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PMID: 796671 Published · ppublish English Journal Article

Suppression of temperature-sensitive aminoacyl-tRNA synthetase mutations by ribosomal mutations: a possible mechanism.

Molecular & general genetics : MGG ·Vol. 149 ·No. 1 ·1976-11-24 ·Pages 51-61

Buckel P, Piepersberg W, Böck A

Abstract

The biochemical basis of suppression of a temperature-sensitive alanyl-tRNA synthetase (alaS) mutation by mutational alterations of the ribosome has been investigated. Measurement of the polyU-dependent polyphenylalanine synthesis showed that ribosomes from the suppressor strains are less active than ribosomes from the unsuppressed aminoacyl-tRNA synthetase mutant. In this system no increased translational ambiguity could be detected for the suppressor ribosomes. This fact and also the findings that the ram-1 mutation is not able to suppress the aminoacyl-tRNA synthetase mutation and that presence of the suppressor allele is not accompanied by a measureably improved alanyl-tRNA synthetase activity argue against the possibility that suppression might be due to increased translational misreading rates of the alanyl-tRNA synthetase mRNA. It has been further found that partial suppression of temperature sensitive growth of the alaS mutation can be achieved by independent ribosomal mutations leading to reduced growth rates because of a mutation to antibiotic resistance. Addition of low concentrations of a variety of antibiotics acting at the ribosomal level can also partially revert the temperature-sensitive phenotype of the alaS mutant. Although the possibility cannot be excluded that suppression is due to the stabilisation or activation of the mutant enzyme by some indirect effect of the suppressor ribosomal mutations, the following working hypothesis is favoured at the moment: It is assumed that limitation of the aminoacyl-tRNA synthetase activity in a certain range of the restrictive temperature causes growth inhibition by the premature termination of polypeptide synthesis at the ribosome or by the unbalanced synthesis of the individual cellular proteins under this condition. The mechanism of suppression by ribosomal mutations is proposed to consist of the release of this growth inhibition by the reduction of the rate of polypeptide synthesis, which would keep amino acid incorporation from exceeding the slow charging of tRNA and thus exhausting the pool of charged tRNA. In the suppressor strains, therefore, growth at the semi-restrictive temperature is no longer limited by the aminoacylation of tRNA but by the translational process at the mutated ribosome. This influence of the ribosomal mutation on the speed of translation could be directly or indirectly coupled with an effect on translational fidelity resulting in the prevention of the binding of uncharged or non-cognate charged tRNA or in the tighter binding of peptidyl-tRNA when cognate aminoacyl-tRNA is limiting.

