Literature DB >> 28247536

Melatonin regulates PARP1 to control the senescence-associated secretory phenotype (SASP) in human fetal lung fibroblast cells.

Songtao Yu1, Xiaojiao Wang1, Peiliang Geng1, Xudong Tang2, Lisha Xiang3, Xin Lu1, Jianjun Li1, Zhihua Ruan1, Jianfang Chen1, Ganfeng Xie1, Zhe Wang1, Juanjuan Ou1, Yuan Peng1, Xi Luo1, Xuan Zhang1, Yan Dong1, Xueli Pang1, Hongming Miao4, Hongshan Chen5, Houjie Liang1.   

Abstract

Cellular senescence is an important tumor-suppressive mechanism. However, acquisition of a senescence-associated secretory phenotype (SASP) in senescent cells has deleterious effects on the tissue microenvironment and, paradoxically, promotes tumor progression. In a drug screen, we identified melatonin as a novel SASP suppressor in human cells. Strikingly, melatonin blunts global SASP gene expression upon oncogene-induced senescence (OIS). Moreover, poly(ADP-ribose) polymerase-1 (PARP-1), a sensor of DNA damage, was identified as a new melatonin-dependent regulator of SASP gene induction upon OIS. Here, we report two different but potentially coherent epigenetic strategies for melatonin regulation of SASP. The interaction between the telomeric repeat-containing RNA (TERRA) and PARP-1 stimulates the SASP, which was attenuated by 67.9% (illustrated by the case of IL8) by treatment with melatonin. Through binding to macroH2A1.1, PARP-1 recruits CREB-binding protein (CBP) to mediate acetylation of H2BK120, which positively regulates the expression of target SASP genes, and this process is interrupted by melatonin. Consequently, the findings provide novel insight into melatonin's epigenetic role via modulating PARP-1 in suppression of SASP gene expression in OIS-induced senescent cells. Our studies identify melatonin as a novel anti-SASP molecule, define PARP-1 as a new target by which melatonin regulates SASP, and establish a new epigenetic paradigm for a pharmacological mechanism by which melatonin interrupts PARP-1 interaction with the telomeric long noncoding RNA(lncRNA) or chromatin.
© 2017 John Wiley & Sons A/S. Published by John Wiley & Sons Ltd.

Entities:  

Keywords:  zzm321990SASPzzm321990; zzm321990TERRAzzm321990; PARP1; cellular senescence; histone acetylation; melatonin

Mesh:

Substances:

Year:  2017        PMID: 28247536     DOI: 10.1111/jpi.12405

Source DB:  PubMed          Journal:  J Pineal Res        ISSN: 0742-3098            Impact factor:   13.007


  26 in total

1.  Melatonin protected cardiac microvascular endothelial cells against oxidative stress injury via suppression of IP3R-[Ca2+]c/VDAC-[Ca2+]m axis by activation of MAPK/ERK signaling pathway.

Authors:  Hang Zhu; Qinhua Jin; Yang Li; Qiang Ma; Jing Wang; Dandan Li; Hao Zhou; Yundai Chen
Journal:  Cell Stress Chaperones       Date:  2017-07-01       Impact factor: 3.667

2.  Pinealectomy or light exposure exacerbates biliary damage and liver fibrosis in cholestatic rats through decreased melatonin synthesis.

Authors:  Lixian Chen; Tianhao Zhou; Nan Wu; April O'Brien; Julie Venter; Ludovica Ceci; Konstantina Kyritsi; Paolo Onori; Eugenio Gaudio; Amelia Sybenga; Linglin Xie; Chaodong Wu; Luca Fabris; Pietro Invernizzi; David Zawieja; Suthat Liangpunsakul; Fanyin Meng; Heather Francis; Gianfranco Alpini; Qiaobing Huang; Shannon Glaser
Journal:  Biochim Biophys Acta Mol Basis Dis       Date:  2019-03-16       Impact factor: 5.187

3.  HIF1α deletion facilitates adipose stem cells to repair renal fibrosis in diabetic mice.

Authors:  Qun Tang; Hua Wu; Jiushi Lei; Chun Yi; Wenfeng Xu; Wenqu Lan; Fang Yang; Chunyan Liu
Journal:  In Vitro Cell Dev Biol Anim       Date:  2018-03-06       Impact factor: 2.416

4.  Gestational chronodisruption leads to persistent changes in the rat fetal and adult adrenal clock and function.

Authors:  E R Salazar; H G Richter; C Spichiger; N Mendez; D Halabi; K Vergara; I P Alonso; F A Corvalán; C Azpeleta; M Seron-Ferre; C Torres-Farfan
Journal:  J Physiol       Date:  2018-09-17       Impact factor: 5.182

5.  Risk-Associated Long Noncoding RNA FOXD3-AS1 Inhibits Neuroblastoma Progression by Repressing PARP1-Mediated Activation of CTCF.

Authors:  Xiang Zhao; Dan Li; Dandan Huang; Huajie Song; Hong Mei; Erhu Fang; Xiaojing Wang; Feng Yang; Liduan Zheng; Kai Huang; Qiangsong Tong
Journal:  Mol Ther       Date:  2017-12-22       Impact factor: 11.454

Review 6.  Sleep, brain vascular health and ageing.

Authors:  Arehally M Mahalakshmi; Bipul Ray; Sunanda Tuladhar; Abid Bhat; Muhammed Bishir; Srinivasa Rao Bolla; Jian Yang; Musthafa Mohamed Essa; Saravana Babu Chidambaram; Gilles J Guillemin; Meena Kishore Sakharkar
Journal:  Geroscience       Date:  2020-08-03       Impact factor: 7.713

7.  NR4A1 contributes to high-fat associated endothelial dysfunction by promoting CaMKII-Parkin-mitophagy pathways.

Authors:  Pei Li; Yuzhi Bai; Xia Zhao; Tian Tian; Liying Tang; Jing Ru; Yun An; Jing Wang
Journal:  Cell Stress Chaperones       Date:  2018-02-22       Impact factor: 3.667

Review 8.  Senescence mechanisms and targets in the heart.

Authors:  Maggie S Chen; Richard T Lee; Jessica C Garbern
Journal:  Cardiovasc Res       Date:  2022-03-25       Impact factor: 10.787

9.  PARP inhibitors promote stromal fibroblast activation by enhancing CCL5 autocrine signaling in ovarian cancer.

Authors:  Xiaoting Li; Tian Fang; Sen Xu; Ping Jin; Dongchen Zhou; Zhengzheng Wang; Huayi Li; Zongyuan Yang; Gang Chen; Xu Zheng; Yu Xia; Xiao Wei; Zeyu Zhang; Xin Yang; Ya Wang; Qinglei Gao
Journal:  NPJ Precis Oncol       Date:  2021-06-09

10.  Moderate hyperoxia induces senescence in developing human lung fibroblasts.

Authors:  Kai You; Pavan Parikh; Karl Khandalavala; Sarah A Wicher; Logan Manlove; Binxia Yang; Annie Roesler; Ben B Roos; Jacob J Teske; Rodney D Britt; Christina M Pabelick; Y S Prakash
Journal:  Am J Physiol Lung Cell Mol Physiol       Date:  2019-08-14       Impact factor: 6.011

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