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Dimethyl-10,12-benz(a)acridine; evidence for differential effects on the synthesis of RNA of mammalian or avian fibroblasts and some RNA viruses.

We have studied the differential effect of dimethyl-10,12-benz(a)acridine (DBMAcr) on the synthesis of RNA of chicken or mouse fibroblasts in culture and that of some RNA-containing viruses such as Rous sarcoma virus and Mengovirus. DMBAcr at low concentrations blocks the cell multiplication of both normal and Rous sarcoma virus-transformed chicken fibroblasts in culture; it affects transformed cells more than normal ones. The cell growth inhibiting effect of DMBAcr is reversible after short periods of incubation. DMBAcr depresses the synthesis of cellular DNA and RNA in parallel. Concurrently the synthesis of protein proceedes at a relatively high rate in DMBAcr-treated cultures. Its inhibitory effect on cellular RNA synthesis is mostly due to a block in the formation of 28 S and 18 S ribosomal RNA species; in contrast, the synthesis of 45 S ribosomal RNA precursor is proceeding at almost control rate. Also, the synthesis of heterogeneous nuclear RNA is not blocked by DMBAcr. The production of Rous sarcoma virus in transformed fibroblasts is not affected by DMBAcr. Since this is correlated with persisting high rates of protein and heterogenous nuclear RNA synthesis, the effects of DMBAcr suggest that the synthesis of Rous sarcoma virus-RNA shares the specificity of messenger and heterogeneous nuclear RNA. DMBAcr inhibits the synthesis of viral RNA of Mengovirus under conditions where the synthesis of total cellular RNA is not appreciably depressed, suggesting its differential effect on the DNA-directed and the RNA-directed RNA synthesis.

Acridines

Complexity of cytoplasmic RNA in different mouse tissues measured by hybridization of polyadenylated RNA to complementary DNA.

The kinetics of hybridization of polyadenylated RNA from mouse L-cells with complementary DNA (cDNA) synthesized with reverse transcriptase revealed three classes of differing abundance. The simplest interpretation requires three frequency classes representing polyadenylated RNA; 5, 45, and 50 percent of the total polyadenylated RNA and about 3, 300, and 7600 different RNA sequences of 6 times 10-5 daltons, respectively. The complementary DNA synthesized with L-cell polyadenylated RNA as template hybridized efficiently with RNA from different mouse tissues, indicating that most species of the L-cell RNA in the highand middle frequency class are present in all mouse tissues. Kinetics of hybridization of complementary DNA synthesized with cytoplasmic polyadenylated brain RNA as template suggested a higher complexity for brain RNA. Thirty-five percent of this brain cDNA failed to hybridize with L-cell RNA. This complementary DNA fraction, isolated by hydroxylapatite chromatography, represented approximately 11,000 RNA sequences specific for the brain. On the other hand, hybridization of complementary DNA synthesized on polyadenylated mouse liver RNA with L-cell RNA failed to demonstrate differences between these two groups of polyadenylated RNA.

Adenine Nucleotides

Epstein-Barr virus-specific RNA. III. Mapping of DNA encoding viral RNA in restringent infection.

Namalwa and Raji cells, originally obtained from a Burkitt tumor biopsy, grow as continuous cell lines in vitro and contain the Epstein-Barr virus (EBV)-related nuclear antigen EBNA (B. M. Reedman and G. Klein, Int. J. Cancer 11:499-520, 1973) and RNA homologous to at least 17 and 30% of the EBV genome, respectively (S. D. Hayward and E. Kieff, J. Virol. 18:518-525, 1976; T. Orellana and E. Kieff, J. Virol. 22:321-330, 1977). The polyribosomal and polyadenylated [poly(A)+] RNA fractions of Namalwa and Raji cells are enriched for a class of viral RNA homologous to 5 to 7% of EBV DNA (Hayward and Kieff, J. Virol. 18:518-525, 1976; Orellana and Kieff, J. Virol. 22:321-330, 1977). The objective of the experiments described in this communication was to determine the location within the map of the EBV genome (D. Given and E. Kieff, J. Virol. 28:524-542, 1978) of the DNA which encodes the viral RNA in the poly(A)+ and non-polyadenylated [poly(A)-] RNA fractions of Namalwa cells. Hybridization of labeled DNA homologous to Namalwa poly(A)+ or poly(A)- RNA to blots containing EcoRI, Hsu I, or Hsu I/EcoRI double-cut fragments of EBV (B95-8) or (W91) DNA indicated that these RNAs are encoded by DNA contained primarily in the Hsu I A/EcoRI A and Hsu I B/EcoRI A fragments and, to a lesser extent, in other fragments of the EBV genome. Hybridizations of Namalwa poly(A)+ and poly(A)- RNA in solution to denatured labeled EcoRI A or B fragments, Hsu I A, B, or D fragments, and Hsu I A/EcoRI A or Bam I S fragments and of Raji polyribosomal poly(A)+ RNA to the EcoRI A fragment indicated that (i) Namalwa poly(A)+ RNA is encoded primarily by 6 x 10(5) daltons of a 2 x 10(6)-dalton segment of DNA, Bam I S, which is tandemly reiterated, approximately 10 times, in the Hsu I A/EcoRI A fragment and is encoded to a lesser extent by DNA in the Hsu I B, EcoRI B, and Hsu I D fragments. Raji polyribosomal poly(A)+ RNA is encoded by a similar fraction of the EcoRI A fragment as that which encodes Namalwa poly(A)+ RNA. (ii) The fraction of the Bam I S fragment homologous to Namalwa poly(A)- RNA is similar to the fraction homologous to Namalwa poly(A)+ RNA. However, Namalwa poly(A)- RNA is homologous to a larger fraction of the DNA in the Hsu I B, Hsu I D, and EcoRI B fragments.

