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K L Powell

Publications and source records attributed to K L Powell.

At least 55 records · Page 3Linked to original sources

Herpes simplex virus non-structural proteins. III. Function of the major DNA-binding protein.

The herpes simplex virus type 2 major DNA-binding protein has been functionally characterized using temperature-sensitive mutants in the complementation group 2-2. The mutants were shown to be defective in the DNA-binding protein gene by mapping the mutants to the area of the genome known to code for the protein, and by demonstrating alterations in the major DNA-binding protein induced in mutant-infected cells. The mutants were shown to be defective in the replication of virus DNA. The nature of this defect was examined by studying virus DNA synthesis in vitro and by the examination of virus enzymes. An effect of mutation in the DNA-binding protein was to destabilize both the DNA polymerase and the alkaline exonuclease.

DNA Helicases↗

High-resolution characterization of herpes simplex virus type 1 transcripts encoding alkaline exonuclease and a 50,000-dalton protein tentatively identified as a capsid protein.

Four partially overlapping mRNAs (1.9, 2.3, 3.9, and 4.5 kilobases [kb]) were located between 0.16 and 0.19 map units on the herpes simplex virus type 1 genome. Their direction of transcription was found to be from right to left. The 2.3-kb mRNA was found to be early (beta), whereas the others were late (beta gamma). Partial sequence analysis of the DNA encoding these genes indicated that the promoter for the 2.3-kb mRNA shares structural features with other early (beta) promoters. In vitro translation of hybrid-selected mRNA indicated that among the proteins these mRNAs encode are an 82,000-dalton (d) polypeptide reactive with a monoclonal antibody against herpes simplex virus type 2 alkaline exonuclease and a 50,000-d polypeptide weakly reactive with a polyclonal antibody made against the capsid protein VP19C. Further experiments suggested that the 2.3-kb mRNA encodes the 82,000-d polypeptide, whereas one (or both) of the larger mRNAs encodes the 50,000-d protein. A novel finding was that the 1.9-kb mRNA appears to share part of the translational reading frame for alkaline exonuclease, but any polypeptide it encodes does not react with the monoclonal antibody to this enzyme.

Base Sequence↗

DNA-binding properties of a herpes simplex virus immediate early protein.

The herpes simplex virus alpha, or immediate early, protein ICP4 has been shown to be central to the control of the early stages of virus replication. The detailed mechanism of this control is unknown. In this communication we show that purified ICP4 was unable to bind to DNA even though the protein was capable of such activity in a crude extract. Addition of either infected- or uninfected-cell extracts to the purified protein restored its DNA-binding activity. These results suggest that ICP4 binds to DNA only via a component of uninfected cells.

DNA Helicases↗

Herpesvirus-induced antigens in squamous-cell carcinoma in situ of the vulva.

Antigens induced by herpes simplex virus Type 2 (HSV2) were found to be associated with squamous-cell carcinoma in situ of the vulva in nine of 10 patients. The HSV2-induced antigens are DNA-binding proteins that are normally present in the nuclei of infected cells, but in the cells of the carcinomas in situ they were found in the cytoplasm. Whole-virion structural antigens were not present, although there was serologic evidence of previous HSV2 infection in patients tested for the presence of antibodies. The observations reported here and the recent parallel rise in the prevalence of both HSV2 infections and vulvar carcinoma in situ, particularly in women under 40 years of age, suggest an association of HSV2 infection with this type of neoplasia, the nature of which remains to be determined.

Adult↗

Antigenic and structural conservation of herpesvirus DNA-binding proteins.

Previously, we have shown a common antigen of several herpesviruses (pseudorabies virus, equine abortion virus and bovine mammillitis virus) to be antigenically related to the major DNA-binding proteins of herpes simplex virus types 1 and 2. In this study we have purified the cross-reacting polypeptide from cells infected with pseudorabies virus, equine abortion virus and bovine mammillitis virus and shown the cross-reacting protein to be a major DNA-binding protein for each virus. Tryptic peptide analysis of the cross-reacting DNA-binding proteins of all five viruses has shown structural similarities. The proteins thus were shown to share common antigenic sites, to have similar biological properties and to have a highly conserved amino acid sequence. This unexpected similarity between proteins from diverse herpes viruses suggests an essential and fundamental role of the major DNA-binding protein in herpes virus replication.

Amino Acid Sequence↗

Nonstructural proteins of herpes simplex virus. II. Major virus-specific DNa-binding protein.

The major herpes simplex virus type 2 DNA-binding infected cell-specific polypeptides 11 and 12 have been purified to homogeneity from extracts of virus-infected cells. Monospecific antiserum to the purified protein has been made and used to examine virus temperature-sensitive mutants for defects in the synthesis of the protein and to probe virus DNA synthesis in isolated chromatin. The purified protein acted directly on a polydeoxyadenylic acid-polydeoxythymidylic acid helix, reducing its melting temperature. The results indicated that the protein functions in virus DNA synthesis.

