Restriction site periodicities in highly repetitive DNA of primates.
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Biomedical subjects
Publications and source records attributed to D Gillespie.
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Two procedures were developed for removing DNA from agarose after electrophoretic separation of DNA fragments according to size. Both involve dissolving the DNA-containing agarose in NaI. The preparative technique uses binding of DNA to glass in the presence of NaI. The method is rapid and convenient, and DNA of all molecular weight ranges can be recovered in high yield and without degradation. The DNA is free of agarose and remains susceptible to digestion by restriction enzymes. The analytical technique uses selective precipitation of DNA with acetone and has been adapted to molecular hybridization scans of sequences in agarose gels. The sequence-monitoring system is quantitative, directly measuring the proportion of the probe complementary to a given DNA fragment and vice versa. It is especially suitable for analyzing restriction enzyme digests of DNA in mapping experiments.
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RNA purified from two related RNA tumor viruses, one isolated from a baboon, Papio anubis, and the second from cultured blood leukocytes of a patient with acute myelogenous leukemia, was labeled with 125I and hybridized to DNA from different primates. RNA from both viruses showed maximum sequence homology with genes in baboons and little homology with genes of humans. The results confirm earlier suggestions that both viruses originated by transcription of baboon virogenes, and that one was transmitted to humans in nature. Hybridization of the viral RNA to cell DNA followed complicated kinetic patterns, indicating the presence of both repeated and infrequent virogene elements. This conclusion was verified in experiments using varied DNA:RNA ratios. It is proposed that virogenes, though composed of genes repeated 10 times or more, consist of some sequences more preferentially conserved than others. The non-uniformity of virogene sequence conservation limits the use of viral probes in studies concerning certain aspects of virogene evolution.
Hybridisation of RNA from a baboon endogenous type C RNA virus to DNA from tissues of leukaemic patients indicates that a virus of this type is horizontally transmitted among humans. DNA from several patients with leukaemia hybridised 70% of the hybridisable RNA from baboon endogenous type C RNA virus (BaEV) and yielded hybrids of high tm, whereas DNA from normal human tissues hybridised only 23% of the BaEV RNA, and the tm of these hybrids was lower.
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The results of molecular hybridization experiments with high-molecular-weight RNA isolated from RNA tumor viruses and DNA from normal cells suggest that RNA tumor virus genomes originate from cell genes. Some RNA tumor viruses (here called class 1) appear to have been generated in recent times in that their RNA is closely related in nucleotide sequence to certain cell genes (class 1 genes). A second class of RNA tumor viruses (here called class 2) is more distantly related to genomic information of normal cells. Structural properties of the RNA of RNA tumor viruses lead us to propose that the tumor virus RNA is originated when RNA transcripts of class 1 genes are processed by a mechanism we call "paraprocessing." We postulate that RNA paraprocessing is normally used only at particular times during differentiation and is characterized by the cytoplasmic appearance of high-molecular-weight RNA chains containing terminal polyadenylic acid (200 residues). Paraprocessing of class 1 gene transcripts in committed or differentiated cells is considered to be aberrant in transcription that can lead to the generation of an RNA tumor virus genome. If the paraprocessed class 1 gene transcript codes for a reverse transcriptase, replication of the RNA becomes possible. Transfer of the replicating RNA to a new cell can result in genetic change such that the virus genome mutates, differing from the original progenitor genes. We propose that this genetic change causes class 1 viruses to become class 2. These ideas are applied to evidence concerning the biology of infection of RNA tumor viruses and concerning the involvement of RNA tumor viruses in human cancer. Genetic change can also occur during the origination of an RNA tumor virus genome by repeated reverse transcription and recombination (45) or by genetic alteration of particularly changeable cell genes ("hot spots") (43).
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The reverse transcriptase and endogenous DNA product synthesized by virus-like particles in the cytoplasm of human leukemic cells have been studied for their genetic relatedness to homologous components obtained from several animal RNA tumor viruses. The human reverse transcriptase activity was inhibited by antibodies prepared against reverse transcriptase from some animal RNA tumor viruses. The DNA molecules synthesized endogenously by the human cytoplasmic particle in the presence of actinomycin D, using the reverse transcriptase enzyme and RNA template residing in the particle, hybridized to 70S RNA purified from certain animal RNA tumor viruses. Both the human reverse transcriptase and DNA product are closely related to homologues from primate type-C viruses, more distantly related to those from murine type-C viruses, and essentially unrelated to similar structures from feline or avian type-C viruses. They are not related to type-B RNA tumor viruses. The results demonstrate that the components from the human leukemic cells are viral (type-C) and primate in nature.
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