Effects of nucleotide substitutions within the T-loop of precursor tRNAs on interaction with ATP/CTP:tRNA nucleotidyltransferases from Escherichia coli and yeast

被引:13
作者
Li, ZL [1 ]
Gillis, KA [1 ]
Hegg, LA [1 ]
Zhang, JC [1 ]
Thurlow, DL [1 ]
机构
[1] CLARK UNIV,DEPT CHEM,WORCESTER,MA 01610
关键词
D O I
10.1042/bj3140049
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
Recognition of tRNA and tRNA-like substrates by the enzyme ATP/CTP:tRNA nucleotidyltransferase requires chemically intact nucleotides within the T-loop, especially at positions 57 and 58, which are invariant purines among naturally occurring tRNAs. To test the effects of base substitutions at these positions, which are distant from the site of catalysis, we synthesized mutant tRNA(Glu) molecules. These in vitro-synthesized RNAs also contained an extra 33 bases at the 5' end and lacked posttranscriptionally modified bases. The precursor tRNAs were used as substrates for nucleotidyltransferases from Escherichia coli and yeast. Substitution of cytidines at either position 57 or 58 had dramatic inhibitory effects on recognition by both enzymes, including raising the apparent K-m and lowering the apparent V-max.; substitution of an adenosine at position 57 or a uridine at position 58 inhibited the reaction only slightly by comparison. Our results demonstrate that the identities of nucleotides al positions 57 and 58 are relevant to recognition by nucleotidyltransferase, and that a purine is required at position 57. The extra bases at the 5' end and the lack of posttranscriptionally modified bases did not substantially inhibit interaction with the enzyme, as judged by the wild-type precursor tRNA(Glu) acting as an effective substrate for both enzymes in the presence of equal concentrations of appropriate tRNA substrates isolated from E. coli.
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页码:49 / 53
页数:5
相关论文
共 19 条
[1]  
Ausubel F.M., 1990, SHORT PROTOCOLS MOL, V4th ed.
[2]  
Deutscher M P, 1990, Prog Nucleic Acid Res Mol Biol, V39, P209, DOI 10.1016/S0079-6603(08)60628-5
[3]  
Deutscher M. P., 1982, Enzymes, V15, P183, DOI [10.1016/S1874-6047(08)60279-6, DOI 10.1016/S1874-6047(08)60279-6]
[4]   TRANSFER-RNA NUCLEOTIDYLTRANSFERASE REPAIRS ALL TRANSFER-RNAS RANDOMLY [J].
DEUTSCHER, MP ;
EVANS, JA .
JOURNAL OF MOLECULAR BIOLOGY, 1977, 109 (04) :593-597
[5]  
DEUTSCHER MP, 1990, METHOD ENZYMOL, V181, P434
[6]   TRANSFER-RNA STRUCTURE AND AMINOACYLATION EFFICIENCY [J].
GIEGE, R ;
PUGLISI, JD ;
FLORENTZ, C .
PROGRESS IN NUCLEIC ACID RESEARCH AND MOLECULAR BIOLOGY, VOL 45, 1993, 45 :129-206
[7]  
GILLIS K, 1993, THESIS CLARK U WORCE
[8]  
HEGG L, 1991, THESIS CLARK U WORCE
[9]   CYTIDINES IN TRANSFER-RNAS THAT ARE REQUIRED INTACT BY ATP CTP - TRANSFER-RNA NUCLEOTIDYLTRANSFERASES FROM ESCHERICHIA-COLI AND SACCHAROMYCES-CEREVISIAE [J].
HEGG, LA ;
THURLOW, DL .
NUCLEIC ACIDS RESEARCH, 1990, 18 (20) :5975-5979
[10]   EXPRESSION OF RIBOSOMAL-RNA AND TRANSFER-RNA GENES IN ESCHERICHIA-COLI - EVIDENCE FOR FEEDBACK-REGULATION BY PRODUCTS OF RIBOSOMAL-RNA OPERONS [J].
JINKSROBERTSON, S ;
GOURSE, RL ;
NOMURA, M .
CELL, 1983, 33 (03) :865-876