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Biomedical subjects

Y Becker

Publications and source records attributed to Y Becker.

At least 163 records · Page 9Linked to original sources

Herpes simplex virus DNA polymerase, thymidine kinase and deoxyribonuclease activities in cells infected with wild type, ultraviolet-irradiated and defective virus.

The DNA polymerase, thymidine kinase and deoxyribonuclease activities were studied in cells infected with wild type (wt), ultraviolet (UV)-irradiated and defective herpes simplex virus type 1. All three enzymatic activities were expressed in cells infected with wt virus. In cells infected with UV-irradiated virus, the thymidine kinase and deoxyribonuclease activities were inhibited and the DNA polymerase activity was markedly suppressed. In cells producing defective virus, there was thymidine kinase activity, but the viral deoxyribonuclease activity was considerably reduced. The DNA polymerase activity was fully expressed in cells producing defective virus at passage level 5, but at passage level 6, the activity of the viral DNA polymerase declined.

Animals↗

Structure--activity relationships of pyrrole amidine antiviral antibiotics. 1. Modifications of the alkylamidine side chain.

Representatives of three types of side-chain analogues of distamycin A (1) were synthesized. These were tested for cytotoxicity, inhibition of herpes simplex virus (HSV) replication in cultured cells, effects on the synthesis of HSV DNA in isolated nuclei in vitro, as well as on DNA synthesis by purified HSV DNA polymerase. Distamycin A was the most active compound in all three antiviral tests, as well as the most toxic. However, several compounds, in particular the aromatic analogues 15 and 16, showed no toxicity under the experimental conditions used but were still very active in the three antiviral tests.

Animals↗

Retrovirus-like particles in EBV-negative Burkitt's lymphoma cell line but not in EBV-DNA-positive lines from patients with ataxia telangiectasia and Down's syndrome.

Retrovirus-like particles can be recovered by arginine deprivation from the BJAB-1 Epstein-Barr virus (EBV) negative cell line derived from an African patient with typical Burkitt's lymphoma. These particles resemble retroviruses in their morphology and in their physicochemical properties. Particles with a similar morphology were obtained from derivative cell lines established by infecting BJAB-1 cells with EBV. On the other hand, retrovirus-like particles could not be induced in EBV-DNA-positive lymphoblastoid cell lines derived from non-leukaemic patients with ataxia telangiectasia and Down's syndrome and from a patient with infectious mononucleosis.

Ataxia Telangiectasia↗

In vitro RNA synthesis in nuclei from herpes simplex virus infected cells: effects of ultraviolet-irradiated, defective and bromodeoxyuridine-resistant virus preparations.

Transcription of virus DNA was detectable in vitro in nuclei isolated from cells infected with wild type and bromodeoxyuridine (BUdR)-resistant herpes simplex virus type 1 but was suppressed in nuclei of cells infected with ultraviolet irradiated or defective virus or cells treated with BUdR during infection.

Bromodeoxyuridine↗

Interaction of ultraviolet-irradiated herpes simplex virus type 1 with BSC-1 cells.

Ultraviolet irradiation of herpes simplex virus (HSV) did not affect the transfer of uncoated virus DNA to the nuclei of infected cells but the synthesis of virus DNA was suppressed. The virus-specific DNA polymerase was synthesized in cells infected with the u.v.-irradiated HF strain of HSV. In cells infected with the u.v.-irradiated KOS strain, the virus DNA polymerase activity was hardly detectable. The two strains of HSV differ in the sensitivity of the virus DNA polymerase gene to u.v.-irradiation.

Cell Line↗

Defective herpes simplex virus DNA: circular and circular-linear molecules resembling rolling circles.

The formation of defective herpes simplex virus (HSV) in BSC-1 cells and the synthesis of defective virus DNA was studied. The fourth consecutive passage of undiluted virus yielded defective DNA that was 0.008 g/ml more dense than wild type (w.t.) virus DNA. The amount of defective DNA increased at passage 6 concomitantly with the decrease in infectious virus progeny. The synthesis of defective DNA was always accompanied by w.t. virus DNA synthesis. Defective DNA from both infected nuclei and defective virions had a mol. wt. of 100 X 10(6) and was linear as determined by electron microscopy. Electron microscopy of defective virus DNA at passage 6 revealed circular molecules varying in size in addition to linear DNA molecules with the length of intact virion DNA. The circular DNA molecules had contour lengths of 10, 5, 2.5 and less than 2.5 micron. The smallest circular DNA molecules had a contour length of 0.3 micron, possibly one virus gene. In addition, circular-linear DNA molecules were observed in which both the circular and the linear components varied in length. Most of these DNA molecules had circular components of either 2.5 or 5.0 micron, and linear components varying in length from less than 1 to 50 micron. Based on the present study, it is proposed that the S component of w.t. virus DNA is fragmented into small circular molecules that serve as templates for DNA synthesis, possibly by the rolling circle mechanism.