Cell Line

Control of ribosomal RNA synthesis in Escherichia coli. II. Ribosomal RNA synthesis in isolated nucleoids.

The effect of amino acid-starvation on the transcription in vitro of overall RNA and ribosomal RNA was investigated using nucleoids prepared from the exponentially growing and the amino acid-starved cells of rel+ and rel- strains of Escherichia coli. In this system, the synthesis of RNA is exclusively due to elongation of the chains which have been initiated in vivo. The amounts of overall and ribosomal RNA synthesized per unit of DNA in the nucleoids were analyzed for each preparation. The following observations have been made. (1) The total RNA synthesis per unit of DNA in the nucleoids from the amino acid-starved rel+ and rel- cells was not significantly different from each other. (2) The preferential ribosomal RNA synthesis occurred in the nucleoids from the growing cells; the ribosomal RNA synthesis was restricted in the nucleoids from the starved rel+ cells, while no restriction was observed in the nucleoids from the starved rel- cells. The results suggest that the ribosomal RNA synthesis is regulated at the initiation or less likely elongation level of the transcription. (3) A ribosomal RNA of a discrete size of about 30S was synthesized in the nucleoids. No mature ribosomal RNA species was produced in this system. The 30S RNA is probably a primary transcript of ribosomal RNA genes containing 23S, 16S and 5S mature ribosomal RNA sequences.

Cell-Free System

RNA-directed DNA synthesis by the DNA polymerase of Rous sarcoma virus: structural and functional identification of 4S primer RNA in uninfected cells.

The RNA-directed DNA polymerase of Rous sarcoma virus requires a 4S RNA molecule as primer for the initiation of DNA synthesis on the viral 70S RNA genome. We have now functionally identified primer activity in uninfected cells on the basis of the capacity of cellular 4S RNA to actively participate in the initiation of DNA synthesis by the RNA-directed DNA polymerase of Rous sarcoma virus in vitro. This was accomplished by reconstitution experiments in which 4S RNA from uninfected avian cells was tested for its ability to restore template activity to the viral RNA genome from which all primer had been removed. Similar reconstitution experiments were employed to demonstrate a primer activity in the 4S RNA population of duck, mouse, and human cells. Primer activity appears to be absent in lower eukaryotic or prokaryotic cells. Unambiguous identification of the Rous sarcoma virus primer molecule in uninfected cells was accomplished by directly purifying a 4S RNA molecule from the bulk of host cell transfer RNA and establishing structural similarities between this cellular 4S RNA species and the Rous sarcoma virus primer by two-dimensional paper electrophoresis of oligonucleotides obtained from a T1 ribonuclease digest of the RNA species. We conclude that the Rous sarcoma virus DNA polymerase can utilize a host cell molecule as primer for the initiation of RNA-directed DNA synthesis in vitro.

Animals

RNA-repelling Anionic Clusters in Human Rhinovirus Cooperate with Cationic Residues to Promote Virion Assembly and Restrain RNA Release.

