Amino Acid Control over Deoxyribonucleic Acid Synthesis in Escherichia coli Infected With T-Even Bacteriophage

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Published inJournal of Bacteriology Vol. 102; no. 3; pp. 616 - 627
Main Author Donini, Pierluigi
Format Journal Article
LanguageEnglish
Published United States American Society for Microbiology 01.06.1970
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Online AccessGet full text
ISSN0021-9193
1067-8832
1098-5530
DOI10.1128/jb.102.3.616-627.1970

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Starvation for a required amino acid of normal or RC(str)Escherichia coli infected with T-even phages arrests further synthesis of phage deoxyribonucleic acid (DNA). This amino acid control over phage DNA synthesis does not occur in RC(rel)E. coli mutants. Heat inactivation of a temperature-sensitive aminoacyl-transfer ribonucleic acid (RNA) synthetase similarly causes an arrest of phage DNA synthesis in infected cells of RC(str) phenotype but not in cells of RC(rel) phenotype. Inhibition of phage DNA synthesis in amino acid-starved RC(str) host cells can be reversed by addition of chloramphenicol to the culture. Thus, the general features of amino acid control over T-even phage DNA synthesis are entirely analogous to those known for amino acid control over net RNA synthesis of uninfected bacteria. This analogy shows that the bacterial rel locus controls a wider range of macromolecular syntheses than had been previously thought.
Starvation for a required amino acid of normal or RC str Escherichia coli infected with T-even phages arrests further synthesis of phage deoxyribonucleic acid (DNA). This amino acid control over phage DNA synthesis does not occur in RC rel E. coli mutants. Heat inactivation of a temperature-sensitive aminoacyl-transfer ribonucleic acid (RNA) synthetase similarly causes an arrest of phage DNA synthesis in infected cells of RC str phenotype but not in cells of RC rel phenotype. Inhibition of phage DNA synthesis in amino acid-starved RC str host cells can be reversed by addition of chloramphenicol to the culture. Thus, the general features of amino acid control over T-even phage DNA synthesis are entirely analogous to those known for amino acid control over net RNA synthesis of uninfected bacteria. This analogy shows that the bacterial rel locus controls a wider range of macromolecular syntheses than had been previously thought.
Starvation for a required amino acid of normal or RC(str)Escherichia coli infected with T-even phages arrests further synthesis of phage deoxyribonucleic acid (DNA). This amino acid control over phage DNA synthesis does not occur in RC(rel)E. coli mutants. Heat inactivation of a temperature-sensitive aminoacyl-transfer ribonucleic acid (RNA) synthetase similarly causes an arrest of phage DNA synthesis in infected cells of RC(str) phenotype but not in cells of RC(rel) phenotype. Inhibition of phage DNA synthesis in amino acid-starved RC(str) host cells can be reversed by addition of chloramphenicol to the culture. Thus, the general features of amino acid control over T-even phage DNA synthesis are entirely analogous to those known for amino acid control over net RNA synthesis of uninfected bacteria. This analogy shows that the bacterial rel locus controls a wider range of macromolecular syntheses than had been previously thought.Starvation for a required amino acid of normal or RC(str)Escherichia coli infected with T-even phages arrests further synthesis of phage deoxyribonucleic acid (DNA). This amino acid control over phage DNA synthesis does not occur in RC(rel)E. coli mutants. Heat inactivation of a temperature-sensitive aminoacyl-transfer ribonucleic acid (RNA) synthetase similarly causes an arrest of phage DNA synthesis in infected cells of RC(str) phenotype but not in cells of RC(rel) phenotype. Inhibition of phage DNA synthesis in amino acid-starved RC(str) host cells can be reversed by addition of chloramphenicol to the culture. Thus, the general features of amino acid control over T-even phage DNA synthesis are entirely analogous to those known for amino acid control over net RNA synthesis of uninfected bacteria. This analogy shows that the bacterial rel locus controls a wider range of macromolecular syntheses than had been previously thought.
Author Pierluigi Donini
AuthorAffiliation Virus Laboratory, University of California, Berkeley, California 94720, and International Laboratory of Genetics and Biophysics, Naples, Italy
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  surname: Donini
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Starvation for a required amino acid of normal or RC str Escherichia coli infected with T-even phages arrests further synthesis of phage deoxyribonucleic acid...
Starvation for a required amino acid of normal or RC(str)Escherichia coli infected with T-even phages arrests further synthesis of phage deoxyribonucleic acid...
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StartPage 616
SubjectTerms Amino Acids - metabolism
Bacterial Proteins - biosynthesis
Carbon Isotopes
Centrifugation, Density Gradient
Cesium
Chloramphenicol - pharmacology
Chlorides
Coliphages - metabolism
Culture Media
DNA, Bacterial - biosynthesis
DNA, Viral - biosynthesis
Escherichia coli - enzymology
Escherichia coli - metabolism
Genetics and Molecular Biology
Genetics, Microbial
Ligases - metabolism
Mutation
Phenotype
Proline - metabolism
Thymidine - metabolism
Thymine - metabolism
Transduction, Genetic
Tritium
Uracil - metabolism
Uridine - metabolism
Title Amino Acid Control over Deoxyribonucleic Acid Synthesis in Escherichia coli Infected With T-Even Bacteriophage
URI http://jb.asm.org/content/102/3/616.abstract
https://www.ncbi.nlm.nih.gov/pubmed/4914067
https://www.proquest.com/docview/84637979
https://pubmed.ncbi.nlm.nih.gov/PMC247603
Volume 102
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