The Modern RNP World of Eukaryotes

被引:28
作者
Collins, Lesley J. [1 ]
Kurland, Charles G. [3 ]
Biggs, Patrick [2 ]
Penny, David [1 ]
机构
[1] Massey Univ, Inst Mol Biosci, Palmerston North, New Zealand
[2] Massey Univ, Allan Wilson Ctr Mol Ecol & Evolut, Palmerston North, New Zealand
[3] Lund Univ, Dept Microbial Ecol, Lund, Sweden
关键词
molecular evolution; origin of eukaryotes; RNA infrastructure; RNA world; GENE-EXPRESSION; PROTEIN INTERACTIONS; QUALITY-CONTROL; EVOLUTION; TRANSCRIPTION; CONSERVATION; MICRORNAS; COENZYMES; ANTIQUITY; DYNAMICS;
D O I
10.1093/jhered/esp064
中图分类号
Q [生物科学];
学科分类号
090105 [作物生产系统与生态工程];
摘要
Eukaryote gene expression is mediated by a cascade of RNA functions that regulate, process, store, transport, and translate RNA transcripts. The RNA network that promotes this cascade depends on a large cohort of proteins that partner RNAs; thus, the modern RNA world of eukaryotes is really a ribonucleoprotein (RNP) world. Features of this "RNP infrastructure" can be related to the high cytosolic density of macromolecules and the large size of eukaryote cells. Because of the densely packed cytosol or nucleoplasm (with its severe restriction on diffusion of macromolecules), partitioning of the eukaryote cell into functionally specialized compartments is essential for efficiency. This necessitates the association of RNA and protein into large RNP complexes including ribosomes and spliceosomes. This is well illustrated by the ubiquitous spliceosome for which most components are conserved throughout eukaryotes and which interacts with other RNP-based machineries. The complexes involved in gene processing in modern eukaryotes have broad phylogenetic distributions suggesting that the common ancestor of extant eukaryotes had a fully evolved RNP network. Thus, the eukaryote genome may be uniquely informative about the transition from an earlier RNA genome world to the modern DNA genome world.
引用
收藏
页码:597 / 604
页数:8
相关论文
共 69 条
[1]
The molecular architecture of the nuclear pore complex [J].
Alber, Frank ;
Dokudovskaya, Svetlana ;
Veenhoff, Liesbeth M. ;
Zhang, Wenzhu ;
Kipper, Julia ;
Devos, Damien ;
Suprapto, Adisetyantari ;
Karni-Schmidt, Orit ;
Williams, Rosemary ;
Chait, Brian T. ;
Sali, Andrej ;
Rout, Michael P. .
NATURE, 2007, 450 (7170) :695-701
[2]
A hierarchical model for evolution of 23S ribosomal RNA [J].
Bokov, Konstantin ;
Steinberg, Sergey V. .
NATURE, 2009, 457 (7232) :977-980
[3]
Evolutionary patterns of non-coding RNAs [J].
Bompfünewerer, AF ;
Flamm, C ;
Fried, C ;
Fritzsch, G ;
Hofacker, IL ;
Lehmann, J ;
Missal, K ;
Mosig, A ;
Müller, B ;
Prohaska, SJ ;
Stadler, BMR ;
Stadler, PF ;
Tanzer, A ;
Washietl, S ;
Witwer, C .
THEORY IN BIOSCIENCES, 2005, 123 (04) :301-369
[4]
The BioGRID interaction database:: 2008 update [J].
Breitkreutz, Bobby-Joe ;
Stark, Chris ;
Reguly, Teresa ;
Boucher, Lorrie ;
Breitkreutz, Ashton ;
Livstone, Michael ;
Oughtred, Rose ;
Lackner, Daniel H. ;
Bahler, Jurg ;
Wood, Valerie ;
Dolinski, Kara ;
Tyers, Mike .
NUCLEIC ACIDS RESEARCH, 2008, 36 :D637-D640
[5]
Towards understanding the catalytic core structure of the spliceosome [J].
Butcher, SE ;
Brow, DA .
BIOCHEMICAL SOCIETY TRANSACTIONS, 2005, 33 :447-449
[6]
Control of alternative RNA splicing and gene expression by eukaryotic riboswitches [J].
Cheah, Ming T. ;
Wachter, Andreas ;
Sudarsan, Narasimhan ;
Breaker, Ronald R. .
NATURE, 2007, 447 (7143) :497-U7
[7]
CHEN XS, 2009, GENOME BIOL EVOL, DOI DOI 10.1093/GBE/EVP017
[8]
Complex spliceosomal organization ancestral to extant eukaryotes [J].
Collins, L ;
Penny, D .
MOLECULAR BIOLOGY AND EVOLUTION, 2005, 22 (04) :1053-1066
[9]
The RNA infrastructure: dark matter of the eukaryotic cell? [J].
Collins, Lesley J. ;
Penny, David .
TRENDS IN GENETICS, 2009, 25 (03) :120-128
[10]
Thiamine biosynthesis in algae is regulated by riboswitches [J].
Croft, Martin T. ;
Moulin, Michael ;
Webb, Michael E. ;
Smith, Alison G. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2007, 104 (52) :20770-20775