MeSH Terms
Alanine-tRNA Ligase/metabolism Amino Acyl-tRNA Synthetases/metabolism Chloramphenicol/pharmacology Enzyme Repression Escherichia coli/enzymology Genes Mutation Peptide Chain Termination, Translational Protein Biosynthesis Ribosomal Proteins/biosynthesis Suppression, Genetic Temperature Valine-tRNA Ligase/metabolism
Chemicals
Ribosomal Proteins Chloramphenicol Amino Acyl-tRNA Synthetases Alanine-tRNA Ligase Valine-tRNA Ligase
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Buckel P
Piepersberg W
Böck A
References (36)
36 references, click to expand
  1. Effect of chloramphenicol and starvation for an essential amino acid on polypeptide and polyribonucleotide synthesis in Escherichia coli infected with bacteriophage T4.
    Arch Biochem Biophys. 1975 Aug;169(2):406-14 PMID: 1101828
  2. A ribosomal ambiguity mutation.
    J Mol Biol. 1969 Jan 14;39(1):95-112 PMID: 4938819
  3. RNA overproducing revertants of an alanyl-tRNA synthetase mutant of Escherichia coli.
    Mol Gen Genet. 1972;119(4):323-35 PMID: 4567806
  4. Two compounds implicated in the function of the RC gene of Escherichia coli.
    Nature. 1969 Mar 1;221(5183):838-41 PMID: 4885263
  5. Mutation affecting the charging reaction of alanyl-tRNA synthetase from Escherichia coli K 10.
    Arch Mikrobiol. 1969 Oct;68(2):165-78 PMID: 4904034
  6. Codon specific, tRNA dependent in vitro synthesis of ppGpp and pppGpp.
    Nat New Biol. 1973 May 2;243(122):13-5 PMID: 17319071
  7. Effect of different mutations in ribosomal protein S5 of Escherichia coli on translational fidelity.
    Mol Gen Genet. 1975 Sep 29;140(2):91-100 PMID: 1105158
  8. Factor-free ("non-enzymic") and factor-dependent systems of translation of polyuridylic acid by Escherichia coli ribosomes.
    J Mol Biol. 1976 Mar 15;101(4):537-52 PMID: 772221
  9. Defective translation in RC - cells.
    Nat New Biol. 1972 May 31;237(74):131-5 PMID: 4556374
  10. Metabolic regulation of the arginyl and valyl transfer ribonucleic acid synthetases in bacteria.
    J Biol Chem. 1974 Feb 25;249(4):1044-53 PMID: 4592258
  11. Substrate specificity of a mutant alanyl-transfer ribonucleic acid synthetase of Escherichia coli.
    J Bacteriol. 1971 Dec;108(3):1008-16 PMID: 4945179
  12. The control of ribonucleic acid synthesis in Escherichia coli. IV. Relevance of unusual phosphorylated compounds from amino acid-starved stringent strains.
    J Biol Chem. 1969 Jun 25;244(12):3133-41 PMID: 4893338
  13. Thermal death of temperature-sensitive lysyl- and tryptophanyl-transfer ribonucleic acid synthetase mutants of Bacillus subtilis: effect of culture medium and developmental stage.
    J Bacteriol. 1974 Nov;120(2):767-78 PMID: 4218233
  14. Unusual valyl-transfer ribonucleic acid synthetase mutant of Escherichia coli.
    J Bacteriol. 1972 Jan;109(1):307-14 PMID: 4550669
  15. Altered S5 and S20 ribosomal proteins in revertants of an alanyl-tRNA synthetase mutant of Escherichia coli.
    Mol Gen Genet. 1974;134(3):225-36 PMID: 4280505
  16. Histidyl-transfer ribonucleic acid synthetase mutants requiring a high internal pool of histidine for growth.
    J Bacteriol. 1973 Jul;115(1):188-97 PMID: 4352174
  17. Characterization of altered forms of glycyl transfer ribonucleic acid synthetase and the effects of such alterations on aminoacyl transfer ribonucleic acid synthesis in vivo.
    J Bacteriol. 1970 Apr;102(1):204-12 PMID: 4908672
  18. Restriction, de-restriction and mistranslation in missense suppression. Ribosomal discrimination of transfer RNA's.
    J Mol Biol. 1972 Feb 28;64(1):119-34 PMID: 4552481
  19. Ribonucleic acid regulation in amino acid-limited cultures of Escherichia coli grown in a chemostat.
    J Bacteriol. 1974 Dec;120(3):1322-30 PMID: 4612016
  20. Genetic analysis of an alteration of ribosomal protein S20 in revertants of an alanyl-tRNA-synthetase mutant of Escherichia coli.
    Mol Gen Genet. 1974;134(4):325-32 PMID: 4614080
  21. Alteration of ribosomal proteins in revertants of a valyl-tRNA synthetase mutant of Escherichia coli.
    Mol Gen Genet. 1975 Dec 9;141(4):317-29 PMID: 765730
  22. Effect of infection with T-even phage on the inducible synthesis of beta-glactosidase in Escherichia coli.
    J Mol Biol. 1967 Aug 14;27(3):453-68 PMID: 4860579
  23. Lysis of Escherichia coli with a neutral detergent.
    Biochim Biophys Acta. 1967 Dec 19;149(2):476-88 PMID: 4966087
  24. Electrophoretic and immunological studies on ribosomal proteins of 100 Escherichia coli revertants from streptomycin dependence.
    Mol Gen Genet. 1973 Dec 14;127(1):1-18 PMID: 4589343
  25. OSMOTIC-REMEDIAL MUTANTS. A NEW CLASSIFICATION FOR NUTRITIONAL MUTANTS IN YEAST.
    Genetics. 1964 Nov;50:829-39 PMID: 14239771
  26. Synthesis and breakdown of proteins in Escherichia coli during amino-acid starvation.
    J Mol Biol. 1971 Apr 14;57(1):35-57 PMID: 4930575
  27. Recalibrated linkage map of Escherichia coli K-12.
    Bacteriol Rev. 1976 Mar;40(1):116-67 PMID: 773363
  28. Ribosomal proteins. XXVII. Localization of the amino acid exchanges in protein S5 from two Escherichia coli mutants resistant to spectinomycin.
    Mol Gen Genet. 1972;114(2):106-11 PMID: 4553095
  29. Genetic position and amino acid replacements of several mutations in ribosomal protein S5 from Escherichia coli.
    Mol Gen Genet. 1975 Dec 30;143(1):43-52 PMID: 129673
  30. STREPTOMYCIN, SUPPRESSION, AND THE CODE.
    Proc Natl Acad Sci U S A. 1964 May;51:883-90 PMID: 14173007
  31. Alanyl-tRNA synthetase of Escherichia coli: genetic analysis of the structural gene and of suppressor mutations.
    Mol Gen Genet. 1974;134(4):313-23 PMID: 4614079
  32. Roles of amino acid activating enzymes in cellular physiology.
    Bacteriol Rev. 1966 Dec;30(4):701-19 PMID: 5342516
  33. Protein measurement with the Folin phenol reagent.
    J Biol Chem. 1951 Nov;193(1):265-75 PMID: 14907713
  34. Temperature-sensitive osmotic remedial mutants of Escherichia coli.
    J Bacteriol. 1972 Nov;112(2):661-5 PMID: 4563969
  35. The polypeptide chain growth rate in amino acid-starved Escherichia coli determined by a novel method.
    Biochim Biophys Acta. 1976 Jan 19;418(2):204-16 PMID: 764870
  36. Synthesis of guanosine tetra- and pentaphosphate requires the presence of a codon-specific, uncharged transfer ribonucleic acid in the acceptor site of ribosomes.
    Proc Natl Acad Sci U S A. 1973 May;70(5):1564-8 PMID: 4576025
Article Info
Journal
Molecular & general genetics : MGG
Abbr.
Mol Gen Genet
ISSN
0026-8925
Published
1976-11-24
Pages
51-61
Language
English
Region
Germany
NLM ID
0125036
Subset
IM
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