OVERPRODUCTION AND PURIFICATION OF NATIVE AND QUEUINE-LACKING ESCHERICHIA-COLI TRANSFER RNA(ASP) - ROLE OF THE WOBBLE BASE IN TRANSFER RNA(ASP) ACYLATION

被引:27
作者
MARTIN, F
ERIANI, G
EILER, S
MORAS, D
DIRHEIMER, G
GANGLOFF, J
机构
[1] CNRS, INST BIOL MOLEC & CELLULAIRE, UNITE STRUCT MACROMOLEC BIOL & MECANISMES RECONNAI, F-67084 STRASBOURG, FRANCE
[2] CNRS, INST BIOL MOLEC & CELLULAIRE, BIOCHEM STRUCT LAB UPR 9002, F-67084 STRASBOURG, FRANCE
关键词
TRANSFER RNA(ASP); OVERPRODUCTION; MODIFIED NUCLEOSIDES; QUEUINE; ASPRS;
D O I
10.1006/jmbi.1993.1651
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
Escherichia coli tRNAAsp was overproduced in E. coli up to 15-fold from a synthetic tRNAAsp gene placed in a plasmid under the dependence of an isopropyl-β, D-thiogalactopyranoside-inducible promoter. Purification to nearly homogeneity (95%) was achieved after two HPLC DEAE-cellulose columns. E. coli tRNAAsp[G34] (having guanine instead of queuine at position 34) was obtained by the same procedure except that it was overproduced in a strain lacking the enzyme responsible for queuine modification. Nucleoside analysis showed that, except for the replacement of Q34 by G34 in mutant-derived tRNAAsp, the base modification levels of both tRNAs are the same as those in wild-type E. coli tRNAAsp. Kinetic properties of tRNAAsp[Q34] and [G34] with yeast AspRS compared to those in the homologous reactions in yeast and E. coli clearly indicate that the major identity elements are the same in both organisms: the conserved discriminant base and the anticodon triplet. In connection with this, we explored by site-directed mutagenesis the functional role of the interactions which, as revealed by the crystallographic structure, occur between the wobble base of yeast tRNAAsp and two residues of yeast AspRS. Their absence strongly affected aspartylation and the kd of tRNAAsp. Each contact individually restores almost completely the wild-type acylation properties of the enzyme; thus, wobble base recognition in yeast appears to be more protected against mutational events than in E. coli, where only one contact is thought to occur at position 34. © 1993 Academic Press Limited.
引用
收藏
页码:965 / 974
页数:10
相关论文
共 45 条
[21]  
Kersten H, 1990, CHROMATOGRAPHY MOD B, pB69
[22]  
KIM SH, 1979, CRYSTAL STRUCTURE YE, P83
[23]   MOLSCRIPT - A PROGRAM TO PRODUCE BOTH DETAILED AND SCHEMATIC PLOTS OF PROTEIN STRUCTURES [J].
KRAULIS, PJ .
JOURNAL OF APPLIED CRYSTALLOGRAPHY, 1991, 24 :946-950
[24]   CHARACTERIZATION OF THE LEAD(II)-INDUCED CLEAVAGES IN TRANSFER-RNAS IN SOLUTION AND EFFECT OF THE Y-BASE REMOVAL IN YEAST TRANSFER RNAPHE [J].
KRZYZOSIAK, WJ ;
MARCINIEC, T ;
WIEWIOROWSKI, M ;
ROMBY, P ;
EBEL, JP ;
GIEGE, R .
BIOCHEMISTRY, 1988, 27 (15) :5771-5777
[26]   THE DEAZAGUANINE-DERIVATIVE, QUEUINE, AFFECTS CELL-PROLIFERATION, PROTEIN-PHOSPHORYLATION AND THE EXPRESSION OF THE PROTO ONCOGENES C-FOS AND C-MYC IN HELA-CELLS [J].
LANGGUT, W ;
KERSTEN, H .
FEBS LETTERS, 1990, 265 (1-2) :33-36
[27]  
Maniatis T., 1982, MOL CLONING
[28]   INVOLVEMENT OF THE SIZE AND SEQUENCE OF THE ANTICODON LOOP IN TRANSFER-RNA RECOGNITION BY MAMMALIAN AND ESCHERICHIA-COLI METHIONYL-TRANSFER-RNA SYNTHETASES [J].
MEINNEL, T ;
MECHULAM, Y ;
FAYAT, G ;
BLANQUET, S .
NUCLEIC ACIDS RESEARCH, 1992, 20 (18) :4741-4746
[29]   CODON AND AMINO-ACID SPECIFICITIES OF A TRANSFER-RNA ARE BOTH CONVERTED BY A SINGLE POST-TRANSCRIPTIONAL MODIFICATION [J].
MURAMATSU, T ;
NISHIKAWA, K ;
NEMOTO, F ;
KUCHINO, Y ;
NISHIMURA, S ;
MIYAZAWA, T ;
YOKOYAMA, S .
NATURE, 1988, 336 (6195) :179-181
[30]  
NISHIMURA S, 1987, METHOD ENZYMOL, V155, P373