Oxidative Stress-Induced miR-200c Disrupts the Regulatory Loop Among SIRT1, FOXO1, and eNOS

被引:120
|
作者
Carlomosti, Fabrizio [1 ]
D'Agostino, Marco [2 ]
Beji, Sara [1 ]
Torcinaro, Alessio [3 ,4 ]
Rizzi, Roberto [4 ]
Zaccagnini, Germana [5 ]
Maimone, Biagina [5 ]
Di Stefano, Valeria [1 ]
De Santa, Francesca [4 ,6 ]
Cordisco, Sonia [7 ]
Antonini, Annalisa [1 ]
Ciarapica, Roberta [1 ]
Dellambra, Elena [7 ]
Martelli, Fabio [5 ]
Avitabile, Daniele [8 ]
Capogrossi, Maurizio Colognesi [1 ]
Magenta, Alessandra [1 ]
机构
[1] Ist Dermopat Immacolata IRCCS, FLMM, Vasc Pathol Lab, Via Monti di Creta 104, Rome, Italy
[2] Univ Rome Sapienza, Dept Expt Med, Rome, Italy
[3] Charles Darwin Sapienza Univ, Dept Biol & Biotechnol, Rome, Italy
[4] Natl Res Council Italy, CNR, Inst Cell Biol & Neurobiol IBCN, Rome, Italy
[5] IRCCS Policlin San Donato, Mol Cardiol Lab, Milan, Italy
[6] Santa Lucia Fdn, FSL IRCCS, Rome, Italy
[7] Ist Dermopat Immacolata IRCCS, FLMM, Mol & Cell Biol Lab, Rome, Italy
[8] IRCCS, Centro Cardiol Monzino, Unita Biol Vasc & Med Rigenerat, Milan, Italy
关键词
free radicals; aging; microRNA; vascular; nitric oxide; ENDOTHELIAL NITRIC-OXIDE; VASCULAR-DISEASES; REDOX REGULATION; PEROXIREDOXIN; CELLS; HOMEOSTASIS; SYNTHASE; KERATINOCYTES; DYSFUNCTION; INHIBITION;
D O I
10.1089/ars.2016.6643
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Aims: Reactive oxygen species (ROS) play a pivotal role in different pathologic conditions, including ischemia, diabetes, and aging. We previously showed that ROS enhance miR-200c expression, causing endothelial cell (EC) apoptosis and senescence. Herein, we dissect the interaction among miR-200c and three strictly related proteins that modulate EC function and ROS production: sirtuin 1 (SIRT1), endothelial nitric oxide synthase (eNOS), and forkhead box O1 (FOXO1). Moreover, the role of miR-200c on ROS modulation was also investigated. Results: We demonstrated that miR-200c directly targets SIRT1, eNOS, and FOXO1; via this mechanism, miR-200c decreased NO and increased the acetylation of SIRT1 targets, that is, FOXO1 and p53. FOXO1 acetylation inhibited its transcriptional activity on target genes, that is, SIRT1 and the ROS scavengers, catalase and manganese superoxide dismutase. In keeping, miR-200c increased ROS production and induced p66Shc protein phosphorylation in Ser-36; this mechanism upregulated ROS and inhibited FOXO1 transcription, reinforcing this molecular circuitry. These in vitro results were validated in three in vivo models of oxidative stress, that is, human skin fibroblasts from old donors, femoral arteries from old mice, and a murine model of hindlimb ischemia. In all cases, miR-200c was higher versus control and its targets, that is, SIRT1, eNOS, and FOXO1, were downmodulated. In the mouse hindlimb ischemia model, anti-miR-200c treatment rescued these targets and improved limb perfusion. Innovation and Conclusion: miR-200c disrupts SIRT1/FOXO1/eNOS regulatory loop. This event promotes ROS production and decreases NO, contributing to endothelial dysfunction under conditions of increased oxidative stress such as aging and ischemia.
