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Biomedical subjects

B Fleckenstein

Publications and source records attributed to B Fleckenstein.

At least 163 records · Page 9Linked to original sources

Terminal repetitive sequences in herpesvirus saimiri virion DNA.

The H-DNA repeat unit of Herpesvirus saimiri strain 11 was cloned in plasmid vector pAGO, and the nucleotide sequence was determined by the dideoxy chain termination method. One unit of repetitive DNA has 1,444 base pairs with 70.8% G+C content. The structural features of repeat DNA sequences at the termini of intact virion M-DNA (160 kilobases) and orientation of reiterated DNA were analyzed by radioactive end labeling of M-DNA, followed by cleavage of the end fragments with restriction endonucleases. The termini appeared to be blunt ended with a 5'-phosphate group, probably generated during encapsidation by cleavage in the immediate vicinity of the single ApaI recognition site in the H-DNA repeat unit. The sequence did not reveal sizeable open reading frames, the longest hypothetical peptide from H-DNA being 85 amino acids. There was no evidence for an mRNA promoter or terminator element, and H-DNA-specific transcription could not be found in productively infected cells.

Animals↗

Herpesvirus saimiri-induced lymphoblastoid rabbit cell line: growth characteristics, virus persistence, and oncogenic properties.

A nonproducer lymphoblastoid cell line (7710) containing the herpesvirus saimiri (HVS) genome was established from the HVS-positive spleen of a male, inbred New Zealand White rabbit (III/J strain) which had developed a well-differentiated lymphoma after inoculation of HVS and 12-O-tetradecanoylphorbol-13-acetate (TPA). Antibodies to HVS early and late antigens were detected in the serum of rabbit 7710 by indirect immunofluorescence and immunoprecipitation. The cell line was of T-cell origin, did not produce HVS, and could not be superinfected with HVS. However, HVS early antigens could be induced in the cells with n-butyric acid and TPA or TPA alone. On the other hand, late antigens were never observed, and infectious virus could not be rescued by cocultivation of 7710 cell with OMK cells. The 7710 cells were T-cell growth factor dependent, even after many in vitro passages. The 7710 cell line contained multiple copies of a nonintegrated, covalently closed circular HVS genome. As is characteristic of some other HVS-transformed nonproducer lymphoid cell lines, a large segment of unique light (L) DNA was missing in the persistent circular viral DNA present in 7710 cells. This deletion spanned at least 42.5 kilobases, corresponding to the segment between 12.3 and 50.7 map units of full-length, infectious virion L-DNA. The 7710 cells failed to induce tumors in athymic nude mice, but inbred rabbits inoculated with as few as 100 of these cells developed fatal lymphomas. Chromosomal analysis showed that tumors were due to the growth of donor cells. Cells recovered from one of the rabbits inoculated with 7710 cells also contained HVS DNA and, after in vitro culture, induced the same type of lymphoma when inoculated into two other III/J-strain rabbits. None of the previously described HVS-transformed cell lines have been able to induce tumors in either their host species or nude mice. Thus, our demonstration that the 7710 cell line is readily transplantable in syngeneic rabbits represents the first available model which allows analysis of many biological and molecular aspects of the in vivo oncogenicity of HVS.

Animals↗

Physical mapping of human cytomegalovirus genes: identification of DNA sequences coding for a virion phosphoprotein of 71 kDa and a viral 65-kDa polypeptide.

