Regulation of translation via mRNA structure in prokaryotes and eukaryotes

被引:554
作者
Kozak, M [1 ]
机构
[1] Robert Wood Johnson Med Sch, Dept Biochem, Piscataway, NJ 08854 USA
关键词
ribosome binding site; protein-synthesis; scanning model; AUG; repressor protein; reinitiation;
D O I
10.1016/j.gene.2005.06.037
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
The mechanism of initiation of translation differs between prokaryotes and eukaryotes, and the strategies used for regulation differ accordingly. Translation in prokaryotes is usually regulated by blocking access to the initiation site. This is accomplished via base-paired structures (within the mRNA itself, or between the mRNA and a small trans-acting RNA) or via mRNA-binding proteins. Classic examples of each mechanism are described. The polycistronic structure of mRNAs is an important aspect of translational control in prokaryotes, but polycistronic mRNAs are not usable (and usually not produced) in eukaryotes. Four structural elements in eukaryotic mRNAs are important for regulating translation: (i) the m7G cap; (ii) sequences flanking the AUG start codon; (iii) the position of the AUG codon relative to the 5' end of the mRNA; and (iv) secondary structure within the mRNA leader sequence. The scanning model provides a framework for understanding these effects. The scanning mechanism also explains how small open reading frames near the 5' end of the mRNA can down-regulate translation. This constraint is sometimes abrogated by changing the structure of the mRNA, sometimes with clinical consequences. Examples are described. Some mistaken ideas about regulation of translation that have found their way into textbooks are pointed out and corrected. (c) 2005 Elsevier B.V All rights reserved.
引用
收藏
页码:13 / 37
页数:25
相关论文
共 342 条
[1]   SUPPRESSION OF RIBOSOMAL REINITIATION AT UPSTREAM OPEN READING FRAMES IN AMINO ACID-STARVED CELLS FORMS THE BASIS FOR GCN4 TRANSLATIONAL CONTROL [J].
ABASTADO, JP ;
MILLER, PF ;
JACKSON, BM ;
HINNEBUSCH, AG .
MOLECULAR AND CELLULAR BIOLOGY, 1991, 11 (01) :486-496
[2]   SCANNING MODEL FOR TRANSLATIONAL REINITIATION IN EUBACTERIA [J].
ADHIN, MR ;
VANDUIN, J .
JOURNAL OF MOLECULAR BIOLOGY, 1990, 213 (04) :811-818
[3]   TRANSLATIONAL REGULATION OF THE LYSIS GENE IN RNA BACTERIOPHAGE FR REQUIRES A UUG INITIATION CODON [J].
ADHIN, MR ;
VANDUIN, J .
MOLECULAR & GENERAL GENETICS, 1989, 218 (01) :137-142
[4]   ARC-1, a sequence element complementary to an internal 18S rRNA segment, enhances translation efficiency in plants when present in the leader or intercistronic region of mRNAs [J].
Akbergenov, RZ ;
Zhanybekova, SS ;
Kryldakov, RV ;
Zhigailov, A ;
Polimbetova, NS ;
Hohn, T ;
Iskakov, BK .
NUCLEIC ACIDS RESEARCH, 2004, 32 (01) :239-247
[5]  
ALBERTS B, 2002, MOL BIOL CELL, P447
[6]   Abundant early expression of gpUL4 from a human cytomegalovirus mutant lacking a repressive upstream open reading frame [J].
Alderete, JP ;
Child, SJ ;
Geballe, AP .
JOURNAL OF VIROLOGY, 2001, 75 (15) :7188-7192
[7]   Truncated initiation factor eIF4G lacking an eIF4E binding site can support capped mRNA translation [J].
Ali, IK ;
McKendrick, L ;
Morley, SJ ;
Jackson, RJ .
EMBO JOURNAL, 2001, 20 (15) :4233-4242
[8]   The cryo-EM structure of a translation initiation complex from Escherichia coli [J].
Allen, GS ;
Zavialov, A ;
Gursky, R ;
Ehrenberg, M ;
Frank, J .
CELL, 2005, 121 (05) :703-712
[9]   Clinical severity and thermodynamic effects of iron-responsive element mutations in hereditary hyperferritinemia-cataract syndrome [J].
Allerson, CR ;
Cazzola, M ;
Rouault, TA .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1999, 274 (37) :26439-26447
[10]   THE 5'-LEADER SEQUENCE OF TOBACCO MOSAIC-VIRUS RNA MEDIATES INITIATION-FACTOR-4E-INDEPENDENT, BUT STILL INITIATION-FACTOR-4A-DEPENDENT TRANSLATION IN YEAST EXTRACTS [J].
ALTMANN, M ;
BLUM, S ;
WILSON, TMA ;
TRACHSEL, H .
GENE, 1990, 91 (01) :127-129