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Biomedical subjects

R Callahan

Publications and source records attributed to R Callahan.

11 recordsLinked to original sources

Isolation of an endogenous type C virus related to the infectious primate type C viruses from the Asian rodent Vandeleuria oleracea.

A tissue culture line derived from the Asian rodent Vandeleuria oleracea has been shown to release an infectious, xenotropic type C virus. The virus-associated reverse transcriptase (RNA-dependent DNA nucleotidyltransferase) and the major internal protein p30 are immunologically related to the respective proteins of the woolly monkey-gibbon ape group of infectious primate viruses. By these criteria the V. oleracea viral isolate is similar to the murine type C-I class of endogenous retroviruses and has been designated Vand C-I. Nucleic acid homology studies show that V. oleracea cellular DNA shares similar levels of homology with DNA from members of the Mus and Rattus genera and lower levels of homology with other rodent genera. The Vand C-I viral genome is present in V. oleracea cellular DNA in multiple copies, and partially related sequences can be detected in other rodent genera. These results support the conclusion that the Vand C-I viral genome is genetically transmitted in V. oleracea and that the type C-I class of endogenous retroviral genes has been highly conserved during evolution.

Animals

A mutation to 5-methyltryptophan dependence in the tryptophan (trp) operon of Salmonella typhimurium. II. Studies of 5-methyltryptophan-dependent mutants and their revertants.

Mutants of S. typhimurium with a defect in the first structural gene of the trp operon can utilize anthranilic acid (AA) as a growth factor. Among a group of 5-methyltryptophan (MT) resistant derivatives of trpA mutants we encountered several with a novel phenotype: they actually grew better in the presence of MT than in its absence. Normally MT inhibits growth of S. typhimurium at the concentration we employed due to its ability to act as co-repressor of the trp operon and as a feedback inhibitor of anthranilate synthetase (AS) the first enzyme for tryptophan biosynthesis. Mutations to MT-dependence were only found in strains carrying extremely polar trpA mutations. In all cases analyzed, mutations causing MT-dependence mapped at the extreme operator distal end of trpA. The mutation trpA515 responsible for MT-dependence in strain SO61 (genotype trpA49trpA515) was recombined away from the polar mutation. The strain thus obtained, SO495 was totally dependent on MT for growth on AA supplement. Strain SO495 lacks AS and under repressing growth conditions synthesizes the trp enzymes constitutively at 2--3 times the basal level. Under derepression, while the levels of the distal enzymes, as represented by tryptophan synthetase--beta subunit (TSbeta), did not increase there was a marked drop in the activity of anthranilate-PRPP phosphoribosyltransferase, (PRT) the enzyme catalyzing the second step of tryptophan biosynthesis. trpA515 was found to revert to prototrophy at a low frequency (about 10(-8)) which was not increased by chemical mutagens or ultraviolet radiation. In contrast, it was found to revert to MT-independence (growth on AA in the absence of MT) at a fairly high spontaneous frequency (about 10(-6)) and this frequency could be increased approximately tenfold by mutagens causing base substitutions or deletions but not by frameshift mutagens. About one hundred MT-independent revertants of trpA515 were mapped and found to fall into three general classes: (A) mutations at or near the trpA515 site (B) secondary mutations located upstream from trpA515, (C) deletions of various sizes. Based on a detailed genetic and physiological study of twelve representative MT-independent revertants, it appears that trpA515 may be caused by the insertion of a piece of DNA with some of the properties described for the IS elements found in Escherichia coli. The trpA515 insertion should contain (in this order), a transcription terminator, a low efficiency promoter and, probably, a translation start signal.

Chromosome Mapping

Characterization of a new virus from Mus cervicolor immunologically related to the mouse mammary tumor virus.