Polyadenylated RNA was isolated from fibroblast cultures infected with human cytomegalovirus (HCMV) strain AD169 during the late phase of viral replication. The RNA was selected by hybridization to a series of cosmid clones containing the entire viral genome in partially overlapping segments. Translation of this RNA in a reticulocyte cell-free system allowed the mapping of virus specific polypeptides. Nine polypeptides synthesized in vitro comigrated with major virion structural proteins. An in vitro-translated protein of 71 kDa was precipitated by a monoclonal antibody directed against the phosphorylated internal envelope protein of 71 kDa. The map coordinates of viral DNA coding for this phosphoprotein were localized by hybrid selection with subcloned DNA fragments, and the direction of transcription was determined by hybrid selection with single-stranded DNA cloned in bacteriophage vector M13mp9. An in vitro translation with size-fractionated RNA, combined with immunoprecipitation and Northern blot analyses, indicated that an mRNA of 4 kb encodes the 71-kDa phosphoprotein. An mRNA of the same size, map coordinates, and orientation was translated into an abundant 65-kDa polypeptide which had the same size as the major structural phosphoprotein of HCMV.

Base Sequence↗

Characterization of monoclonal antibodies and polyclonal immune sera directed against human cytomegalovirus virion proteins.

Four classes of monoclonal antibody-producing cell lines have been obtained that detect human cytomegalovirus virion structural proteins. These antibodies react with (1) a major outer membrane virion glycoprotein(s) gp58-gp130, whose molecular weight varies between strains of cytomegalovirus, (2) a phosphoprotein, pp71, localized inside the virion membrane, (3) a phosphorylated nucleocapsid protein, pp155, and (4) a virion-associated phosphoprotein, pp29. Polyclonal immune human sera react with a large number of virion proteins including those detected by these monoclonal antibodies. These monoclonal antibodies were employed in a radioimmune assay to detect low levels (6 X 10(3) PFU/ml) of human cytomegalovirus in solution and human urine. These antibodies were also employed in a fluorescent antibody format to identify cytomegalovirus-infected cells obtained from human urine and nasopharyngeal aspirates. These reagents provide useful tools for studying the molecular biology of virus replication, for diagnosing cytomegalovirus infections, and for studying virus latency and activation.

Animals↗

Human cytomegalovirus DNA sequences with homologies to the cellular genome.

DNA from a cosmid-cloned gene library of human cytomegalovirus (HCMV) strain AD169 was found to share sequence homologies with cellular DNA of various origins. Viral DNA fragments subcloned in plasmid vectors enabled localization of the homologous sequences to five regions of the HCMV genome. Four of these regions were found in the long unique (UL) segment of the viral genome (EcoRI fragments R, I and b, and HindIII fragment S); one region with virus--cell homology was located in the terminal inverted repeats (EcoRI fragments O and H). All hybridization reactions were carried out under stringent reannealing conditions (18 degrees C to 21.5 degrees C below average Tm of HCMV DNA). Fragments from these five HCMV DNA regions did not cross-hybridize with each other. The sequence homologies were seen in DNA from normal human placental tissue, liver autopsy material, intestinal tissue, white blood cells, and colon carcinoma cells, and in a series of haematopoietic cell lines. Sequence homologies were also detected in DNA from owl monkeys and Chinese hamsters, but not in mouse DNA. They were not related to human Alu repeats or cloned human c-myc sequences.

Base Sequence↗

Structure of the transforming region of human cytomegalovirus AD169.

The minimum size fragment of human cytomegalovirus AD169 required to initiate transformation was determined by transfection of primary rat embryo cells with deletion fragments constructed by digestion of a cloned fragment containing the transforming region (pCM4000) with exonuclease III and S1 nuclease. The results indicate that the left-hand boundary of the minimum size sequence for transformation must reside between 490 and 318 bases from the HindIII site of pCM4000. The right-hand boundary was defined by the EcoRI site which is 20 bases from the HindIII site. The nucleotide sequence of the transforming fragment of human cytomegalovirus was determined by the chemical degradation technique of Maxam and Gilbert and with the dideoxynucleoside triphosphate chain termination method. The sequence of pCM4000 comprises 2,848 base pairs and has an A X T composition of 59.5%. Reading frame analysis of the sequence indicated the longest open reading frame was 118 amino acids in length. Northern blot analysis of polyadenylated and non-polyadenylated RNA extracted from cells at immediate early and late times after infection with human cytomegalovirus indicate that one 5.0-kilobase RNA species hybridized to pCM4000 (Jahn et al., J. Virol, in press). The direction of transcription was determined by hybridization of this transcript with M13 single-stranded probes, and S1 analysis of this RNA did not detect introns.

