Systematic identification of microRNA functions by combining target prediction and expression profiling

被引:167
作者
Wang, XW [1 ]
Wang, XH [1 ]
机构
[1] Ambion Inc, Austin, TX 78744 USA
关键词
D O I
10.1093/nar/gkl068
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
Target predictions and validations are major obstacles facing microRNA (miRNA) researchers. Animal miRNA target prediction is challenging because of limited miRNA sequence complementarity to the targets. In addition, only a small number of predicted targets have been experimentally validated and the miRNA mechanism is poorly understood. Here we present a novel algorithm for animal miRNA target prediction. The algorithm combines relevant parameters for miRNA target recognition and heuristically assigns different weights to these parameters according to their relative importance. A score calculation scheme is introduced to reflect the strength of each parameter. We also performed microarray time course experiments to identify downregulated genes due to miRNA overexpression. The computational target prediction is combined with the miRNA transfection experiment to systematically identify the gene targets of human miR-124. miR-124 overexpression led to a significant downregulation of many cell cycle related genes. This may be the result of direct suppression of a few cell growth inhibitors at the early stage of miRNA overexpression, and these targeted genes were continuously suppressed over a long period of time. Our high-throughput approach can be generalized to globally identify the targets and functions of other miRNAs.
引用
收藏
页码:1646 / 1652
页数:7
相关论文
共 39 条
[11]   Protein products of human Gas2-related genes on chromosomes 17 and 22 (hGAR17 and hGAR22) associate with both microfilaments and microtubules [J].
Goriounov, D ;
Leung, CL ;
Liem, RKH .
JOURNAL OF CELL SCIENCE, 2003, 116 (06) :1045-1058
[12]   The microRNA Registry [J].
Griffiths-Jones, S .
NUCLEIC ACIDS RESEARCH, 2004, 32 :D109-D111
[13]   MicroRNA target predictions across seven Drosophila species and comparison to mammalian targets [J].
Grün, D ;
Wang, YL ;
Langenberger, D ;
Gunsalus, KC ;
Rajewsky, N .
PLOS COMPUTATIONAL BIOLOGY, 2005, 1 (01) :51-66
[14]   A microRNA polycistron as a potential human oncogene [J].
He, L ;
Thomson, JM ;
Hemann, MT ;
Hernando-Monge, E ;
Mu, D ;
Goodson, S ;
Powers, S ;
Cordon-Cardo, C ;
Lowe, SW ;
Hannon, GJ ;
Hammond, SM .
NATURE, 2005, 435 (7043) :828-833
[15]   Micrornas: Small RNAs with a big role in gene regulation [J].
He, L ;
Hannon, GJ .
NATURE REVIEWS GENETICS, 2004, 5 (07) :522-531
[16]   Vienna RNA secondary structure server [J].
Hofacker, IL .
NUCLEIC ACIDS RESEARCH, 2003, 31 (13) :3429-3431
[17]   Ensembl 2005 [J].
Hubbard, T ;
Andrews, D ;
Caccamo, M ;
Cameron, G ;
Chen, Y ;
Clamp, M ;
Clarke, L ;
Coates, G ;
Cox, T ;
Cunningham, F ;
Curwen, V ;
Cutts, T ;
Down, T ;
Durbin, R ;
Fernandez-Suarez, XM ;
Gilbert, J ;
Hammond, M ;
Herrero, J ;
Hotz, H ;
Howe, K ;
Iyer, V ;
Jekosch, K ;
Kahari, A ;
Kasprzyk, A ;
Keefe, D ;
Keenan, S ;
Kokocinsci, F ;
London, D ;
Longden, I ;
McVicker, G ;
Melsopp, C ;
Meidl, P ;
Potter, S ;
Proctor, G ;
Rae, M ;
Rios, D ;
Schuster, M ;
Searle, S ;
Severin, J ;
Slater, G ;
Smedley, D ;
Smith, J ;
Spooner, W ;
Stabenau, A ;
Stalker, J ;
Storey, R ;
Trevanion, S ;
Ureta-Vidal, A ;
Vogel, J ;
White, S .
NUCLEIC ACIDS RESEARCH, 2005, 33 :D447-D453
[18]   Involvement of MicroRNA in AU-rich element-mediated mRNA instability [J].
Jing, Q ;
Huang, S ;
Guth, S ;
Zarubin, T ;
Motoyama, A ;
Chen, JM ;
Di Padova, F ;
Lin, SC ;
Gram, H ;
Han, JH .
CELL, 2005, 120 (05) :623-634
[19]  
Johnson SM, 2005, CELL, V120, P635, DOI 10.1016/j.cell.2005.01.014
[20]   A combined computational-experimental approach predicts human microRNA targets [J].
Kiriakidou, M ;
Nelson, PT ;
Kouranov, A ;
Fitziev, P ;
Bouyioukos, C ;
Mourelatos, Z ;
Hatzigeorgiou, A .
GENES & DEVELOPMENT, 2004, 18 (10) :1165-1178