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PMID: 4616226 Published · ppublish English Journal Article

Enzymatic methylations: III. Cadaverine-induced conformational changes of E. coli tRNA fMet as evidenced by the availability of a specific adenosine and a specific cytidine residue for methylation.

Nucleic acids research ·Vol. 1 ·No. 9 ·1974-09-00 ·Pages 1165-82

Wildenauer D, Gross HJ, Riesner D

Abstract

A partially purified tRNA methylase fraction from rat liver, containing m(2)G- m(1)A- and m(5)C-methylase, was used to study the influence of Mg(++) and of the biogenic polyamine cadaverine on the enzymatic methylation of E.coli tRNA(fMet)in vitro. In presence of 1 or 10 mM Mg(++), guanosine no. 27 was methylated to m(2)G. In 1 mM Mg(++) plus 30 mM cadaverine, guanosine in position 27 and adenosine in position 59 were methylated. In presence of 30 mM cadaverine alone tRNA(fMet) accepted three methyl groups: in addition to guanosine no. 27 and adenosine no. 59 cytidine no. 49 was methylated. In order to correlate tRNA(fMet) tertiary structure changes with the methylation patterns, differentiated melting curves of tRNA(fMet) were measured under the methylation conditions. It was shown that the thermodynamic stability of tRNA(fMet) tertiary structure is different in presence of Mg(++), or Mg(++) plus cadaverine, or cadaverine alone. From the differentiated melting curves and from the methylation experiments one can conclude that at 37 degrees in the presence of Mg(++) tRNA(fMet) has a compact structure with the extra loop and the TpsiC-loop protected by tertiary structure interactions. In Mg(++) plus cadaverine, the TpsiC-loop is available, while the extra loop is yet engaged in teritary structure (G-15: C-49) interactions. In cadaverine alone, the TpsiC-loop and the extra loop are free; hence under these conditions the open tRNA(fMet) clover leaf may be the substrate for methylation. In general, cadaverine destabilizes tRNA tertiary structure in the presence of Mg(++), and stabilizes tRNA(fMet) tertiary structure in the absence of Mg(++). This may be explained by a competition of cadaverine with Mg(++) for specific binding sites on the tRNA. On the basis of these experiments a possible role of biogenic polyamines in vivo may be discussed: as essential components of procaryotic and eucaryotic ribosomes they may together with ribosomal factors facilitate tRNA-ribosome binding during protein biosynthesis by opening the tRNA tertiary structure, thus making the tRNA's TpsiC-loop available for interaction with the complementary sequence of the ribosomal 5S RNA.

