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PMID: 6338482 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Base substitutions in the wobble position of the anticodon inhibit aminoacylation of E. coli tRNAfMet by E. coli Met-tRNA synthetase.

Nucleic acids research ·Vol. 11 ·No. 5 ·1983-03-11 ·Pages 1439-55

Schulman LH, Pelka H, Susani M

Abstract

Derivatives of E. coli tRNAfMet containing single base substitutions at the wobble position of the anticodon have been enzymatically synthesized in vitro. The procedure involves excision of the normal anticodon, CAU, by limited digestion of intact tRNAfMet with RNase A. RNA ligase is then used to join each of four trinucleotides, NAU, to the 5' half molecule and to subsequently link the 3' and modified 5' fragments to regenerate the anticodon loop. Synthesis of intact tRNAfMet containing the anticodon CAU by this procedure yields a product which is indistinguishable from native tRNAfMet with respect to its ability to be aminoacylated by E. coli methionyl-tRNA synthetase. Substitution of any other nucleotide at the wobble position of tRNAfMet drastically impairs the ability of the synthetase to recognize the tRNA. Measurement of methionine acceptance in the presence of high concentrations of pure enzyme has established that the rate of aminoacylation of the AAU, GAU and UAU anticodon derivatives of tRNAfMet is four to five orders of magnitude slower than that of the native or synthesized tRNA containing C as the wobble base. In addition, the inactive tRNA derivatives fail to inhibit aminoacylation of normal tRNAfMet, indicating that they bind poorly to the enzyme. These results support a model involving direct interaction between Met-tRNA synthetase and the C in the wobble position during aminoacylation of tRNAfMet.

