Non-coding RNAs, epigenetics and complexity

被引:193
作者
Costa, Fabricio F. [1 ,2 ]
机构
[1] Childrens Mem Res Ctr, Canc Biol Epigenom Program, Chicago, IL 60614 USA
[2] Northwestern Univ, Feinberg Sch Med, Chicago, IL 60614 USA
关键词
non-coding RNAs; repetitive elements; epigenetics; complexity; epigenetic inheritance;
D O I
10.1016/j.gene.2007.12.008
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Several aspects of epigenetics are strongly linked to non-coding RNAs, especially small RNAs that can direct the cytosine methylation and histone modifications that are implicated in gene expression regulation in complex organisms. A fundamental characteristic of epigenetics is that the same genome can show alternative phenotypes, which are based in different epigenetic states. Some of the most studied complex epigenetic phenomena including transposon activity and silencing recently exemplified by piRNAs (piwi-interacting RNAs), position effect variegation, X-chromosome inactivation, parental imprinting, and paramutation have direct or indirect participation of an RNA component. Conceivably, most of the non-coding RNAs with no described function yet, are players in epigenetic mechanisms that are still not completely understood. In that regard, RNAs were recently implicated in new mechanisms of genetic information transfer in yeast, plants and mice. In this review article, the hypothesis that non-coding RNAs might be the main component of complex organisms acquired during evolution will be explored. The question of how evolutionary theories have been challenged by these molecules in association with epigenetic mechanisms will also be discussed here. (C) 2007 Elsevier B.V. All rights reserved.
引用
收藏
页码:9 / 17
页数:9
相关论文
共 83 条
[71]   Global histone modification patterns predict risk of prostate cancer recurrence [J].
Seligson, DB ;
Horvath, S ;
Shi, T ;
Yu, H ;
Tze, S ;
Grunstein, M ;
Kurdistani, SK .
NATURE, 2005, 435 (7046) :1262-1266
[72]   The non-coding Air RNA is required for silencing autosomal imprinted genes [J].
Sleutels, F ;
Zwart, R ;
Barlow, DP .
NATURE, 2002, 415 (6873) :810-813
[73]   Alu elements within human mRNAs are probable microRNA targets [J].
Smalheiser, Neil R. ;
Torvik, Vetle I. .
TRENDS IN GENETICS, 2006, 22 (10) :532-536
[74]   RNA-templated DNA repair [J].
Storici, Francesca ;
Bebenek, Katarzyna ;
Kunkel, Thomas A. ;
Gordenin, Dmitry A. ;
Resnick, Michael A. .
NATURE, 2007, 447 (7142) :338-341
[75]  
SUNKIN SM, 2007, COLD SPRING HARB M, P147
[76]   The relationship between non-protein-coding DNA and eukaryotic complexity [J].
Taft, Ryan J. ;
Pheasant, Michael ;
Mattick, John S. .
BIOESSAYS, 2007, 29 (03) :288-299
[77]   Heritable and inducible genetic interference by double-stranded RNA encoded by transgenes [J].
Tavernarakis, N ;
Wang, SL ;
Dorovkov, M ;
Ryazanov, A ;
Driscoll, M .
NATURE GENETICS, 2000, 24 (02) :180-183
[78]   Structured RNAs in the ENCODE selected regions of the human genome [J].
Washietl, Stefan ;
Pedersen, Jakob S. ;
Korbel, Jan O. ;
Stocsits, Claudia ;
Gruber, Andreas R. ;
Hackermueller, Joerg ;
Hertel, Jana ;
Lindemeyer, Manja ;
Reiche, Kristin ;
Tanzer, Andrea ;
Ucla, Catherine ;
Wyss, Carine ;
Antonarakis, Stylianos E. ;
Denoeud, France ;
Lagarde, Julien ;
Drenkow, Jorg ;
Kapranov, Philipp ;
Gingeras, Thomas R. ;
Guigo, Roderic ;
Snyder, Michael ;
Gerstein, Mark B. ;
Reymond, Alexandre ;
Hofacker, Ivo L. ;
Stadler, Peter F. .
GENOME RESEARCH, 2007, 17 (06) :852-864
[79]   Distribution, silencing potential and evolutionary impact of promoter DNA methylation in the human genome [J].
Weber, Michael ;
Hellmann, Ines ;
Stadler, Michael B. ;
Ramos, Liliana ;
Paabo, Svante ;
Rebhan, Michael ;
Schubeler, Dirk .
NATURE GENETICS, 2007, 39 (04) :457-466
[80]   MicroRNA function in animal development [J].
Wienholds, E ;
Plasterk, RHA .
FEBS LETTERS, 2005, 579 (26) :5911-5922