Research on virus nucleic acid-protein interactions is important to understand infection and guide antiviral drug design. In previous studies we showed that the human rhinovirus (RV) genomic RNA is organized as a dodecahedral cage formed by 30 RNA duplex elements anchored to capsid concavities. We showed also that capsid-RNA duplex interactions include conserved tryptophans, neutral polar residues, and many positively charged residues that promote virion assembly and restrain RNA release by stabilizing the negatively charged RNA duplex structure. The present study expands our understanding of the capsid-RNA duplex interface in RV by addressing the structural and functional roles of conserved patches of negatively charged capsid residues interposed between each RNA duplex and its binding site at the capsid inner surface. The initial hypothesis was that electrostatic repulsion between anionic residues and RNA phosphates would lead to functional effects opposite to those previously found for cationic residues that can electrostatically attract RNA phosphates. In fact, those anionic residues do not oppose, but act together with cationic residues at the RNA duplex binding sites to promote virion assembly and restrain RNA release. Cryogenic electron microscopy analysis showed that negatively charged residues at the capsid-RNA duplex interfaces have a different structural role than positively charged residues, even though they all play similar functional roles. A tentative model is discussed to explain the functional effects of the complex distribution of negative and positive electrostatic potential found at capsid-RNA duplex interfaces in RV.

capsid

Stepwise dissociation of high molecular weight avian myeloblastosis virus RNA: 30-40S RNA subunits--the best natural template-primer for viral reverse transcriptase.

Controlled disruption of 60S AMV RNA with formamide was used to prepare 50-55S and 30-40S RNAS. When the activities of these RNAs as templates for AMV reverse transcriptase were compared it was found that 50-55S RNA was 1-5 times and 30-40S RNA 2 to 3 times more active than 60S RNA. The 30-40S RNA produced by heating, instead of formamide disruption, was inactive as a template but activity was restored by addition of oligo(dT). 40% of the 4S RNA initially associated with the 60S RNA remained associated with all the RNA species obtained by formamide treatment but was lost on heating. It is concluded that this RNA acts as resident primer whereas the other 60% of the 4S RNA is less firmly bound and appears to have little or no primer activity. Removal of the less firmly bound 4S RNA increases the template activity of the viral RNA.

Avian Leukosis Virus

Size and secondary structure of avian myeloblastosis virus associated ribosomal RNA: comparison with cellular and precursor ribosomal RNA.

Ribosomal RNA isolated from ribosomes present inside avian myeloblastosis virus (AMV) was characterized by electron microscopy using the formamide-urea spreading technique. The molecular weight and the secondary structures were compared with those of r-RNA and precursor r-NA isolated from host cells, the leukemic myeloblasts. The molecular weight of viral r-RNA (1.62 +/- 0.18 X 10(6) and 0.69 +/- 0.10 X 10(6)) and the molecular weight of cellular r-RNA (1.63 +/- 0.18 X 10(6) and 0.67 +/- 0.09 X 10(6)), the latter obtained from avian myeloblasts, were found to be identical and comparable with the molecular weight of chicken liver r-RNA. Likewise, the secondary structures of viral r-RNA were identical to those of cellular r-RNA. The postulated possible precursor character of viral r-RNA was excluded, since the molecules of viral r-RNA do not show any similarity to those of precursor r-RNA. Previously observed differences in behavior of viral and cellular (myeloblastic) r-RNA in sedimentation and electrophoretic mobility are discussed.

Animals

Isolation of a soluble and template-dependent poliovirus RNA polymerase that copies virion RNA in vitro.

A soluble RNA-dependent RNA polymerase was isolated from poliovirus-infected HeLa cells and was shown to copy poliovirus RNA in vitro. The enzyme was purified from a 200,000-X-g supernatant of a cytoplasmic extract of infected cells. The activity of the enzyme was measured throughout the purification by using a polyadenylic acid template and oligouridylic acid primer. The enzyme was partially purified by ammonium sulfate precipitation, glycerol gradient centrifugation, and phosphocellulose chromatography. The polymerase precipitated in a 35% saturated solution of ammonium sulfate, sedimented at about 7S on a glycerol gradient, and eluted from phosphocellulose with 0.15 M KC1. The polymerase was purified about 40-fold and was shown to be totally dependent on exogenous RNA for activity and relatively free of contaminating nuclease. The partially purified polymerase was able to use purified polio virion RNA as well as a template. Under the reaction conditions used, the polymerase required an oligouridylic acid primer and all four ribonucleside triphosphates for activity. The optimum ratio of oligouridylic acid molecules to poliovirus RNA molecules for priming activity was about 16:1. A nearest-neighbor analysis of the in vitro RNA product shows it to be heteropolymeric. Annealing the in vitro product with poliovirus RNA product shows it to be heteropolymeric. Annealing the in vitro product with poliovirus RNA rendered it resistant to RNase digestion, thus suggesting that the product RNA was complementary to the virion RNA template.