MeSH Terms
Adenosine/metabolism Animals Cadaverine/pharmacology Cytidine/metabolism Diamines/pharmacology Escherichia coli/drug effects,metabolism Hot Temperature Liver/enzymology Magnesium/pharmacology Methylation Nucleic Acid Conformation Nucleic Acid Denaturation RNA, Bacterial/metabolism RNA, Transfer/metabolism Rats tRNA Methyltransferases/metabolism
Chemicals
Diamines RNA, Bacterial Cytidine RNA, Transfer tRNA Methyltransferases Magnesium Adenosine Cadaverine
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Wildenauer D
Gross H J
Riesner D
References (50)
50 references, click to expand
  1. Stimulation of soluble ribonucleic acid methylase activity by polyamines.
    Biochemistry. 1970 Mar 31;9(7):1577-84 PMID: 4985261
  2. Specificity of transfer ribonucleic acid methylases from normal mouse colon and 1,2-dimethylhydrazine-induced colon tumours.
    Biochem J. 1972 Sep;129(3):40P PMID: 4658973
  3. On the mRNA induced conformational change of AA-tRNA exposing the T-pse-C-G sequence for binding to the 50S ribosomal subunit.
    Biochem Biophys Res Commun. 1974 Feb 4;56(3):807-14 PMID: 4826879
  4. Primary structure of a mouse myeloma cell initiator transfer RNA.
    Nature. 1974 Feb 22;247(5442):516-8 PMID: 4818551
  5. Transfer RNA methylase activity and polyamine concentrations in regenerating rat liver.
    Biochim Biophys Acta. 1973 Sep 28;324(1):69-71 PMID: 4752294
  6. The effects of diamines and polyamines on enzymic methylation of nucleic acid.
    Biochim Biophys Acta. 1971 Apr 8;232(4):630-42 PMID: 4933881
  7. Conformational changes of transfer ribonucleic acid. Relaxation kinetics of the early melting transition of methionine transfer ribonucleic acid (Escherichia coli).
    Biochemistry. 1972 Nov 7;11(23):4368-74 PMID: 4562591
  8. Polyamines and ribosome structure.
    J Biol Chem. 1960 Jul;235:2112-6 PMID: 13811014
  9. Detailed molecular model for transfer ribonucleic acid.
    Nature. 1969 Nov 22;224(5221):759-63 PMID: 5361649
  10. Selective reaction of methoxyamine with cytosine bases in tyrosine transfer ribonucleic acid.
    J Mol Biol. 1971 Jul 28;59(2):359-73 PMID: 4935788
  11. Influence of polyamines and salts on changing patterns of tRNA methylation.
    FEBS Lett. 1971 Aug 1;16(2):117-120 PMID: 11945917
  12. Acceptor activity of hypermethylated E. coli tRNAf-Met.
    Nucleic Acids Res. 1974 Feb;1(2):235-43 PMID: 4606167
  13. Desalting of nucleotides by gel filtration.
    Biochim Biophys Acta. 1965 Jul 15;103(3):539-41 PMID: 5853501
  14. The nucleotide sequence of N-formyl-methionyl-transfer RNA. Partial digestion with pancreatic and T-1 ribonuclease and derivation of the total primary structure.
    Eur J Biochem. 1969 Mar;8(2):256-62 PMID: 4889178
  15. Effect of polyamines on the binding of dihydrostreptomycin and N-acetylphenylalanyl-tRNA to ribosomes from Escherichia coli.
    Eur J Biochem. 1973 Dec 17;40(2):423-9 PMID: 4131255
  16. The involvement of 5S RNA in the binding of tRNA to ribosomes.
    Biochem Biophys Res Commun. 1973 Oct 1;54(3):942-8 PMID: 4584885
  17. Three-dimensional structure of yeast phenylalanine transfer RNA: folding of the polynucleotide chain.
    Science. 1973 Jan 19;179(4070):285-8 PMID: 4566654
  18. A method for the determination of nucleotide sequence in polyribonucleotides.
    Biochem J. 1954 Nov;58(3):390-6 PMID: 13208627
  19. In vitro methylation of yeast serine transfer ribonucleic acid.
    Biochemistry. 1970 Mar 31;9(7):1645-9 PMID: 5461692
  20. The effect of polyamines on the methylation of Escherichia coli methyl-deficient transfer RNA by their homologous methylases.
    Biochim Biophys Acta. 1971 May 27;238(3):447-63 PMID: 4935694
  21. Nucleotide sequence specificities of guanylate residue-specific tRNA methylases from rat liver.
    Biochem Biophys Res Commun. 1970 Jul 27;40(2):306-13 PMID: 4919960
  22. Polyamines and protein synthesis. IV. Stimulation of aminoacyl transfer RNA formation by polyamines.
    Biochem Biophys Res Commun. 1969 Dec 4;37(6):917-24 PMID: 5361161
  23. Purification of methionine-, valine-, phenylalanine- and tyrosine-specific tRNA from Escherichia coli.
    Biochim Biophys Acta. 1967 Jun 20;142(1):133-48 PMID: 4860476
  24. Fragmented E. coli methionine tRNA f as methyl acceptor for rat liver tRNA methylase: alteration of the site of methylation by the conformational change of tRNA structure resulting from fragmentation.
    Biochem Biophys Res Commun. 1971 May 7;43(3):476-83 PMID: 4935191
