhibitor p21/CDKN1A. These results establish miRNAs as novel markers of cell aging in humans.
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spelling pubmed-28489782010-04-08 miR-17, miR-19b, miR-20a, and miR-106a are down-regulated in human aging Hackl, Matthias Brunner, Stefan Fortschegger, Klaus Schreiner, Carina Micutkova, Lucia Mück, Christoph Laschober, Gerhard T Lepperdinger, Günter Sampson, Natalie Berger, Peter Herndler-Brandstetter, Dietmar Wieser, Matthias Kühnel, Harald Strasser, Alois Rinnerthaler, Mark Breitenbach, Michael Mildner, Michael Eckhart, Leopold Tschachler, Erwin Trost, Andrea Bauer, Johann W Papak, Christine Trajanoski, Zlatko Scheideler, Marcel Grillari-Voglauer, Regina Grubeck-Loebenstein, Beatrix Jansen-Dürr, Pidder Grillari, Johannes Aging Cell Short Take Aging is a multifactorial process where deterioration of body functions is driven by stochastic damage while counteracted by distinct genetically encoded repair systems. To better understand the genetic component of aging, many studies have addressed the gene and protein expression profiles of various aging model systems engaging different organisms from yeast to human. The recently identified small non-coding miRNAs are potent post-transcriptional regulators that can modify the expression of up to several hundred target genes per single miRNA, similar to transcription factors. Increasing evidence shows that miRNAs contribute to the regulation of most if not all important physiological processes, including aging. However, so far the contribution of miRNAs to age-related and senescence-related changes in gene expression remains elusive. To address this question, we have selected four replicative cell aging models including endothelial cells, replicated CD8(+) T cells, renal proximal tubular epithelial cells, and skin fibroblasts. Further included were three organismal aging models including foreskin, mesenchymal stem cells, and CD8(+) T cell populations from old and young donors. Using locked nucleic acid-based miRNA microarrays, we identified four commonly regulated miRNAs, miR-17 down-regulated in all seven; miR-19b and miR-20a, down-regulated in six models; and miR-106a down-regulated in five models. Decrease in these miRNAs correlated with increased transcript levels of some established target genes, especially the cdk inhibitor p21/CDKN1A. These results establish miRNAs as novel markers of cell aging in humans. Blackwell Publishing Ltd 2010-04 /pmc/articles/PMC2848978/ /pubmed/20089119 http://dx.doi.org/10.1111/j.1474-9726.2010.00549.x Text en Journal compilation © 2010 Blackwell Publishing Ltd/The Anatomical Society of Great Britain and Ireland http://creativecommons.org/licenses/by/2.5/ Re-use of this article is permitted in accordance with the Creative Commons Deed, Attribution 2.5, which does not permit commercial exploitation.
spellingShingle Short Take
Hackl, Matthias
Brunner, Stefan
Fortschegger, Klaus
Schreiner, Carina
Micutkova, Lucia
Mück, Christoph
Laschober, Gerhard T
Lepperdinger, Günter
Sampson, Natalie
Berger, Peter
Herndler-Brandstetter, Dietmar
Wieser, Matthias
Kühnel, Harald
Strasser, Alois
Rinnerthaler, Mark
Breitenbach, Michael
Mildner, Michael
Eckhart, Leopold
Tschachler, Erwin
Trost, Andrea
Bauer, Johann W
Papak, Christine
Trajanoski, Zlatko
Scheideler, Marcel
Grillari-Voglauer, Regina
Grubeck-Loebenstein, Beatrix
Jansen-Dürr, Pidder
Grillari, Johannes
miR-17, miR-19b, miR-20a, and miR-106a are down-regulated in human aging
title miR-17, miR-19b, miR-20a, and miR-106a are down-regulated in human aging
title_full miR-17, miR-19b, miR-20a, and miR-106a are down-regulated in human aging
title_fullStr miR-17, miR-19b, miR-20a, and miR-106a are down-regulated in human aging
title_full_unstemmed miR-17, miR-19b, miR-20a, and miR-106a are down-regulated in human aging
title_short miR-17, miR-19b, miR-20a, and miR-106a are down-regulated in human aging
title_sort mir-17, mir-19b, mir-20a, and mir-106a are down-regulated in human aging
topic Short Take
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2848978/
https://www.ncbi.nlm.nih.gov/pubmed/20089119
http://dx.doi.org/10.1111/j.1474-9726.2010.00549.x
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