MicroRNAs mediate the senescence-associated decline of NRF2 in endothelial cells

被引:40
作者
Kuosmanen, Suvi M. [1 ]
Sihvola, Virve [1 ]
Kansanen, Emilia [1 ]
Kaikkonen, Minna U. [1 ]
Levonen, Anna-Liisa [1 ]
机构
[1] Univ Eastern Finland, AI Virtanen Inst Mol Sci, Neulaniementie 2, Kuopio 70211, Finland
基金
芬兰科学院;
关键词
MicroRNA; Aging; Senescence; NRF2; Endothelial cell; DIFFERENTIAL EXPRESSION ANALYSIS; VASCULAR OXIDATIVE STRESS; GENE-EXPRESSION; ANTIOXIDANT; PATHWAY; DYSREGULATION; DYSFUNCTION; GLYCOLYSIS; ACTIVATION; LONGEVITY;
D O I
10.1016/j.redox.2018.06.007
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
070307 [化学生物学]; 071010 [生物化学与分子生物学];
摘要
Oxidative stress predisposes to several aging-associated diseases, such as cardiovascular diseases and cancer. In aging, increase in the production of reactive oxygen species is typically accompanied with a decline in adaptive stress responses to oxidative stress. The decline is primarily due to a decrease in antioxidant production. Nuclear factor E2-Related Factor 2 (NRF2) is a key transcription factor regulating oxidative and electrophilic stress responses, but it has also been shown to play a role in the regulation of cell metabolism. NRF2 expression declines in aging, but the mechanisms remain unclear. In this study, we show that microRNAs (miRNAs) that are abundant in old endothelial cells decrease NRF2 expression by direct targeting of NRF2 mRNA. The effect is reversed by miRNA inhibition. The senescence-associated downregulation of NRF2 decreases endothelial glycolytic activity and stress tolerance both of which are restored after reinstating NRF2. Manipulation of the senescence-associated miRNA levels affects the glycolytic activity and stress tolerance consistently with the NRF2 results. We conclude that senescence-associated miRNAs are involved in the decline of NRF2 expression, thus contributing to the repression of adaptive responses during cell senescence.
引用
收藏
页码:77 / 83
页数:7
相关论文
共 36 条
[1]
MicroRNAs: Genomics, biogenesis, mechanism, and function (Reprinted from Cell, vol 116, pg 281-297, 2004) [J].
Bartel, David P. .
CELL, 2007, 131 (04) :11-29
[2]
ROS, Cell Senescence, and Novel Molecular Mechanisms in Aging and Age-Related Diseases [J].
Davalli, Pierpaola ;
Mitic, Tijana ;
Caporali, Andrea ;
Lauriola, Angela ;
D'Arca, Domenico .
OXIDATIVE MEDICINE AND CELLULAR LONGEVITY, 2016, 2016
[3]
Role of PFKFB3-Driven Glycolysis in Vessel Sprouting [J].
De Bock, Katrien ;
Georgiadou, Maria ;
Schoors, Sandra ;
Kuchnio, Anna ;
Wong, Brian W. ;
Cantelmo, Anna Rita ;
Quaegebeur, Annelies ;
Ghesquiere, Bart ;
Cauwenberghs, Sandra ;
Eelen, Guy ;
Phng, Li-Kun ;
Betz, Inge ;
Tembuyser, Bieke ;
Brepoels, Katleen ;
Welti, Jonathan ;
Geudens, Ilse ;
Segura, Inmaculada ;
Cruys, Bert ;
Bifari, Franscesco ;
Decimo, Ilaria ;
Blanco, Raquel ;
Wyns, Sabine ;
Vangindertael, Jeroen ;
Rocha, Susana ;
Collins, Russel T. ;
Munck, Sebastian ;
Daelemans, Dirk ;
Imamura, Hiromi ;
Devlieger, Roland ;
Rider, Mark ;
Van Veldhoven, Paul P. ;
Schuit, Frans ;
Bartrons, Ramon ;
Hofkens, Johan ;
Fraisl, Peter ;
Telang, Sucheta ;
DeBerardinis, Ralph J. ;
Schoonjans, Luc ;
Vinckier, Stefan ;
Chesney, Jason ;
Gerhardt, Holger ;
Dewerchin, Mieke ;
Carmeliet, Peter .
CELL, 2013, 154 (03) :651-663
[4]
High levels of oncomiR-21 contribute to the senescence-induced growth arrest in normal human cells and its knock-down increases the replicative lifespan [J].
Dellago, Hanna ;
Preschitz-Kammerhofer, Barbara ;
Terlecki-Zaniewicz, Lucia ;
Schreiner, Carina ;
Fortschegger, Klaus ;
Chang, Martina W. -F. ;
Hackl, Matthias ;
Monteforte, Rossella ;
Kuehnel, Harald ;
Schosserer, Markus ;
Gruber, Florian ;
Tschachler, Erwin ;
Scheideler, Marcel ;
Grillari-Voglauer, Regina ;
Grillari, Johannes ;
Wieser, Matthias .
AGING CELL, 2013, 12 (03) :446-458
[5]
Gene Expression Omnibus: NCBI gene expression and hybridization array data repository [J].
Edgar, R ;
Domrachev, M ;
Lash, AE .
NUCLEIC ACIDS RESEARCH, 2002, 30 (01) :207-210
[6]
Oxidative stress and vascular inflammation in aging [J].
El Assar, Mariam ;
Angulo, Javier ;
Rodriguez-Manas, Leocadio .
FREE RADICAL BIOLOGY AND MEDICINE, 2013, 65 :380-401
[7]
MiR-126 regulates angiogenic signaling and vascular integrity [J].
Fish, Jason E. ;
Santoro, Massimo M. ;
Morton, Sarah U. ;
Yu, Sangho ;
Yeh, Ru-Fang ;
Wythe, Joshua D. ;
Lvey, Kathryn N. ;
Bruneau, Benoit G. ;
Stainier, Didier Y. R. ;
Srivastava, Deepak .
DEVELOPMENTAL CELL, 2008, 15 (02) :272-284
[8]
MicroRNA-100 Regulates Neovascularization by Suppression of Mammalian Target of Rapamycin in Endothelial and Vascular Smooth Muscle Cells [J].
Grundmann, Sebastian ;
Hans, Felix P. ;
Kinniry, Sheena ;
Heinke, Jennifer ;
Helbing, Thomas ;
Bluhm, Franziska ;
Sluijter, Joost P. G. ;
Hoefer, Imo ;
Pasterkamp, Gerard ;
Bode, Christoph ;
Moser, Martin .
CIRCULATION, 2011, 123 (09) :999-1009
[9]
Activating de novo mutations in NFE2L2 encoding NRF2 cause a multisystem disorder [J].
Huppke, Peter ;
Weissbach, Susann ;
Church, Joseph A. ;
Schnur, Rhonda ;
Krusen, Martina ;
Dreha-Kulaczewski, Steffi ;
Kuehn-Velten, W. Nikolaus ;
Wolf, Annika ;
Huppke, Brenda ;
Millan, Francisca ;
Begtrup, Amber ;
Almusafri, Fatima ;
Thiele, Holger ;
Altmueller, Janine ;
Nuernberg, Peter ;
Mueller, Michael ;
Gaertner, Jutta .
NATURE COMMUNICATIONS, 2017, 8
[10]
The Keap1-Nrf2 pathway: Mechanisms of activation and dysregulation in cancer [J].
Kansanen, Emilia ;
Kuosmanen, Suvi M. ;
Leinonen, Hanna ;
Levonen, Anna-Liisa .
REDOX BIOLOGY, 2013, 1 (01) :45-49