miR-21 Promotes Fibrogenic Epithelial-to-Mesenchymal Transition of Epicardial Mesothelial Cells Involving Programmed Cell Death 4 and Sprouty-1

被引:83
作者
Bronnum, Hasse [1 ,2 ,3 ,4 ]
Andersen, Ditte C. [1 ,2 ]
Schneider, Mikael [1 ,2 ]
Sandberg, Maria B. [1 ,2 ]
Eskildsen, Tilde [1 ,2 ]
Nielsen, Solveig B. [1 ,2 ]
Kalluri, Raghu [3 ,4 ]
Sheikh, Soren P. [1 ,2 ]
机构
[1] Univ So Denmark, Odense Univ Hosp, Dept Clin Biochem & Pharmacol, Lab Mol & Cellular Cardiol, Odense, Denmark
[2] Univ So Denmark, Dept Cardiovasc & Renal Res, Odense, Denmark
[3] Beth Israel Deaconess Med Ctr, Dept Med, Div Matrix Biol, Boston, MA 02215 USA
[4] Harvard Univ, Sch Med, Boston, MA USA
来源
PLOS ONE | 2013年 / 8卷 / 02期
基金
美国国家卫生研究院;
关键词
SMOOTH-MUSCLE-CELLS; GROWTH-FACTOR-BETA; HEART-FAILURE; MICRORNA EXPRESSION; CARDIAC-HYPERTROPHY; PROGENITOR CELLS; DISEASE; PLASTICITY; CONTRIBUTE; FIBROSIS;
D O I
10.1371/journal.pone.0056280
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
The lining of the adult heart contains epicardial mesothelial cells (EMCs) that have the potential to undergo fibrogenic Epithelial-to-Mesenchymal Transition (EMT) during cardiac injury. EMT of EMCs has therefore been suggested to contribute to the heterogeneous fibroblast pool that mediates cardiac fibrosis. However, the molecular basis of this process is poorly understood. Recently, microRNAs (miRNAs) have been shown to regulate a number of sub-cellular events in cardiac disease. Hence, we hypothesized that miRNAs regulate fibrogenic EMT in the adult heart. Indeed pro-fibrogenic stimuli, especially TGF-beta, promoted EMT progression in EMC cultures, which resulted in differential expression of numerous miRNAs, especially the pleiotropic miR-21. Accordingly, ectopic expression of miR-21 substantially promoted the fibroblast-like phenotype arising from fibrogenic EMT, whereas an antagonist that targeted miR-21 blocked this effect, as assessed on the E-cadherin/alpha-smooth muscle actin balance, cell viability, matrix activity, and cell motility, thus making miR-21 a relevant target of EMC-derived fibrosis. Several mRNA targets of miR-21 was differentially regulated during fibrogenic EMT of EMCs and miR-21-dependent targeting of Programmed Cell Death 4 (PDCD4) and Sprouty Homolog 1 (SPRY1) significantly contributed to the development of a fibroblastoid phenotype. However, PDCD4- and SPRY1-targeting was not entirely ascribable to all phenotypic effects from miR-21, underscoring the pleiotropic biological role of miR-21 and the increasing number of recognized miR-21 targets.
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  • [11] Silencing profilin-1 inhibits endothelial cell proliferation, migration and cord morphogenesis
    Ding, Zhijie
    Lambrechts, Anja
    Parepally, Mayur
    Roy, Partha
    [J]. JOURNAL OF CELL SCIENCE, 2006, 119 (19) : 4127 - 4137
  • [12] MicroRNA Expression Signature and the Role of MicroRNA-21 in the Early Phase of Acute Myocardial Infarction
    Dong, Shimin
    Cheng, Yunhui
    Yang, Jian
    Li, Jingyuan
    Liu, Xiaojun
    Wang, Xiaobin
    Wang, Dong
    Krall, Thomas J.
    Delphin, Ellise S.
    Zhang, Chunxiang
    [J]. JOURNAL OF BIOLOGICAL CHEMISTRY, 2009, 284 (43) : 29514 - 29525
  • [13] LNA-mediated microRNA silencing in non-human primates
    Elmen, Joacim
    Lindow, Morten
    Schutz, Sylvia
    Lawrence, Matthew
    Petri, Andreas
    Obad, Susanna
    Lindholm, Marie
    Hedtjarn, Maj
    Hansen, Henrik Frydenlund
    Berger, Urs
    Gullans, Steven
    Kearney, Phil
    Sarnow, Peter
    Straarup, Ellen Marie
    Kauppinen, Sakari
    [J]. NATURE, 2008, 452 (7189) : 896 - U10
  • [14] Epicardium-derived cells contribute a novel population to the myocardial wall and the atrioventricular cushions
    Gittenberger-de Groot, AC
    Peeters, MPFMV
    Mentink, MMT
    Gourdie, RG
    Poelmann, RE
    [J]. CIRCULATION RESEARCH, 1998, 82 (10) : 1043 - 1052
  • [15] The mir-200 family and mir-205 regulate epithelial to mesenchymal transition by targeting ZEB1 and SIP1
    Gregory, Philip A.
    Bert, Andrew G.
    Paterson, Emily L.
    Barry, Simon C.
    Tsykin, Anna
    Farshid, Gelareh
    Vadas, Mathew A.
    Khew-Goodall, Yeesim
    Goodall, Gregory J.
    [J]. NATURE CELL BIOLOGY, 2008, 10 (05) : 593 - 601
  • [16] Mesenchymal miR-21 regulates branching morphogenesis in murine submandibular gland in vitro
    Hayashi, Toru
    Koyama, Noriko
    Azuma, Yukio
    Kashimata, Masanori
    [J]. DEVELOPMENTAL BIOLOGY, 2011, 352 (02) : 299 - 307
  • [17] Mechanism of TGF-β signaling to growth arrest, apoptosis, and epithelial-mesenchymal transition
    Heldin, Carl-Henrik
    Landström, Marene
    Moustakas, Aristidis
    [J]. CURRENT OPINION IN CELL BIOLOGY, 2009, 21 (02) : 166 - 176
  • [18] qBase relative quantification framework and software for management and automated analysis of real-time quantitative PCR data
    Hellemans, Jan
    Mortier, Geert
    De Paepe, Anne
    Speleman, Frank
    Vandesompele, Jo
    [J]. GENOME BIOLOGY, 2007, 8 (02)
  • [19] Mesothelial progenitor cells and their potential in tissue engineering
    Herrick, SE
    Mutsaers, SE
    [J]. INTERNATIONAL JOURNAL OF BIOCHEMISTRY & CELL BIOLOGY, 2004, 36 (04) : 621 - 642
  • [20] Altered microRNA expression in human heart disease
    Ikeda, Sadakatsu
    Kong, Sek Won
    Lu, Jun
    Bisping, Egbert
    Zhang, Hao
    Allen, Paul D.
    Golub, Todd R.
    Pieske, Burkert
    Pu, William T.
    [J]. PHYSIOLOGICAL GENOMICS, 2007, 31 (03) : 367 - 373