The role of blood flow and microRNAs in blood vessel development

被引:17
作者
Liu, Dong [1 ]
Krueger, Janna [1 ]
Le Noble, Ferdinand [1 ]
机构
[1] Max Delbrueck Ctr Mol Med MDC, Dept Angiogenesis & Cardiovasc Pathol, D-13125 Berlin, Germany
关键词
microRNA; blood vessel; development; endothelial cell; smooth muscle cell; MUSCLE-CELL DIFFERENTIATION; GENE-EXPRESSION; DILATED CARDIOMYOPATHY; VASCULAR DEVELOPMENT; DOWN-REGULATION; SMALL RNAS; TIP CELLS; ANGIOGENESIS; DICER; GROWTH;
D O I
10.1387/ijdb.103220dl
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
The circulatory system is the first organ system that develops during embryogenesis, and is essential for embryo viability and survival. Crucial for developing a functional vasculature are the specification of arterial-venous identity in vessels and the formation of a hierarchical branched vascular network. Sprouting angiogenesis, intussusception, and flow driven remodeling events collectively contribute to establishing the vascular architecture. At the molecular level, arterial-venous identity and branching are regulated by genetically hardwired mechanisms involving Notch, vascular endothelial growth factor and neural guidance molecule signaling pathways, modulated by hemodynamic factors. MicroRNAs are small, non-coding RNAs that act as silencers to fine-tune the gene expression profile. MicroRNAs are known to influence cell fate decisions, and microRNA expression can be controlled by blood flow, thus placing microRNAs potentially at the center of the genetic cascades regulating vascular differentiation. In the present review, we summarize current progress regarding microRNA functions in blood vessel development with an emphasis on studies performed in zebrafish and mouse models.
引用
收藏
页码:419 / 429
页数:11
相关论文
共 117 条
[31]   Role of smooth muscle cells in the initiation and early progression of atherosclerosis [J].
Doran, Amanda C. ;
Meller, Nahum ;
McNamara, Coleen A. .
ARTERIOSCLEROSIS THROMBOSIS AND VASCULAR BIOLOGY, 2008, 28 (05) :812-819
[32]   The range of adaptation by collateral vessels after femoral artery occlusion [J].
Eitenmueller, Inka ;
Volger, Oscar ;
Kluge, Alexander ;
Troidl, Kerstin ;
Barancik, Miroslav ;
Cai, Wei-Jun ;
Heil, Matthias ;
Pipp, Frederic ;
Fischer, Silvia ;
Horrevoets, Anton J. G. ;
Schmitz-Rixen, Thomas ;
Schaper, Wolfgang .
CIRCULATION RESEARCH, 2006, 99 (06) :656-662
[33]   Getting to the root of miRNA-Mediated gene silencing [J].
Eulalio, Ana ;
Huntzinger, Eric ;
Izaurralde, Elisa .
CELL, 2008, 132 (01) :9-14
[34]   MicroRNA biogenesis: there's more than one way to skin a cat [J].
Faller, Michael ;
Guo, Feng .
BIOCHIMICA ET BIOPHYSICA ACTA-GENE REGULATORY MECHANISMS, 2008, 1779 (11) :663-667
[35]   MicroRNA-210 modulates endothelial cell response to hypoxia and inhibits the receptor tyrosine kinase ligand Ephrin-A3 [J].
Fasanaro, Pasquale ;
D'Alessandra, Yuri ;
Di Stefano, Valeria ;
Melchionna, Roberta ;
Romani, Sveva ;
Pompilio, Giulio ;
Capogrossi, Maurizio C. ;
Martelli, Fabio .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2008, 283 (23) :15878-15883
[36]   The promyelocytic leukemia zinc finger-microRNA-221/-222 pathway controls melanoma progression through multiple oncogenic mechanisms [J].
Felicetti, Federica ;
Errico, M. Cristina ;
Bottero, Lisabianca ;
Segnalini, Patrizia ;
Stoppacciaro, Antonella ;
Biffoni, Mauro ;
Felli, Nadia ;
Mattia, Gianfranco ;
Petrini, Marina ;
Colombo, Mario P. ;
Peschle, Cesare ;
Care, Alessandra .
CANCER RESEARCH, 2008, 68 (08) :2745-2754
[37]   MicroRNAs 221 and 222 inhibit normal erythropoiesis and erythroleukemic cell growth via kit receptor down-modulation [J].
Felli, N ;
Fontana, L ;
Pelosi, E ;
Botta, R ;
Bonci, D ;
Facchiano, F ;
Liuzzi, F ;
Lulli, V ;
Morsilli, O ;
Santoro, S ;
Valtieri, M ;
Calin, GA ;
Liu, CG ;
Sorrentino, A ;
Croce, CM ;
Peschle, C .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2005, 102 (50) :18081-18086
[38]   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
[39]   MiR-221 controls CDKN1C/p57 and CDKN1B/p27 expression in human hepatocellular carcinoma [J].
Fornari, F. ;
Gramantieri, L. ;
Ferracin, M. ;
Veronese, A. ;
Sabbioni, S. ;
Calin, G. A. ;
Grazi, G. L. ;
Giovannini, C. ;
Croce, C. M. ;
Bolondi, L. ;
Negrini, M. .
ONCOGENE, 2008, 27 (43) :5651-5661
[40]   miR-221 and miR-222 expression affects the proliferation potential of human prostate carcinoma cell lines by targeting p27Kip1* [J].
Galardi, Silvia ;
Mercatelli, Neri ;
Giorda, Ezio ;
Massalini, Simone ;
Frajese, Giovanni Vanni ;
Ciafre, Silvia Anna ;
Farace, Maria Giulia .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2007, 282 (32) :23716-23724