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W Sauerbier

Publications and source records attributed to W Sauerbier.

43 records · Page 3Linked to original sources

Control of gene function in baceriophage T4. II. Synthes of messenger ribonucleiccid and proei after interrupting deoxyribonucleic acid replication and glucosylation.

Replication of T4 deoxyribonucleic acid (DNA) is known to be required for the onset of transcription of late T4 genes. Once late gene transcription has been initiated, DNA replication is no longer required for maintaining synthesis of late or early T4 messenger ribonucleic acid (mRNA). Late phage proteins (lysozyme and tail fibers) continue to be produced at constant rates after interrupting T4 DNA synthesis. The ability of the host cell to glucosylate the T4 progeny DNA has no demonstrable influence on the rates at which T4 mRNA and late proteins are synthesized after the interruption of DNA synthesis. To explain the requirement of T4 DNA replication for the onset of late gene transcription, we suggest that T4 DNA in a nascent state is mandatory for the initial late gene transcription, or perhaps for late gene transcription throughout the lytic cycle. T4 DNA in a nascent state could be segregated from the bulk of the replicating DNA, used only as template for RNA synthesis, and prevented from being modified by methylation, glucosylation, or maturation processes. The fact that no, or very little, nonglucosylated T4 DNA is extractable from T4LB3-infected CR63 after arresting DNA synthesis does not rule out this possibility.

Centrifugation, Density Gradient↗

Control of gene function in bacteriophage T4. I. Ribonucleic acid and deoxyribonucleic acid metabolism in T4rII-infected lambda-lysogenic hosts.

Deoxyribonucleic acid (DNA) synthesis in T4rII-infected, lambda-lysogenic strains of Escherichia coli proceeds with one-half the rate of T4 wild-infected bacteria and stops 16 min after infection at 37 C. The rates of ribonucleic acid (RNA) synthesis, however, are the same with T4rII and T4 wild. The turnover of pulse-labeled RNA is slow in K strains (half-lives 10 to 20 min) as compared with B strains (half-lives 2.5 to 6 min). Lambda-lysogeny increases the apparent messenger (m) RNA half-lives in pulse-chase experiments. The shutoff of host RNA synthesis in T4rII infected K(lambda) is incomplete. Moreover, the preferential transcription of T4 DNA ceases 13 min after infection, and transcription of host and prophage lambda DNA is resumed. The T4 RNA synthesized in rII-infected K(lambda) contains no late T4 mRNA. The early portion of the T4 genome, however, is transcribed completely. The T4-induced early modification of bacterial RNA polymerase does occur. Resumption of host DNA transcription at 13 min after infection is not associated with a reversal of the above polymerase modification. It is concluded that in lambdalysogenic bacteria T4rII infections are abortive because RNA polymerase is prevented from transcribing late T4 genes.

Centrifugation, Density Gradient↗