T4 head assembly and high temperature.
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Biomedical subjects
Publications and source records attributed to G H Wever.
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Extensive replication of duplex T7 DNA is catalyzed in reactions contining T7 DNA polymerase, T7 gene 4 protein, and T7 RNA polymerase. When the product of this reaction is analyzed in the electron microscope, many eye form and Y form replication intermediates are observed. Replication in vitro is not initiated at a single region of the T7 genome. However, we tentatively conclude that initiation does occur preferentially at a few specific sites along the DNA, and that these sites may be near promoters at which the T7 RNA polymerase initiates transcription.
The DNA molecules from T7 bacteriophage and a recently obtained mutant form of T4D were studied. The DNA of this T4 mutant contains cytosine in place of all of the glucosylated hydroxymethylcytosines normally present in T4. Molecular weights were measured with an electron microscope technique, and sedimentation coefficients were determined in isokinetic sucrose gradients. T7 DNA was found to have an Mr of 26.5 x 10(6). The T4 mutant, which we have termed T4c, produces two distinct phage head and DNA size clases. DNA from the standard heads (T4c DNA) has an Mr of 114.9 x 10(6), and DNA from the petite heads (T4cp DNA) has an Mr of 82.9 x 10(6). This enabled the derivation of an equation of sedimentation coefficient at zero concentration corrected to water at 20 degrees C versus Mr for the molecular weight range of 25 x 10(6) to 115 x 10(6) that is based solely on cytosine-containing DNA standards, thereby avoiding possible anomalies introduced by the glucosylation and hydroxymethylation of cytosine. The theory of Gray et al. provided the best description of the sedimentation coefficient versus Mr relationship, based on the sedimentation coefficients and the molecular weights of the three DNA standards and other evidence.
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Simian virus 40 (SV40) can be rescued from certain SV40-transformed hamster cells by fusion with susceptible African green monkey kidney (CV-1) cells, in the presence of ultraviolet-irradiated Sendai virus. We have determined the sites in which SV40 is produced during rescue in these heterokaryons. To determine the sequence, nuclei were isolated from fused cells at various times after fusion, separated on sucrose-density gradients, and assayed for infectious center formation and virus content on CV-1 monolayers. Virus was first detected in the transformed nucleus (40 hr postfusion), and later associated with both transformed and susceptible nuclei (68 to 72 hr). Viral rescue apparently does not depend upon the transfer of SV40 deoxyribonucleic acid to a susceptible CV-1 nucleus, since the transformed nucleus is the primary site of virus production. The time course of certain cytological events in the rescue process and in productive infection was found to be similar.