A virus, similar to the murine mammary tumor viruses (MuMTV) of the laboratory mouse Mus musculus, was identified in the milk of M. cervicolor popaeus mice. The virus was morphologically indistinguishable from the type-B MuMTV and was thus termed MC-MTV. Radioimmunoassays for the 52,000-dalton major envelope glycoprotein and the 28,000-dalton major internal protein of MuMTV demonstrated that MC-MTV shared some antigenic determinants with both of these MuMTV proteins. This reactivity was clearly different, however, from that observed with all MuMTV tested from M. musculus. MC-MTV had a density of 1.16 g/ml in sucrose and a virion-associated DNA polymerase with a divalent cation preference for Mg2+ over Mn2+. Radioimmunoassays clearly differentiated MC-MTV from the other viruses previously identified from M. cervicolor, i.e., M432, CERV-CI, and CERV-CII. These studies thus identified the first virus from another species that is immunologically related to the MuMTV of M. musculus. Particles similar to MC-MTV were also observed in a spontaneous M. cervicolor popaeus mammary tumor.

Animals

Two distinct endogenous type C viruses isolated from the asian rodent Mus cervicolor: conservation of virogene sequences in related rodent species.

The cocultivation of a lung cell line from the Southeast Asian mouse Mus cervicolor with cells from heterologous species has resulted in the isolation of two new distinct type C viruses. Both viruses are endogenous to M. cervicolor and are present in multiple copies in the cellular DNA of these mice. One of the viruses, designated M. cervicolor type CI, replicates readily in the SIRC rabbit cell line and is antigenically related to the infectious primate type C viruses isolated from a woolly monkey (simian sarcoma-associated virus) and gibbon apes (gibbon ape leukemia virus). This virus is also closely related by both immunological and nucleic acid hybridization criteria to a type C virus previously isolated from a second Asian murine species, Mus caroli. The isolation of the M. cervicolor type C I virus thus provides further evidence that the infectious primate type C viruses originated by trans-species infection of primates by an endogenous virus of mice. The second virus, designated M. cervicolor type C II, replicates well in various cell lines derived from the laboratory mouse Mus musculus. While antigenically related to type C viruses derived from M. musculus, the M. cervicolor type C II virus isolate can be readily distinguished from standard murine leukemia viruses. Both new type C viruses from M. cervicolor are unrelated to the previously described retrovirus (M432) isolated from the same Mus species. The DNA of M. cervicolor therefore contains multiple copies of at least three distinct classes of endogenous viral genes. An examination of the cellular DNA of other rodent species for nucleic acid sequences related to the genomes of both M. cervicolor type C I and II reveals that both viruses have been highly conserved evolutionarily, and that other species of rodents, such as laboratory mice and rats, contain endogenous virogenes related to those in the DNA of M. cervicolor.

Animals

Bovine leukemia virus genes in the DNA of leukemic cattle.

Reverse transcripts of the rna genome of the bovine leukemia virus (BLV) as well as 125I-labeled BLV RNA hybridize to the DNA of tissues from leukemic cattle with the adult form of the disease but not to bovine thymic lymphoma or normal bovine tissues.

Animals

A new class of genetically transmitted retravirus isolated from Mus cervicolor.

The cocultivation of spleen cells from the Southeast Asian mouse, Mus cervicolor, with heterologous cell lines has permitted the isolation of a new retravirus (designated M432) that can be transmitted to tissue culture cells of the laboratory mouse, M. musculus. Cells infected with M432 contain cytoplasmic type A particles and budding forms with compact,spherical nucleoids; extracellular virions lack surface spikes and have a condensed, central core surrounded by an intermediate line. Like other retraviruses, M432 bands isopycnically in sucrose at 1.16-1.17 g/cm3 and contains a 70S RNA genome composed of 35S subunits and an RNA-dependent DNA polymerase (RNA-dependent DNA nucleotidyltransferase). The viral reverse transcriptase requires magnesium as a cofactor and transcribes the synthetic template:primer poly(rC)-oligo(dG) more efficiently than poly(rA)-oligo(dT). [3H]DNA transcripts of the viral RNA genome detect multiple copies of endogenous virogene sequences in the cellular DNA of normal M. cervicolor, and fewer copies in heterologous cells infected with M432. Partially related nucleic acid sequences are also detected in the DNA of M. caroli and M. musculus as well as in more distantly related species (rat and hamster), reflecting the evolutionary conservation of these gene sequences in rodents. Although the virus from M. cervicolor shares certain morphologic and biochemical properties with murine type B viruses, the new isolate is unrelated by nucleic acid hybridization criteria to the mouse mammary tumor virus, the bovine leukemia virus, the Mason-Pfizer monkey virus, or known murine type C viruses, including endogenous type C viruses isolated from M. cervicolor.