Base Sequence↗

Predominant immediate-early transcripts of human cytomegalovirus AD 169.

Transcription of the human cytomegalovirus genome (strain AD 169) was investigated at the immediate-early (IE) time after infection, by using cycloheximide to suppress virus-specific protein synthesis. In total cell RNA, four predominant IE transcripts were found which were encoded by one contiguous region of the long unique segment between map units 0.06 and 0.16 in prototype arrangement of human cytomegalovirus AD 169 DNA. Analysis by Northern blot hybridizations demonstrated that the transcripts possessed a size of 1.9, 2.2, 2.3, and 5.0 kilobases, respectively. Coding sequences and directions of transcriptions were mapped by Northern blots and hybridizations with oligodeoxythymidylic acid-primed and randomly primed cDNA. The 1.9-, 2.2-, and 2.3-kilobase RNAs were found in the polyadenylated fraction of IE RNA exclusively; in contrast, a part of the 5.0-kilobase RNA appeared polyadenylated, although the majority of the same transcript was found in the nonpolyadenylated pool. Also, different from the other IE genes, the DNA coding for the 5.0-kilobase IE RNA was transcribed in high quantities during the late phase of virus replication, suggesting an exemption from the temporal regulation of herpesvirus transcription.

Base Sequence↗

Herpesvirus saimiri DNA in a lymphoid cell line established by in vitro transformation.

A lymphoid T-cell line (H1591) was established by infecting peripheral blood mononuclear cells from a cotton top marmoset with Herpesvirus saimiri OMI. Analysis of these in vitro-immortalized cells revealed nonintegrated, covalently closed circular viral DNA molecules in high multiplicities with substantial rearrangements and large deletions in their L-DNA (unique) regions. One subline, designated H1591 Er, contained circular viral DNA with one stretch of H-DNA (repetitive) and one of L-DNA; the L-DNA segment consisted of a linear fusion of a 53.2-kilobase-pair piece of L-DNA (left half of L-DNA) with a 15.2-kilobase-pair L-DNA fragment from the right end of the L-DNA region. The other subline, H1591 S, contained two short regions of L-DNA, each derived from the extreme ends of virion L-DNA. Both L-DNA regions of H1591 S cells contained inverted repetitions (15.0 +/- 0.2 and 9.1 +/- 4.7 kilobase pairs). The extensive deletions of L-DNA sequences in cell line H1591 indicate that at least 73% of the genetic information in H. saimiri is not required to maintain the persistence of viral DNA and the state of transformation in lymphoid T-cells.

Animals↗

Deletion of DNA sequence in a nononcogenic variant of Herpesvirus saimiri.

The 110-kilobase-pair stretch of unique sequence DNA of Herpesvirus saimiri is flanked by highly repetitive DNA. Detailed restriction endonuclease mapping has localized the left junction of repetitive and unique DNA to a 100-base-pair region. H. saimiri 11att, a replication competent nononcogenic variant of strain 11, has a deletion of 2.3 kilobase pairs of sequence information that spans this left junction of repetitive and unique DNA.

Animals↗

Immediate-early transcription of Herpesvirus saimiri.

Transcription of Herpesvirus saimiri was characterized during the initial phases of productive infection by Northern blot analyses and hybridizations of radioactive cDNA with cloned fragments of virion L-DNA. Under conditions of immediate-early transcription, e.g., blocking of viral protein synthesis by cycloheximide, a single cytoplasmic polyadenylated viral RNA of 2.7 kilobases was found in infected cells. The sequence coding for this RNA was between map units 0.89 and 0.93; it was transcribed from right to left in prototype arrangement of M-DNA. The immediate-early mRNA of lytically infected cells appeared to be very similar, if not identical, to the single viral RNA species found in lymphoid cells transformed by H. saimiri.