Cell-Free System

RNA metabolism of murine leukemia virus II. Endogenous virus-specific RNA in the uninfected BALB/c cell line JLS-V9.

Type C virus-specific RNA sequences of BALB/c endogenous virus were detected in JLS-V9 cells (an uninfected BALB/c derived line) by annealing cell RNA with 3-H-labeled virus-specific DNA. Endogenous viruses used in preparing the 3-H-labeled DNA (mostly xenotropic) was prepared from JLS-V9 cells induced to produce virus with iododeoxyuridine. In whole-cell extracts, two virus-specific RNA species, 38S and 27S, were detected. No 60 to 70S virus-specific RNA was found. The same two species of virus-specific RNA were observed in isolated cytoplasmic RNA and in cytoplasmic RNA selected for polyadenylic acid-containing species by binding and elution from oligo(dT) cellulose. Very little, if any, of the virus-specific RNA was active as messenger RNA on polyribosomes. No virus-specific RNA transcribed from genes coding for the BALB/c endogenous N-tropic virus was detected, since 3-H-labeled DNA prepared from endogenous N-tropic virus did not hybridize measurably with JLS-V9 RNA.

Animals

A RNA-dependent RNA polymerase activity: implications for chromatin transcription experiments.

Mercurated nucleoside triphosphates have been used for transcription of chicken oviduct chromatin with E. coli RNA polymerase. The newly synthesized RNA was purified from preexisting RNA by SH-agarose chromatography and analyzed for the content of specific mRNA sequences. The apparent preferential production of ovalbumin mRNA sequences was not inhibited by actinomycin D, although total RNA synthesis was reduced by more than 90%. Furthermore, when globin mRNA alone, or added to oviduct chromatin, was incubated in the transcription assay, a significant fraction of this mRNA was retained on SH-agarose. The copurification of chromatin associated RNA with in vitro synthesized mercurated RNA was mainly due to a RNA-dependent synthesis of complementary sequences by the bacterial enzyme. Although denaturation of the transcripts prior to SH-agarose chromatography leads to a reduced contamination with endogenous ovalbumin specific RNA, we are unable to show that the messenger-specific RNA sequences purified with the newly mercurated RNA results from a DNA-dependent reaction.

Animals

Structure of coxsackievirus cloverleaf RNA and 3Cpro dimer establishes the RNA-binding mechanism of enterovirus protease 3Cpro.

In positive-strand RNA viruses, the genome serves as a template for both protein translation and negative-strand RNA synthesis. Enteroviruses use the cloverleaf RNA structure at the 5' end of the genome to balance these two processes. Cloverleaf acts as a promoter for RNA synthesis and forms a complex with viral 3CD protein, the precursor to 3Cpro protease, and 3Dpol polymerase. The interaction between cloverleaf and 3CD is mediated by the 3Cpro domain, yet how 3Cpro promotes specific RNA-binding is not clear. We report the structure of coxsackievirus cloverleaf RNA-3Cpro complex, wherein two 3Cpro molecules interact with cloverleaf stem-loop D. 3Cpro dimer mainly recognizes the shape of the dsRNA helix through symmetric interactions, suggesting that 3Cpro is a previously undiscovered type of RNA binding protein. We show that 3CD protein also dimerizes on cloverleaf RNA and binds the RNA with higher affinity than 3Cpro. The structure provides insight into the RNA-binding mechanism of 3Cpro or 3CD with other cis-acting replication elements.

RNA, Viral

Sequences related to the RNA tumor viruses in the RNA and DNA of human leukemias and lymphomas.

DNA-RNA hybridization was used to explore whether human neoplasias contain RNA molecules having sequence homologies to those of the RNA tumor viruses known to cause similar diseases in animals. The pattern of specific RNAs found in the human tumors showed a remarkable concordance with the predictions deducible from the animal systems. Thus human breast cancer contains RNA homologous only to that of the murine mammary tumor virus (MMTV). Human leukemias, sarcomas, and lymphomas (including Hodgkin's and Burkitt's) all contain RNA with sequence homology to the murine leukemia virus (RLV) and not to MMTV RNA. Finally, as in the case of the mouse, none of the human tumors examined contain RNA related in sequence to that of the avian myeloblastosis virus (AMV). The RNA detected in all of the human neoplasias was demonstrated to be of high molecular weight (1 times 10(7) daltons) and encapsulated with a reverse transcriptase in particles having densities between 1.16-1.19 g/ml. Further, the RNA of these human tumor particles was related in sequence to the murine viruses that cause the corresponding neoplasias in mice. Thus, 4 features diagnostic for the murine oncogenic viruses are satisfied by the particles found in the human cancers. Finally, it was shown by "recycling" experiments that the DNA from human leukemic cells and from lymphomatous tissue contained particle-related sequences that could not be detected in normal DNA. This finding was further substantiated by studies with identical twins in which it was shown that the leukemic twin contained particle-related sequences that could not be detected in the leukocytes of his identical healthy sibling. These findings are inconsistent with hypotheses that require chromosomal transmission in the germ line of complete copies of the information required to produce malignancy and the associated virus particles.

