Role of a tRNA base modification and its precursors in frameshifting in eukaryotes

被引:81
作者
Waas, William F. [1 ]
Druzina, Zhanna [1 ]
Hanan, Melanie [1 ]
Schimmel, Paul [1 ]
机构
[1] Scripps Res Inst, Dept Mol Biol, Skaggs Inst Chem Biol, La Jolla, CA 92037 USA
关键词
D O I
10.1074/jbc.M703391200
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
Little is known about the role of specific base modifications of transfer RNAs. Wyosine bases are tRNA(Phe)- specific modifications that are distinguished by differentiated, lateral side chains and base methylations appended to the core ring structure of a universally conserved G37, adjacent to the anticodon of Phe tRNAs. Based on previous data, we hypothesized that this modification was needed for - 1 frameshifting. Using a reporter system incorporating a SCV-LA yeast virus slippery site for detecting - 1 frameshifts in vivo, yeast strains were created that enabled chemical-genetic dissection of the role of different functional groups of wyebutosine that are added in a three-step post-transcriptional set of reactions. With this system, hypo-modification increased Phe-specific frameshifting, with incremental changes in frameshift efficiency after specific intermediates in the progression of wyebutosine synthesis. These data combined with investigations of wild-type and hypomodified tRNA binding to ribosomes suggest that frameshift efficiency is kinetically and not thermodynamically controlled. The progressive nature of frameshift efficiency with the stage of modification is consistent with a stepwise evolution and tuning of frameshift potential. The stepwise tuning of frameshift efficiency could explain why tRNAPhe in some eukaryotes is not fully modified but, rather, hypomodified to capture a specific frameshift potential.
引用
收藏
页码:26026 / 26034
页数:9
相关论文
共 52 条
[41]   Comparative study of the effects of heptameric slippery site composition on-1 frameshifting among different eukaryotic systems [J].
Plant, EP ;
Dinman, JD .
RNA, 2006, 12 (04) :666-673
[42]   The ''allosteric three-site model'' of elongation cannot be confirmed in a well-defined ribosome system from Escherichia coli [J].
Semenkov, YP ;
Rodnina, MV ;
Wintermeyer, W .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1996, 93 (22) :12183-12188
[43]  
SMITH DWE, 1985, J BIOL CHEM, V260, P147
[44]  
Soboleva N. G., 2003, Molekulyarnaya Biologiya (Moscow), V37, P121
[45]   Compilation of tRNA sequences and sequences of tRNA genes [J].
Sprinzl, M ;
Horn, C ;
Brown, M ;
Ioudovitch, A ;
Steinberg, S .
NUCLEIC ACIDS RESEARCH, 1998, 26 (01) :148-153
[46]   Naturally-occurring modification restricts the anticodon domain conformational space of tRNAPhe [J].
Stuart, JW ;
Koshlap, KM ;
Guenther, R ;
Agris, PF .
JOURNAL OF MOLECULAR BIOLOGY, 2003, 334 (05) :901-918
[47]   CRYSTAL-STRUCTURE OF YEAST PHENYLALANINE TRANSFER-RNA .1. CRYSTALLOGRAPHIC REFINEMENT [J].
SUSSMAN, JL ;
HOLBROOK, SR ;
WARRANT, RW ;
CHURCH, GM ;
KIM, SH .
JOURNAL OF MOLECULAR BIOLOGY, 1978, 123 (04) :607-630
[48]  
THEIBE R, 1973, FEBS LETT, V38, P27
[49]   A SPECIFIC MODIFICATION NEXT TO ANTICODON OF PHENYLALANINE TRANSFER RIBONUCLEIC ACID [J].
THIEBE, R ;
ZACHAU, HG .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 1968, 5 (04) :546-&
[50]   RIBOSOMAL FRAMESHIFTING REQUIRES A PSEUDOKNOT IN THE SACCHAROMYCES-CEREVISIAE DOUBLE-STRANDED-RNA VIRUS [J].
TZENG, TH ;
TU, CL ;
BRUENN, JA .
JOURNAL OF VIROLOGY, 1992, 66 (02) :999-1006