Literature DB >> 28658612

Senescence-associated microRNAs target cell cycle regulatory genes in normal human lung fibroblasts.

Georgios S Markopoulos1, Eugenia Roupakia1, Maria Tokamani2, George Vartholomatos3, Theodore Tzavaras4, Maria Hatziapostolou5, Frank O Fackelmayer6, Raphael Sandaltzopoulos2, Christos Polytarchou5, Evangelos Kolettas7.   

Abstract

Senescence recapitulates the ageing process at the cell level. A senescent cell stops dividing and exits the cell cycle. MicroRNAs (miRNAs) acting as master regulators of transcription, have been implicated in senescence. In the current study we investigated and compared the expression of miRNAs in young versus senescent human fibroblasts (HDFs), and analysed the role of mRNAs expressed in replicative senescent HFL-1 HDFs. Cell cycle analysis confirmed that HDFs accumulated in G1/S cell cycle phase. Nanostring analysis of isolated miRNAs from young and senescent HFL-1 showed that a distinct set of 15 miRNAs were significantly up-regulated in senescent cells including hsa-let-7d-5p, hsa-let-7e-5p, hsa-miR-23a-3p, hsa-miR-34a-5p, hsa-miR-122-5p, hsa-miR-125a-3p, hsa-miR-125a-5p, hsa-miR-125b-5p, hsa-miR-181a-5p, hsa-miR-221-3p, hsa-miR-222-3p, hsa-miR-503-5p, hsa-miR-574-3p, hsa-miR-574-5p and hsa-miR-4454. Importantly, pathway analysis of miRNA target genes down-regulated during replicative senescence in a public RNA-seq data set revealed a significant high number of genes regulating cell cycle progression, both G1/S and G2/M cell cycle phase transitions and telomere maintenance. The reduced expression of selected miRNA targets, upon replicative and oxidative-stress induced senescence, such as the cell cycle effectors E2F1, CcnE, Cdc6, CcnB1 and Cdc25C was verified at the protein and/or RNA levels. Induction of G1/S cell cycle phase arrest and down-regulation of cell cycle effectors correlated with the up-regulation of miR-221 upon both replicative and oxidative stress-induced senescence. Transient expression of miR-221/222 in HDFs promoted the accumulation of HDFs in G1/S cell cycle phase. We propose that miRNAs up-regulated during replicative senescence may act in concert to induce cell cycle phase arrest and telomere erosion, establishing a senescent phenotype.
Copyright © 2017 Elsevier Inc. All rights reserved.

Entities:  

Keywords:  Cell cycle effectors; Cellular senescence; Human lung fibroblasts; MicroRNAs

Mesh:

Substances:

Year:  2017        PMID: 28658612     DOI: 10.1016/j.exger.2017.06.017

Source DB:  PubMed          Journal:  Exp Gerontol        ISSN: 0531-5565            Impact factor:   4.032


  26 in total

1.  Oxidative stress-induced miRNAs modulate AKT signaling and promote cellular senescence in uterine leiomyoma.

Authors:  Xiuhua Xu; J Julie Kim; Yinuo Li; Jia Xie; Changshun Shao; Jian-Jun Wei
Journal:  J Mol Med (Berl)       Date:  2018-08-10       Impact factor: 4.599

Review 2.  Noncoding RNAs Controlling Telomere Homeostasis in Senescence and Aging.

Authors:  Martina Rossi; Myriam Gorospe
Journal:  Trends Mol Med       Date:  2020-02-28       Impact factor: 11.951

3.  MiR-520d-3p antitumor activity in human breast cancer via post-transcriptional regulation of spindle and kinetochore associated 2 expression.

Authors:  Zhouhui Ren; Tong Yang; Jie Ding; Weihong Liu; Xiangyu Meng; Pingping Zhang; Kaitai Liu; Ping Wang
Journal:  Am J Transl Res       Date:  2018-04-15       Impact factor: 4.060

Review 4.  A step-by-step microRNA guide to cancer development and metastasis.

Authors:  Georgios S Markopoulos; Eugenia Roupakia; Maria Tokamani; Evangelia Chavdoula; Maria Hatziapostolou; Christos Polytarchou; Kenneth B Marcu; Athanasios G Papavassiliou; Raphael Sandaltzopoulos; Evangelos Kolettas
Journal:  Cell Oncol (Dordr)       Date:  2017-07-26       Impact factor: 6.730

5.  Potential Mechanisms Underlying TGF-β-mediated Complement Activation in Lung Fibrosis.

Authors:  Amanda J Fisher; Ellyse Cipolla; Ananya Varre; Hongmei Gu; Elizabeth A Mickler; Ragini Vittal
Journal:  Cell Mol Med Open Access       Date:  2017-11-22

6.  Comprehensive analysis of long non‑coding RNA‑messenger RNA‑microRNA co‑expression network identifies cell cycle‑related lncRNA in hepatocellular carcinoma.

Authors:  Hai-Rong Zhu; Xiang-Nan Yu; Guang-Cong Zhang; Xuan Shi; Enkhnaran Bilegsaikhan; Hong-Ying Guo; Li-Li Liu; Yu Cai; Guang-Qi Song; Tao-Tao Liu; Ling Dong; Harry L A Janssen; Shu-Qiang Weng; Jian Wu; Xi-Zhong Shen; Ji-Min Zhu
Journal:  Int J Mol Med       Date:  2019-08-23       Impact factor: 4.101

7.  Unique circulating microRNAs in relation to EGFR mutation status in Japanese smoker male with lung adenocarcinoma.

Authors:  Sachio Ito; Yoshihiro Kamoto; Akiko Sakai; Kaori Sasai; Tatsuro Hayashi; Shinichi Toyooka; Hiroshi Katayama
Journal:  Oncotarget       Date:  2017-09-30

Review 8.  Roles of NF-κB Signaling in the Regulation of miRNAs Impacting on Inflammation in Cancer.

Authors:  Georgios S Markopoulos; Eugenia Roupakia; Maria Tokamani; Georgia Alabasi; Raphael Sandaltzopoulos; Kenneth B Marcu; Evangelos Kolettas
Journal:  Biomedicines       Date:  2018-03-30

9.  miR‑590‑5p inhibits tumor growth in malignant melanoma by suppressing YAP1 expression.

Authors:  Kuanhou Mou; Meiling Ding; Dan Han; Yan Zhou; Xin Mu; Wenli Liu; Lijuan Wang
Journal:  Oncol Rep       Date:  2018-08-07       Impact factor: 3.906

Review 10.  MicroRNAs: Mediators and Therapeutic Targets to Airway Hyper Reactivity After Respiratory Syncytial Virus Infection.

Authors:  Shuwen Feng; Dongxin Zeng; Junwen Zheng; Dongchi Zhao
Journal:  Front Microbiol       Date:  2018-09-11       Impact factor: 5.640

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