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PMID: 768519 Published · ppublish English Journal Article Research Support, U.S. Gov't, P.H.S.

Identification and preliminary characterization of a mutant defective in the bacteriophage T4-induced unfolding of the Escherichia coli nucleoid.

Journal of virology ·Vol. 17 ·No. 2 ·1976-02-00 ·Pages 622-41

Snustad DP, Tigges MA, Parson KA, Bursch CJ, Caron FM, Koerner JF, Tutas DJ

Abstract

The nucleoids of Escherichia coli S/6/5 cells are rapidly unfolded at about 3 min after infection with wild-type T4 bacteriophage or with nuclear disruption deficient, host DNA degradation-deficient multiple mutants of phage T4. Unfolding does not occur after infection with T4 phage ghosts. Experiments using chloramphenicol to inhibit protein synthesis indicate that the T4-induced unfolding of the E. coli chromosomes is dependent on the presence of one or more protein synthesized between 2 and 3 min after infection. A mutant of phage T4 has been isolated which fails to induce this early unfolding of the host nucleoids. This mutant has been termed "unfoldase deficient" (unf-) despite the fact that the function of the gene product defective in this strain is not yet known. Mapping experiments indicate that the unf- mutation is located near gene 63 between genes 31 and 63. The folded genomes of E. coli S/6/5 cells remain essentially intact (2,000-3,000S) at 5 min after infection with unfoldase-, nuclear disruption-, and host DNA degradation-deficient T4 phage. Nuclear disruption occurs normally after infection with unfoldase- and host DNA degradation-deficient but nuclear disruption-proficient (ndd+), T4 phage. The host chromosomes remain partially folded (1,200-1,800S) at 5 min after infection with the unfoldase single mutant unf39 x 5 or an unfoldase- and host DNA degradation-deficient, but nuclear disruption-proficient, T4 strain. The presence of the unfoldase mutation causes a slight delay in host DNA degradation in the presence of nuclear disruption but has no effect on the rate of host DNA degradation in the absence of nuclear disruption. Its presence in nuclear disruption- and host DNA degradation-deficient multiple mutants does not alter the shutoff to host DNA or protein synthesis.

MeSH Terms
Adsorption Cell Nucleus/metabolism Chloramphenicol/pharmacology Chromosome Mapping Coliphages/enzymology,growth & development,metabolism DNA Viruses DNA, Bacterial/metabolism Escherichia coli/metabolism Genes Viral Proteins/biosynthesis Virus Replication
Chemicals
DNA, Bacterial Viral Proteins Chloramphenicol
Authors & Affiliations
7 authors, click to expand affiliations / ORCID
Snustad D P
Tigges M A
Parson K A
Bursch C J
Caron F M
Koerner J F
Tutas D J
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48 references, click to expand
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Article Info
Journal
Journal of virology
Abbr.
J Virol
ISSN
0022-538X
Published
1976-02-00
Pages
622-41
Language
English
Region
United States
NLM ID
0113724
PMCID
PMC515453
Subset
IM
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