Animals↗

[Vaccination against hepatitis. Present and future].

Hepatitis A virus, a member of the picornavirus group, has been adapted to growth in cell culture. Recently developed inactivated vaccines and attenuated hepatitis A strains are presently used in first field advance. Hepatitis B virus is prototype of the hepadna virus group. Based on purification of viral surface antigene (HBs Ag) from human sera, a safe and effective vaccine has been developed, which is now available for general use. Future vaccines against hepatitis B are presently developed with methods of modern genetic engineering. These vaccines will be based on the in vitro synthesis of oligopeptides or on expression of cloned viral DNA in bacteria, yeast cells or tissue cultures. The nature of the agents causing non-A-non-B hepatitis is still unknown. Thus there is no method available now to develop a procedure for immunoprevention of non-A-non-B hepatitis.

Hepatitis B virus↗

Cloning of Herpesvirus saimiri DNA fragments representing the entire L-region of the genome.

Purified particles of Herpesvirus saimiri, a potent tumor-eliciting virus of primates, contain genomic DNA molecules (145-170 kb) consisting of a unique L-DNA region (112 kb) which is flanked by variable stretches of repetitive sequences (H-DNA). Restriction fragments representing the entire L-DNA of H. saimiri strain No. 11 were cloned in plasmid and bacteriophage vectors. The internal fragments of L-DNA generated by the enzymes EcoRI and KpnI were inserted into plasmid pACYC184, cosmid pJC81, or bacteriophage lambda derivative Charon 4A. The terminal parts of L-DNA, including the junctions between repetitive DNA and unique sequences, were cloned between the cleavage sites for KpnI and SmaI in the plasmid vector pWD7, which was constructed for this purpose. Molecular cloning allowed us to confirm and modify, in part, the existing cleavage maps of H. saimiri DNA. It provides a basis for future studies on virus replication and oncogenic transformation.

Bacteriophage lambda↗

Genome structure and virion polypeptides of the primate herpesviruses Herpesvirus aotus types 1 and 3: comparison with human cytomegalovirus.

Two serologically distinguishable primate herpesviruses, Herpesvirus aotus type 1 and type 3, were examined with regard to their genomes and structural polypeptides. The duplex DNA genomes of these two viruses were found to be essentially identical in molecular weight (Mr approximately equal to 145 X 10(6)) and guanine plus cytosine composition (55%). Both contained unique and inverted repeat nucleotide sequences of the same size and arrangement, which, as judged by DNA-DNA hybridization and restriction enzyme analyses, were at least 95% homologous. In addition, no differences were observed in electrophoretic profiles of virion polypeptides. Because of their great similarity with respect to these criteria, the two viruses ought to be considered independent isolates (or strains) of a single virus, which should be designated H. aotus type 1. The elevated molecular weight and presence of two sets of inverted repeat sequences closely resemble the structure of the human cytomegalovirus genome. However, no sequence homology (less than 5%) nor similarity in virion polypeptides was detected between H. aotus type 1 and human cytomegalovirus.

Cytomegalovirus↗

Structural proteins of Herpesvirus saimiri.

Herpesvirus saimiri particles were purified from productively infected owl monkey kidney cell cultures, and the virion polypeptides were analyzed by polyacrylamide gel electrophoresis. A total of 21 predominant proteins were found in lysates of H. saimiri 11 particles by Coomassie blue staining or by [35S]methionine labeling and autoradiography; all proteins were between 160,000 and 12,000 daltons in size. They are most probably virion constituents, as most of them were precipitated by immune sera, and no dominant proteins of equivalent sizes were found in mock-infected cultures. Four glycoproteins (gp 155/160, gp 128, gp 84/90, gp 55) and three polypeptides that appeared not to be glycosylated (p71, p35, p28) were assigned to the envelope or matrix of virions, whereas at least four phosphoproteins (pp132, pp118, pp55, pp13) and ten polypeptides without apparent secondary modification (p155/160, p106, p96, p67, p53, p36, p32, p15, p14, p12) were found in the nucleocapsid fraction. Analysis of virion proteins from different H. saimiri strains did not reveal appreciable differences in the migration behavior of most polypeptides, including all glycoproteins; however, determination of a strain-specific size pattern was possible for three of four phosphoproteins. The overall similarity in protein architecture of H. saimiri strains obviously does not reflect the variability in biology, such as oncogenic properties. In comparison, DNA sequence divergences appear to remain a better taxonomic criterion for strain distinction.