Animals

Isolation from the asian mouse Mus caroli of an endogenous type C virus related to infectious primate type C viruses.

Treatment of a cell line derived from the Asian feral mouse Mus caroli with 5-bromodeoxyuridine induces an infectious, xentropic type C virus. This virus shares strongly cross-reactive reverse transcriptase (RNA-dependent DNA polymerase) and p30 antigens and crossinterferes with type C viruses isolated from a woolly monkey (SSAV) and gibbon apes (GALV). By similar criteria, the caroli virus is much less related to previously described type C viruses of the laboratory mouse, Mus musculus. Induction of virus from 10 of 13 single cell clones indicates that the virus is endogenous in Mus caroli cells. Thre results suggest that infectious primate type C viruses arose by trans-species infection(s) of certain primates with endogenous type C viruses from MUs caroli or a closely related Mus species.

Animals

Endogenous primate and feline type C viruses.

1. Endogenous type C viruses have been detected in a wide variety of mammalian species. Multiple copies of related, but not identical, virogene sequences can be found in the DNA of these species. 2. The endogenous type C virogenes are subject to the pressures of natural selection, and closely related species possess related virogene sequences. These genes evolve as cellular entities diverging from one another in a manner which correlates well with taxonomic relatedness of the species. 3. The endogenous type C viruses of baboons and domestic cats are related, but they can be distinguished by biologic and immunologic criteria and by partial nucleic acid sequence homology. Virogene sequences in the DNA of Old World monkeys and domestic cats also show a degree of relatedness not shared by the unique sequence DNA of these species. The data suggest that progenitors of domestic cats were exogenously infected by a type C virus that also gave rise to present-day endogenous type C viruses of Old World monkeys. 4. The genomes of exogenously infectious viruses replicating in permissive host cells appear to evolve much more rapidly than endogenous virogenes which replicate as cellular genes. Laboratory strains of efficiently oncogenic type C viruses are presumed to be derived from activated endogenous viruses which have been selected for virulence and which, in certain cases, have acquired the capacity to replicate in the host's own cells. 5. The ubiquitous presence of endogenous type C viruses among vertegrates and their preservation throughout millions of years of evolution suggests that these genes express normal physiologic functions which provide a selective advantage to the species.

Animals

Nucleic acid homology of murine xenotropic type C viruses.

Two major subclasses of xenotropic (X-tropic) murine type C viruses can be distinguished by nucleic acid hybridization. The most frequently encountered subclass (MuLV-X-alpha) includes isolates from BALB/c, C57BL/6J, C58/J, AKR/J, CBA/J, and DBA/2J inbred strains and from the Asian feral mouse subspecies Mus musculus molossinus. The other subclass (MuLV-X-beta) consists of viruses isolated from the NIH Swiss and NZB/BINJ strains. Thus, significant polymorphism exists among the endogenous type C virogenes of a single species, Mus musculus. MuLV-X-alpha genes are found in strains that also have endogenous mouse-tropic viruses (either N-tropic, B-tropic, or both), whereas the MuLV-X-beta subclass is restricted to mouse strains from which mouse-tropic viruses have not yet been isolated. The results are consistent with a model which proposes that mouse-tropic endogenous viruses are derived from the MuLV-X-alpha subclass.

Animals