MeSH Terms
Amino Acyl-tRNA Synthetases/metabolism Anticodon/metabolism Base Sequence Escherichia coli/enzymology Methionine-tRNA Ligase/metabolism Nucleic Acid Conformation Oligoribonucleotides/chemical synthesis RNA Ligase (ATP)/metabolism RNA, Transfer/metabolism RNA, Transfer, Amino Acyl/metabolism RNA, Transfer, Met Structure-Activity Relationship
Chemicals
Anticodon Oligoribonucleotides RNA, Transfer, Amino Acyl RNA, Transfer, Met tRNA, formylmethionine- RNA, Transfer Amino Acyl-tRNA Synthetases Methionine-tRNA Ligase RNA Ligase (ATP)
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Schulman L H
Pelka H
Susani M
References (28)
28 references, click to expand
  1. Structure and function of E. coli formylmethionyl tRNA. I. Effect of modification of pyrimidine residues on aminoacyl synthetase recognition.
    Proc Natl Acad Sci U S A. 1970 Jun;66(2):507-14 PMID: 4917443
  2. Normal and mutant glycine transfer RNAs.
    Nat New Biol. 1971 Oct 27;233(43):274-7 PMID: 4941781
  3. Conversion of exposed cytidine residues to uridine residues in Escherichia coli formylmethionine transfer ribonucleic acid.
    J Biol Chem. 1972 Jun 25;247(12):3864-7 PMID: 4338231
  4. Purification and properties of bacteriophage T4-induced RNA ligase.
    Proc Natl Acad Sci U S A. 1972 Oct;69(10):3009-13 PMID: 4342972
  5. Loss of methionine acceptor activity resulting from a base change in the anticodon of Escherichia coli formylmethionine transfer ribonucleic acid.
    J Biol Chem. 1973 Feb 25;248(4):1341-5 PMID: 4568813
  6. Inactivation of valine acceptor ativity by a C-U missense change in the anticodon of yeast valine transfer ribonucleic acid.
    J Biol Chem. 1973 Aug 10;248(15):5549-51 PMID: 4588688
  7. UV shadowing--a new and convenient method for the location of ultraviolet-absorbing species in polyacrylamide gels.
    Anal Biochem. 1974 May;59(1):162-4 PMID: 4407732
  8. Structural requirements for recognition of Escherichia coli initiator and non-initiator transfer ribonucleic acids by bacterial T factor.
    J Biol Chem. 1974 Nov 25;249(22):7102-10 PMID: 4373457
  9. Alteration of the kinetic parameters for aminoacylation of Escherichia coli formylmethionine transfer RNA by modification of an anticodon base.
    J Biol Chem. 1977 Feb 10;252(3):814-9 PMID: 14133
  10. Role of anticodon bases in aminoacylation of Escherichia coli methionine transfer RNAs.
    J Biol Chem. 1977 Sep 25;252(18):6403-8 PMID: 330530
  11. Structural requirements for aminoacylation of Escherichia coli formylmethionine transfer RNA.
    Biochemistry. 1977 Sep 20;16(19):4256-65 PMID: 332227
  12. Bacteriophage T4 RNA ligase: preparation of a physically homogeneous, nuclease-free enzyme from hyperproducing infected cells.
    Nucleic Acids Res. 1977 Sep;4(9):3175-86 PMID: 333400
  13. Polynucleotide kinase from a T4 mutant which lacks the 3' phosphatase activity.
    Nucleic Acids Res. 1978 Mar;5(3):825-33 PMID: 205838
  14. Enzymatic oligoribonucleotide synthesis with T4 RNA ligase.
    Biochemistry. 1978 May 30;17(11):2069-76 PMID: 667012
  15. The purification of nuclease-free T4-RNA ligase.
    Biochim Biophys Acta. 1979 Mar 28;562(1):149-61 PMID: 219895
  16. Use of in vitro 32P labeling in the sequence analysis of nonradioactive tRNAs.
    Methods Enzymol. 1979;59:58-109 PMID: 220499
  17. Specific labeling of 3' termini of RNA with T4 RNA ligase.
    Methods Enzymol. 1980;65(1):65-74 PMID: 6154874
  18. Joining of yeast alanine transfer ribonucleic acid half molecules to form a whole molecule by T4 RNA ligase.
    Biochim Biophys Acta. 1981 Jan 29;652(1):82-9 PMID: 6260188
  19. Total synthesis of a RNA molecule with sequence identical to that of Escherichia coli formylmethionine tRNA.
    Proc Natl Acad Sci U S A. 1981 Sep;78(9):5493-7 PMID: 7029537
  20. Enzymatic replacement of the anticodon of yeast phenylalanine transfer ribonucleic acid.
    Biochemistry. 1982 Mar 2;21(5):855-61 PMID: 7041969
  21. Reversal of T4 RNA ligase.
    Biochemistry. 1982 Apr 13;21(8):1858-64 PMID: 7082652
  22. Role of the constant uridine in binding of yeast tRNAPhe anticodon arm to 30S ribosomes.
    Nucleic Acids Res. 1982 Jun 11;10(11):3341-52 PMID: 7048255
  23. A structurally modified yeast tRNAPhe with six nucleotides in the anticodon loop lacks significant phenylalanine acceptance.
    J Biol Chem. 1982 Sep 25;257(18):10536-9 PMID: 7050115
  24. Enzymatic replacement in vitro of the first anticodon base of yeast tRNAAsp: application to the study of tRNA maturation in vivo, after microinjection into frog oocytes.
    Nucleic Acids Res. 1982 Jun 25;10(12):3715-32 PMID: 6287419
  25. Specific interaction of anticodon loop residues with yeast phenylalanyl-tRNA synthetase.
    Biochemistry. 1982 Aug 17;21(17):3921-6 PMID: 6751381
  26. Rapid ion-exchange chromatographic microanalysis of ultraviolet-absorbing materials and its application to nucleosides.
    Anal Biochem. 1968 Oct 24;25(1):77-98 PMID: 5704775
  27. Enzymatic synthesis of a 21-nucleotide coat protein binding fragment of R17 ribonucleic acid.
    Biochemistry. 1982 Sep 14;21(19):4713-20 PMID: 6897195
  28. SYNTHESIS OF BLOCK OLIGONUCLEOTIDES.
    Science. 1965 Mar 12;147(3663):1310-1 PMID: 14250329
Article Info
Journal
Nucleic acids research
Abbr.
Nucleic Acids Res
ISSN
0305-1048
Published
1983-03-11
Pages
1439-55
Language
English
Region
England
NLM ID
0411011
PMCID
PMC325807
Subset
IM
Grants
NCI NIH HHS · P30 CA1 333 0-10 · United States
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