Carrier Proteins↗

Herpes simplex virus DNA polymerase as the site of phosphonoacetate sensitivity: temperature-sensitive mutants.

Temperature-sensitive (ts) mutants in a number of complementation groups of herpes simplex virus type 1 (HSV-1) are deficient in DNA polymerase induction at the restrictive temperature. Twenty-two mutants in 15 complementation groups were tested for sensitivity to phosphonoacetate (PAA), a compound that inhibits HSV replication in vivo and the DNA polymerase in vitro. One mutant, tsD9, was resistant to PAA (Pr), whereas all others were sensitive. Revertants of tsD9 to the ts+ phenotype simultaneously lost PAA resistance. Additional Pr mutants were isolated from ts mutants belonging to several complementation groups of HSV-1. Double mutants (ts Pr phenotype) were used in three-factor recombination analyses to locate the PAA locus on the genetic map at a position indistinguishable from the ts lesion in tsD9. In all cases, resistance or sensitivity to PAA in vivo was correlated with resistance or sensitivity of DNA polymerase in vitro. These data are compatible with the temperature-sensitive lesion of tsD9 and the determinant of PAA sensitivity both residing in the structural gene for DNA polymerase.

DNA-Directed DNA Polymerase↗

Nonstructural proteins of herpes simplex virus. I. Purification of the induced DNA polymerase.

Herpes simplex virus-induced DNA polymerase purified by published methods was found to be contaminated with many others proteins, including virus structural proteins. Thus, DEAE-cellulose and phosphocellulose chromatography were used in combination with affinity chromatography to purify DNA polymerase from herpes simplex virus type 1- and type 2-infected cells. The purified enzyme retained unique features of the herpesvirus-induced DNA polymerase, including a requirement for high salt concentrations for maximal activity, a sensitivity to low phosphonoacetate concentrations, and the capacity to be neutralized by rabbit antiserum to herpesvirus-infected cells. By polyacrylamide gel electrophoresis, the purified DNA polymerase was associated with a virus-induced polypeptide of about 150,000 molecular weight.

Antibodies, Viral↗

DNA-binding proteins induced by herpes simplex virus type 2 in HEp-2 cells.

Affinity chromatography on single-stranded and double-stranded DNA-cellulose indicates that 12 proteins previously identified from herpes simplex virus type 2-infected cells, ranging in molecular weight from 28 X 10(3) to 186 X 10(3), bind to DNA-cellulose. The DNA-binding proteins found in infected cells differed in relative binding strengths for denatured DNA-cellulose. The virus specificity of these DNA-binding proteins was further studied by comparison with DNA-binding proteins isolated from mock-infected cells, and by immunoprecipitation of infected-cell DNA-binding proteins with antisera specific for viral antigens. The promise this technique holds for the purification and study of polypeptides involved in virus DNA replication, recombination, or repair is discussed.

Cell Line↗

DNA-binding proteins of cells infected by herpes simplex virus type 1 and type 2.

Proteins showing affinity for DNA in HSV-1-and HSV-2-infected cells were compared by DNA-cellulose chromatography and PAGE. The proteins observed depended on the type of virus used to infect the cell; however, several examples of analogous polypeptides were present in cells infected by both virus types. Proteins showing highest affinity for DNA-cellulose were similar in molecular size in cells infected by both virus types.

Cell Line↗

Studies on herpes simplex virus and cancer.

Virus-induced polypeptides of cells infected by herpes simplex virus (HSV) types 1 and 2 were investigated by analysis on polyacrylamide gels and by determination of their antigenicity. Some polypeptides, VP154 and VP134, had immunological reactivity common to both virus types, while others (VP175 and VP123) were type specific. Only the glycosylated polypeptides were able to induce neutralizing antibody. The expression of viral genetic information was studied in newborn mice infected with wild-type and ts mutant viruses; some mutants had become attenuated and had lost pathogenicity for newborn mice while others had not. From induction experiments in HSV=transformed hamster cells, it appears that detection of enhanced replication of ts mutants in human cancer cells would be an indication of resident HSV genetic information. Sera obtained from cancer patients were examined for antibodies to early proteins synthesized in HSV-infected cells. The method used was an indirect radioimmune precipitation test followed by polyacrylamide gel electrophoretic analysis of immune precipitates. Cervical cancer patients had sera with a higher reactivity to early nonstructural polypeptides than to breast cancer patients or to matched healthy women. In contrast to the results with early polypeptides, little difference was detectable between the matched sera in their reactivity with a major capsid polypeptide, which is synthesized late in the infectious cycle.

Animals↗