Capsid↗

Virus-specific transcription in a Herpesvirus saimiri-transformed lymphoid tumor cell line.

Herpesvirus saimiri-transformed lymphoid tumor cell lines contain nonintegrated covalently closed circular viral DNA molecules in high multiplicity. One of those cell lines, 1670, carries large viral DNA circles (202 kilobase pairs) with two stretches of repetitive DNA (70.8% G + C) that are interspersed between two segments of unique DNA (36% G + C). Since it was not known if there is any viral gene expression in H. saimiri-transformed cells, we initiated a study of transcription in cell line 1670. cDNA was generated by reverse transcription of cellular RNA and hybridized with cloned virion DNA fragments. The experiments indicated that appreciable transcription is restricted to a single segment of unique DNA. This sequence is present once only in the circular viral DNA and corresponds to unique DNA between map units 0.89 and 0.93 of virion DNA. By Northern blot hybridizations with labeled cloned probes of virion unique DNA, one predominant virus-specific polyadenylated transcript of, at most, 2.7 kilo-bases could be detected in tumor cell line 1670. The direction of transcription was determined by hybridization with randomly primed cDNA and, in parallel, with oligodeoxythymidylate-primed cDNA probes. Apparently, the patterns of virus-specific RNA synthesis in the H. saimiri-transformed cells are clearly distinct from the transcription program in other herpesvirus transformation systems analyzed before.

Animals↗

Cloning of the complete human cytomegalovirus genome in cosmids.

Purified virion DNA (155 X 10(6) Mr) of human cytomegalovirus (CMV) strain Ad169 was partially cleaved with restriction endonucleases HindIII and EcoRI and cloned in the respective cleavage sites of cosmid pHC79. A complete gene library was established in a set of clones containing the viral DNA in long overlapping segments. Restriction maps for HindIII (29 fragments) and EcoRI (36 fragments) were constructed from the linkage of cosmid-cloned fragments, from double digestions of cloned DNA, and from blot hybridization of labeled cloned viral DNA with restriction fragments of virion DNA and singly or doubly cleaved cosmid clones.

Cloning, Molecular↗

Transformation of NIH 3T3 cells with cloned fragments of human cytomegalovirus strain AD169.

NIH 3T3 cells were transfected with restriction endonuclease and cloned human cytomegalovirus DNA fragments to identify the transforming region(s). Cleavage of human cytomegalovirus strain AD169 DNA with XbaI and HindIII left a transforming region intact whereas EcoRI inactivated this function. Transfection of cells with cosmids containing human cytomegalovirus DNA spanning the entire genome resulted in transformation by one cosmid, pCM1058, with the AD169 HindIII DNA fragments E, R, T, and a'. Cells were selected for their growth in 1.2% methylcellulose. The clones isolated had a significant replating efficiency and were oncogenic in BALB/c nu/nu mice. Transfection of cosmids and plasmids containing subsets of the viral sequences in pCM1058 identified a common region possessed by all of the transforming recombinant molecules. This region was in the HindIII E fragment with the left boundary defined by the EcoRI d-R junction and the right boundary defined by the HindIII E-T junction. Further mapping and transfection experiments determined that the transforming region was contained without a 2.9-kilobase fragment between map units 0.123 and 0.14 on the prototype molecule of the AD169 strain.

Animals↗