引用
收藏
页码:328 / 344
页数:17
相关论文
共 50 条
  • [21] Deoxyshikonin inhibited rotavirus replication by regulating autophagy and oxidative stress through SIRT1/FoxO1/Rab7 axis
    Huang, Haohai
    Liao, Dan
    He, Bin
    Pu, Rong
    Cui, Yejia
    Zhou, Guanghui
    MICROBIAL PATHOGENESIS, 2023, 178
  • [22] Asiatic acid improves high-fat-diet-induced osteoporosis in mice via regulating SIRT1/FOXO1 signaling and inhibiting oxidative stress
    Chen, Xiaosi
    Hang, Dengpeng
    Liu, Tianfeng
    Huang, Chengshuo
    Hu, Zibing
    Tang, Xiaoyan
    Wu, Shaoke
    HISTOLOGY AND HISTOPATHOLOGY, 2022, 37 (08) : 769 - 777
  • [23] MUC1-C oncoprotein activates the ZEB1/miR-200c regulatory loop and epithelial–mesenchymal transition
    H Rajabi
    M Alam
    H Takahashi
    A Kharbanda
    M Guha
    R Ahmad
    D Kufe
    Oncogene, 2014, 33 : 1680 - 1689
  • [24] Metabolic Stress-Induced Activation of FoxO1 Triggers Diabetic Cardiomyopathy
    Battiprolu, Pavan K.
    Hojayev, Berdymammet
    Jiang, Nan
    Wang, Zhao V.
    Luo, Xiang
    Iglewski, Myriam
    Shelton, John M.
    Gerard, Robert D.
    Rothermel, Beverly A.
    Gillette, Thomas G.
    Lavandero, Sergio
    Hill, Joseph A.
    CIRCULATION, 2011, 124 (21)
  • [25] FoxO1 Ablation Rescues Metabolic Stress-induced Cardiac Remodeling
    Battiprolu, Pavan K.
    Morales, Cyndi R.
    Baker, Lauren
    Pedrozo, Zully
    Li, Dan L.
    Nguven, Annie
    Jiang, Nan
    Shelton, John M.
    Gillette, Thomas G.
    Lavandero, Sergio
    Hill, Joseph A.
    CIRCULATION, 2013, 128 (22)
  • [26] miR-181a increases FoxO1 acetylation and promotes granulosa cell apoptosis via SIRT1 downregulation
    Zhang, Mei
    Zhang, Qun
    Hu, Yali
    Xu, Lu
    Jiang, Yue
    Zhang, Chunxue
    Ding, Lijun
    Jiang, Ruiwei
    Sun, Jianxin
    Sun, Haixiang
    Yan, Guijun
    CELL DEATH & DISEASE, 2017, 8 : e3088 - e3088
  • [27] miR-181a increases FoxO1 acetylation and promotes granulosa cell apoptosis via SIRT1 downregulation
    Mei Zhang
    Qun Zhang
    Yali Hu
    Lu Xu
    Yue Jiang
    Chunxue Zhang
    Lijun Ding
    Ruiwei Jiang
    Jianxin Sun
    Haixiang Sun
    Guijun Yan
    Cell Death & Disease, 2017, 8 : e3088 - e3088
  • [28] Shikonin Inhibits the Sirt1/FoxO1/Rab7 Pathway, Regulates Autophagy and Oxidative Stress, and Inhibits Rotavirus Replication and Expansion
    Liu, Pingping
    Chen, Chunmiao
    Zhang, Guozhe
    Zhang, Qi
    Yang, Hengyue
    JOURNAL OF BIOLOGICAL REGULATORS AND HOMEOSTATIC AGENTS, 2023, 37 (03): : 1393 - 1400
  • [29] Apigenin alleviates oxidative stress-induced myocardial injury by regulating SIRT1 signaling pathway
    Xu, Kun
    Yang, Yao
    Lan, Ming
    Wang, Jiannan
    Liu, Bing
    Yan, Mingjing
    Wang, Hua
    Li, Wenlin
    Sun, Shenghui
    Zhu, Kaiyi
    Zhang, Xiyue
    Hei, Mingyan
    Huang, Xiuqing
    Dou, Lin
    Tang, Weiqing
    He, Qing
    Li, Jian
    Shen, Tao
    EUROPEAN JOURNAL OF PHARMACOLOGY, 2023, 944
  • [30] Nicotinamide mononucleotide inhibits oxidative stress-induced damage in a SIRT1/NQO-1-dependent manner
    Nakajo, T.
    Kitajima, N.
    Katayoshi, T.
    Tsuji-Naito, K.
    TOXICOLOGY IN VITRO, 2023, 93