Cell Line↗

Deoxyribonucleic acid polymerase of wild-type and phosphonoacetic acid-resistant mutant of herpes simplex virus.

The phosphonacetic acid (PAA)-susceptible deoxyribonucleic acid (DNA) polymerase of herpes simplex virus type 1 was partially purified and isolated in sucrose gradients and on double-strand DNA cellulose columns. The DNA polymerase isolated from cells infected with the PAA-resistant mutant had the same molecular weight as the wild-type enzyme (140,000 to 149,000) but was consistently more resistant to PAA.

DNA-Directed DNA Polymerase↗

Annealing of alkali-resistant HSV DNA strands and isolation of S and L components.

DNA isolated from highly purified virions of herpes simplex virus type-1 (HF strain) was denatured by centrifugation in alkaline sucrose gradients. DNA molecules corresponding to intact single-stranded virion DNA (50 x 10(6) daltons) were isolated and adjusted to neutral pH. The DNA was annealed under conditions permitting reassociation of intact single-stranded molecules and studied by electron microscopy. Three classes of DNA molecules showing double-stranded sequences were observed: (a) fully double-stranded DNA molecules the size of the intact HSV DNA genome, namely 52 micron; (b) DNA hybrids with a region of partial double-strandedness ranging from 5 to 12 micron, plus long single strands; and (c) DNA hybrids with a double-stranded region of 32--40 micron, plus short single strands. (These results suggest that the alkali-resistant single-stranded HSV DNA molecules are composed of several subclasses that permit annealing of either the total genome or the S or L components.) The 5 micron double-stranded region probably constitutes the S component of HSV DNA and the sequences longer than 5 micron and shorter than 12 micron represent annealing of the repeat sequences on either or both sides of the S component. The double-stranded sequences with a length of 32--40 micron may represent the L component. Treatment of the annealed, partially double-stranded hybrid DNA molecules with S1 endonuclease to remove the single-stranded termini and centrifugation in neutral sucrose gradients yielded two distinct peaks. Centrifugation of fractions from the two peaks in caesium chloride density gradients showed that the small DNA component (possibly the S and the repeat sequences) had a higher buoyant density and the longer (possibly the L) DNA component had a lower density than the HSV DNA marker. Annealing of alkali-resistant viral DNA strands therefore provides a means of isolating the L, S and repeat sequence regions of HSV DNA.

Base Sequence↗

Isolation of Marek's disease virus DNA from infected cells by electrophoresis on polyacrylamide gels.

Marek's disease virus DNA isolated from the nuclear fraction of infected chicken embryo fibroblasts and sucrose-purified particles was electrophoresed on 3 per cent polyacrylamide gels and was compared in its electrophoretical behaviour with isolated pseudorabies and herpes simplex DNA, strain HF. The DNA molecules eluted from the gel were identified by their sedimentation coefficient (53--55S) and buoyant density (1.707 g/ml) to be of viral origin. MDV DNA molecules were electrophoretically also detected and identified in DNA preparations of the lymphoblastoid Marek's disease tumour cell line MSB-1 which therefore has to be considered as a producer line. The electrophoresis of DNA preparations from Marek's disease virus-infected cells on polyacrylamide gels provides a semipreparative method for the isolation of MDV DNA.

Animals↗

In vitro synthesis of herpes simplex virus DNA in nuclei isolated from infected BSC 1 cells.

The synthesis of herpes simplex virus DNA in isolated nuclei under in vitro conditions was found to be dependent on the addition of ATP and an ATP generating system to the reaction mixture. In vitro DNA synthesis was stimulated and prolonged when p-hydroxymercuribenzoate was added to the isolated nuclei. Under these improved conditions virus DNA molecules which were initiated in vivo were completed in vitro, but most of the DNA molecules synthesized in vitro sedimented in sucrose gradients more slowly than herpes virion DNA. Denaturation of the in vitro labelled DNA molecules produced short single-stranded labelled DNA chains. Thus, under our improved in vitro conditions there was prolonged synthesis of DNA at a high rate, with the formation of both complete and incomplete virus DNA molecules.

Adenosine Triphosphate↗