Literature DB >> 23590226

Implications of time-series gene expression profiles of replicative senescence.

You-Mie Kim1, Hae-Ok Byun, Byul A Jee, Hyunwoo Cho, Yong-Hak Seo, You-Sun Kim, Min Hi Park, Hae-Young Chung, Hyun Goo Woo, Gyesoon Yoon.   

Abstract

Although senescence has long been implicated in aging-associated pathologies, it is not clearly understood how senescent cells are linked to these diseases. To address this knowledge gap, we profiled cellular senescence phenotypes and mRNA expression patterns during replicative senescence in human diploid fibroblasts. We identified a sequential order of gain-of-senescence phenotypes: low levels of reactive oxygen species, cell mass/size increases with delayed cell growth, high levels of reactive oxygen species with increases in senescence-associated β-galactosidase activity (SA-β-gal), and high levels of SA-β-gal activity. Gene expression profiling revealed four distinct modules in which genes were prominently expressed at certain stages of senescence, allowing us to divide the process into four stages: early, middle, advanced, and very advanced. Interestingly, the gene expression modules governing each stage supported the development of the associated senescence phenotypes. Senescence-associated secretory phenotype-related genes also displayed a stage-specific expression pattern with three unique features during senescence: differential expression of interleukin isoforms, differential expression of interleukins and their receptors, and differential expression of matrix metalloproteinases and their inhibitory proteins. We validated these phenomena at the protein level using human diploid fibroblasts and aging Sprague-Dawley rat skin tissues. Finally, disease-association analysis of the modular genes also revealed stage-specific patterns. Taken together, our results reflect a detailed process of cellular senescence and provide diverse genome-wide information of cellular backgrounds for senescence.
© 2013 John Wiley & Sons Ltd and the Anatomical Society.

Entities:  

Keywords:  gene expression; human diploid fibroblasts; replicative senescence; senescence-associated secretory phenotype

Mesh:

Substances:

Year:  2013        PMID: 23590226     DOI: 10.1111/acel.12087

Source DB:  PubMed          Journal:  Aging Cell        ISSN: 1474-9718            Impact factor:   9.304


  36 in total

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4.  A decline in Wnt3a signaling is necessary for mesenchymal stem cells to proceed to replicative senescence.

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5.  The Ubiquitin-like with PHD and Ring Finger Domains 1 (UHRF1)/DNA Methyltransferase 1 (DNMT1) Axis Is a Primary Regulator of Cell Senescence.

Authors:  Hyun-Jung Jung; Hae-Ok Byun; Byul A Jee; Seongki Min; Un-Woo Jeoun; Young-Kyoung Lee; Yonghak Seo; Hyun Goo Woo; Gyesoon Yoon
Journal:  J Biol Chem       Date:  2017-01-18       Impact factor: 5.157

6.  Induction and Validation of Cellular Senescence in Primary Human Cells.

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Journal:  J Vis Exp       Date:  2018-06-20       Impact factor: 1.355

7.  Mitoribosomal Deregulation Drives Senescence via TPP1-Mediated Telomere Deprotection.

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Journal:  Cells       Date:  2022-06-30       Impact factor: 7.666

8.  Downregulation of Melanoma Cell Adhesion Molecule (MCAM/CD146) Accelerates Cellular Senescence in Human Umbilical Cord Blood-Derived Mesenchymal Stem Cells.

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Review 9.  Cellular senescence and its role in white adipose tissue.

Authors:  Ulf Smith; Qian Li; Mikael Rydén; Kirsty L Spalding
Journal:  Int J Obes (Lond)       Date:  2021-01-28       Impact factor: 5.095

Review 10.  Senescent Microglia: The Key to the Ageing Brain?

Authors:  Eleanor K Greenwood; David R Brown
Journal:  Int J Mol Sci       Date:  2021-04-22       Impact factor: 5.923

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