Abstract
An investigation into the metabolic requirements for maturation of gene 49-defective heads indicated that adenosine triphosphate energy and continued deoxyribonucleic acid (DNA) but not ribonucleic acid synthesis were needed. The fate of DNA present at restrictive temperatures (41.5 C) in tsC9 (gene 49)-infected cells was also examined. After lysis of infected cells, the 12 to 32% deoxyribonuclease-resistant DNA associated with isolated gene 49-defective heads was found to be attached to a deoxyribonuclease-sensitive complex associated with the debris. Pulsechase experiments where (3)H-thymidine was used to label the DNA at 41.5 C suggested that more DNA from this pool was present in phage recovered after rescue of the gene 49 function than could be accounted for by the deoxyribonuclease-resistant portion. Further, when these experiments were repeated with an additional density shift ((15)N(13)C-glucose to (14)N(12)C-glucose), the DNA extracted from phage rescued at 10 min after the temperature shift-down was found to be 90% conserved. These results suggest a model whereby DNA packaging into capsid precursors is separated from DNA replication and the energy from DNA synthesis provides the driving force for packaging. Pulse-chase, temperature-shift experiments with E920g (gene 66) or E920g;tsC9 mutant-infected cells showed that gene (49, 66)-defective heads, which were isolated as small, isometric-shaped unfilled heads, were a precursor to "petite" phage. This suggests that the maturation process is independent of the size and shape of the head membrane. Similar experiments with the double mutant tsC9;amN120 indicate that gene 49-defective heads can also be filled in the absence of tails.
MeSH Terms
Adenosine Triphosphate/metabolism
Carbon Isotopes
Centrifugation, Density Gradient
Centrifugation, Zonal
Coliphages/growth & development,isolation & purification
DNA Replication
DNA, Viral/analysis,biosynthesis,metabolism
Defective Viruses
Deoxyribonucleases
Escherichia coli
Genes
Glucose/metabolism
Models, Biological
Morphogenesis
Mutation
Nitrogen Isotopes
Oxidative Phosphorylation Coupling Factors
RNA, Viral/biosynthesis
Temperature
Thymidine/metabolism
Tritium
Viral Proteins/biosynthesis
Chemicals
Carbon Isotopes
DNA, Viral
Nitrogen Isotopes
Oxidative Phosphorylation Coupling Factors
RNA, Viral
Viral Proteins
Tritium
Adenosine Triphosphate
Deoxyribonucleases
Glucose
Thymidine
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Luftig R B
Ganz C
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27 references, click to expand
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