  25. The binding of ethidium bromide to different conformations of tRNA. Unfolding of tertiary structure.
    Eur J Biochem. 1973 Mar 15;33(3):511-6 PMID: 4571499
  26. Binding of putrescine and spermidine to ribosomes from Escherichia coli.
    Eur J Biochem. 1973 Mar 15;33(3):467-74 PMID: 4571497
  27. Recognition of tRNA by the ribosome. A possible role of 5 S RNA.
    FEBS Lett. 1973 Oct 1;36(1):39-42 PMID: 4583787
  28. The nucleotide sequence of N-formyl-methionyl-transfer RNA. Products of complete digestion with ribonuclease T-1 and pancreatic ribonuclease and derivation of their sequences.
    Eur J Biochem. 1969 Mar;8(2):244-55 PMID: 4305538
  29. Complementary oligonucleotide binding to the anticodon loop of fMet-transfer RNA.
    Nature. 1970 Feb 7;225(5232):508-10 PMID: 5411856
  30. Three-dimensional structure of tRNA.
    Prog Nucleic Acid Res Mol Biol. 1971;11:391-421 PMID: 4339145
  31. Analysis of purified tRNA species by polyacrylamide gel electrophoresis.
    Anal Biochem. 1971 Dec;44(2):345-57 PMID: 5002189
  32. Polyamines and protein synthesis. VI. Role of spermine in aminoacyl-tRNA formation.
    Biochim Biophys Acta. 1970 Jul 16;213(1):240-3 PMID: 4922964
  33. The function of pseudouridylic acid in transfer ribonucleic acid. II. Inhibition of amino acyl transfer ribonucleic acid-ribosome complex formation by ribothymidylyl-pseudouridylyl-cytidylyl-guanosine 3'-phosphate.
    J Biol Chem. 1969 Nov 25;244(22):6241-53 PMID: 4900513
  34. Three-dimensional structure of yeast phenylalanine transfer RNA at 3.0angstroms resolution.
    Nature. 1974 Mar 1;248(5443):20-4 PMID: 4594440
  35. Studies on DNA-dependent RNA polymerase from Escherichia coli. 1. The mechanism of polyamine induced stimulation of enzyme activity.
    Eur J Biochem. 1968 Jun;5(1):143-6 PMID: 4873311
  36. Nucleotide sequence of N-formyl-methionyl-transfer RNA.
    Nature. 1968 Apr 20;218(5138):232-3 PMID: 4869713
  37. A study of tRNA methylase action.
    FEBS Lett. 1973 Jan 15;29(2):132-4 PMID: 4352504
  38. Enzymatic methylations. II. In vitro inhibition of tRNA and protein methylation by nicotinamide and isonicotinic acid hydrazide: activation of a s-adenosylmethionine-splitting enzyme in rat liver.
    Biochem Biophys Res Commun. 1972 Jul 11;48(1):58-64 PMID: 4261254
  39. Preparation and characterization of fragments from yeast tRNA phe .
    Eur J Biochem. 1972 Mar 15;26(1):132-43 PMID: 4339645
  40. Nucleotide sequence of rabbit liver and sheep mammary gland cytoplasmic initiatory transfer RNAs.
    Nature. 1974 Feb 22;247(5442):518-20 PMID: 4818552
  41. Effects of T psi CG on the enzymatic binding of eukaryotic and prokaryotic initiator tRNAs to rat liver ribosomes.
    FEBS Lett. 1974 May 15;42(1):15-7 PMID: 4604411
  42. Recovery of transfer RNA functions by combining fragmented Escherichia coli formylmethionine transfer RNA.
    Biochim Biophys Acta. 1969 Oct 22;190(2):285-303 PMID: 4900575
  43. Enzymatic methylations. I. Isonicotinic acid hydrazide: an inhibitor of tRNA and protein methylation.
    Biochem Biophys Res Commun. 1972 Jun 9;47(5):1215-20 PMID: 4555252
  44. The polyamine content of the tRNA of E. coli.
    Proc Natl Acad Sci U S A. 1969 Oct;64(2):669-76 PMID: 4901705
  45. The separation of soluble ribonucleic acids on benzoylated diethylaminoethylcellulose.
    Biochemistry. 1967 Oct;6(10):3043-56 PMID: 6056973
  46. Separation and comparison of primary structures of three formylmethionine tRNAs from E. coli K-12 MO.
    Biochem Biophys Res Commun. 1973 Nov 16;55(2):320-7 PMID: 4358398
  47. The Chemical Constitution of Spermine: Structure and Synthesis.
    Biochem J. 1926;20(5):1082-94 PMID: 16743746
  48. [Investigations on the biosynthesis of proteins. III. Contribution to the knowledge of the composition and structure of ribonucleoprotein particles].
    Hoppe Seylers Z Physiol Chem. 1959;317:131-43 PMID: 13847498
  49. FURTHER STUDIES ON THE ALKYLATION OF NUCLEIC ACIDS AND THEIR CONSTITUENT NUCLEOTIDES.
    Biochem J. 1963 Oct;89:127-38 PMID: 14097355
  50. The conformational transitions in yeast tRNAPhe as studied with tRNAPhe fragments.
    Eur J Biochem. 1973 Jul 2;36(1):76-88 PMID: 4581822
Article Info
Journal
Nucleic acids research
Abbr.
Nucleic Acids Res
ISSN
0305-1048
Published
1974-09-00
Pages
1165-82
Language
English
Region
England
NLM ID
0411011
PMCID
PMC344338
Subset
IM
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