Animals

Transcription of double-stranded RNA by Escherichia coli DNA-dependent RNA polymerase.

Double-stranded RNA of some virus genomes can be used as template for the DNA-dependent RNA polymerase purified from Escherichia coli. The RNA synthesis requires all four nucleoside triphosphates and manganese ions and is dependent on the presence of sigma subunit. The reaction is inhibited by rifampicin, streptolydigin and ethidium bromide, but not by DNase and actinomycin D which does not bind to double-stranded RNA. The template activity of double-stranded RNA from various viruses is different in each case. The order of template efficiency is Penicillum chrysogenum virus greater than cytoplasmic polyhedrosis virus greater than rice dwarf virus greater than reovirus. The product obtained using cytoplasmic polyhedrosis virus double-stranded RNA as template is single-stranded and hybridizes specifically to the denatured template RNA. One of the major 5'-starting nucleotide sequences of the product RNA is pppA-A-Y--. These results indicate that transcription in vitro of double-stranded RNA by E. Coli RNA polymerase is initiated at specific sites on the template.

Animals

Epstein-Barr virus-specific RNA. I. Analysis of viral RNA in cellular extracts and in the polyribosomal fraction of permissive and nonpermissive lymphoblastoid cell lines.

We analyzed the viral RNA in permissive and nonpermissive Epstein-Barr virus (EBV) Pinfected lymphoblastoid cell lines by observing the kinetics of hybridization of labeled EBV HR-1 DNA with unalabeled RNA extracted from whole cells or from the polyribosomal fraction. The data indicate the following. (i) RNA, homologous to only 3% of the EBV HR-1 DNA, is present in the polyribosomal fraction of the nonpermissive Namalwa and Kurgans cells, suggesting that the function of only a small fraction of the EBV genome is required for the expression of the EBV-related intranuclear antigen and to maintain lymphoblastoid cells in a transformed state. (ii) In general, the extent of the viral DNA sequences transcribed into stable RNA correlates with the extent of phenotypic expression of the EBV geonome. RNA extracted from virus-producing HR-1 cells contains RNA sequences transcribed from at least 45% of the viral DNA, whereas the nonpermissive cell lines contain transcripts homologous to a much smaller proportion of the EBV DNA. (iii) Viral RNA sequences found in the polyribosomal fraction of HR-1 cells arise from almost the same template as the viral RNA sequences in extracts of infractionated HR-1 cells. In contrast, in nonpermissive lymphoblastoid cells, less than 30% of the viral RNA species found in whole-cell extracts can be identified in the polyribosomal fraction. We interpret these observations to indicate that the expression of EBV genetic information is regulated in at least two ways: first, by some mechanism that regulates which DNA sequences give rise to stable RNA; second, through a mechanism whereby certain viral RBA transcripts are selectively excluded from stable association with the polyribosomes.

Antigens, Viral

In vitro RNA transcription by the New Jersey serotype of vesicular stomatitis virus. II. Characterization of the leader RNA.

The New Jersey serotype of vesicular stomatitis virus (VSV) was able to synthesize a small RNA (leader RNA) approximately 70 bases in length similar to the leader RNA synthesized in vitro by the genetically distinct Indiana serotype of VSV. Also, the New Jersey leader RNA contained the same 5'-terminal sequence, ppA-C-G, as the Indiana leader RNA and had a very similar base composition, with 42% AMP, 16% CMP, 18.6% GMP, and 23.4% UMP. The 3'-terminal sequence of the VSV New Jersey genome RNA was detemined and found to contain the sequence- Py-G-UOH, again the same as that of the Indiana serotype of VSV. Evidence that the New Jersey leader RNA is transcribed from the 3' end of the genome RNA was obtained from the fact that it can protect the 3'-terminal base of [3H]borohydride-labeled New Jersey genome RNA from RNase digestion. Although the New Jersey and Indiana leader RNAs were similar in many respects, they were unable to form RNase-resistant hybrids when annealed to heterologous genome RNA.

Base Sequence