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At least 523 records · Page 29Linked to original sources

Virus-specific nucleic acids in SV40-exposed hamster embryo cell lines: correlation with S and T antigens.

A number of homologous SV40-exposed hamster embryonic cell lines were examined for the presence of RNA complementary to SV40 DNA. Only those lines containing the SV40 T antigen were found to have such virus-specific RNA. In lines containing the SV40 S antigen, but not the SV40 T antigen, virus-specific RNA was not detected. These findings suggest that the S antigen is not coded for directly by the SV40 genome.

Animals↗

Detection of yeast ribosomal RNA sequences in E. coli infected with hybrid bacteriophage.

Yeast ribosomal DNA was inserted into Escherichia coli on a bacteriophage vector and the host cell RNA was then extracted and analyzed for the presence of yeast ribosomal RNA sequences. RNA complementary to yeast rDNA was detected by hybridization. The transcription of yeast rDNA was found to be independent of phage RNA synthesis and to occur on the same DNA strand as rRNA transcription in yeast. However, hybridization to restriction fragments of yeast rDNA suggested that the RNA species detected in E. coli differ somewhat from authentic yeast rRNA.

Base Sequence↗

Mechanism of post-segregational killing by the hok/sok system of plasmid R1: sok antisense RNA regulates formation of a hok mRNA species correlated with killing of plasmid-free cells.

The hok/sok system of plasmid R1, which mediates plasmid stabilization via killing of plasmid-free segregants, encodes two genes: hok and sok. The hok gene product is a potent cell-killing protein. The expression of hok is regulated post-transcriptionally by the sok gene-encoded repressor, an antisense RNA complementary to the hok mRNA leader region. We show here that the hok mRNA is very stable, while the sok RNA decays rapidly. We also observe a new hok mRNA species which is 70 nucleotides shorter in the 3'-end than the full-length hok transcript. The appearance of the truncated hok mRNA was found to be regulated by the sok antisense RNA. Furthermore, the presence of the truncated hok mRNA was found to be correlated with efficient expression of the Hok protein. On the basis of these findings, we propose an extended model in order to explain the killing of plasmid-free segregants by the hok/sok system.

Base Sequence↗

Suppression of ColE1 RNA-RNA mismatch mutations in vivo by the ColE1 Rop protein.

In the bacterial plasmid ColE1 the control of initiation of DNA replication is mediated by the interaction of two complementary RNA molecules, the replication primer and RNA1. The rate of interaction between RNA1 and the primer RNA in vitro can be increased by the product of the ColE1 rop gene, a 63-amino-acid polypeptide. We have investigated the role of the Rop protein in suppressing the incompatibility defects of 13 RNA1-mutant alleles. These RNA1 mutants are defective due to single nucleotide mismatches with their target, the primer RNA. The rop gene suppresses the defective behavior of most of the RNA1 point mismatch mutants in vivo. However, certain mutations that map in stems I and III of RNA1 are not suppressed by rop. The interaction of wild-type and mutant species of RNA1 with ColE1 replication primer transcripts was studied in vitro in the presence or absence of purified Rop protein. The Rop protein is known to increase the rate of wild-type RNA1-primer interaction about twofold in vitro. This enhancement was also observed for mutant RNA1 species having point alterations or a deletion of the 5' terminus of RNA1, which is consistent with the in vivo suppression results. The implications of these results on the mechanism of Rop activity are considered.

Bacterial Proteins↗

Model RNA-directed DNA synthesis by avian myeloblastosis virus DNA polymerase and its associated RNase H.

A model RNA template-primer system is described for the study of RNA-directed double-stranded DNA synthesis by purified avian myeloblastosis virus DNA polymerase and its associated RNase H. In the presence of complementary RNA primer, oligo(rI), and the deoxyribonucleoside triphosphates dGTP, dTTP, and dATP, 3'-(rC)30-40-poly(rA) directs the sequential synthesis of poly(dT) and poly(dA) from a specific site at the 3' end of the RNA template. With this model RNA template-primer, optimal conditions for double-stranded DNA synthesis are described. Analysis of the kinetics of DNA synthesis shows that initially there is rapid synthesis of poly(dT). After a brief time lag, poly(dA) synthesis and the DNA polymerase-associated RNase H activity are initiated. While poly(rA) is directing the synthesis of poly(dT), the requirements for DNA synthesis indicate that the newly synthesized poly(dT) is acting as template for poly(dA) synthesis. Furthermore, selective inhibitor studies using NaF show that activation of RNase H is not just a time-related event, but is required for synthesis of the anti-complementary strand of DNA. To determine the specific role of RNase H in this synthetic sequence, the primer for poly(dA) synthesis was investigated. By use of formamide--poly-acrylamide slab gel electrophoresis, it is shown that poly(dT) is not acting as both template and primer for poly(dA) synthesis since no poly(dT)-poly(dA) covalent linkages are observed in radioactive poly(dA) product. Identification of 2',3'-[32P]AMP on paper chromatograms of alkali-treated poly(dA) product synthesized with [alpha-32P]dATP as substrate demonstrates the presence of rAMP-dAMP phosphodiester linkages in the poly(dA) product. Therefore, a new functional role of RNase H is demonstrated in the RNA-directed synthesis of double-stranded DNA. Not only is RNase H responsible for the degradation of poly(rA) following formation of a poly(rA)-poly(dT) hybrid but also the poly(rA)fragments generated are serving as primers for initiation of synthesis of the second strand of the double-stranded DNA.

Avian Leukosis Virus↗

Ribonucleoprotein organization of eukaryotic RNA. XXXI. Structure of the U1 small nuclear ribonucleoprotein.

A small nuclear ribonucleoprotein, U1 snRNP, has been implicated in mRNA processing. In this investigation sites of protein binding on U1 RNA were mapped by nuclease protection and RNA sequencing. Partially purified human U1 snRNP was sequentially digested with Escherichia coli RNAase III and S1 nuclease. The resistant ribonucleoprotein fragments were deproteinized, preparatively hybridized to the U1 RNA--complementary DNA strand of a human U1 gene cloned in bacteriophage M13, and displayed by electrophoresis. The nuclease-resistant U1 RNA fragments were between 23 and 63 nucleotides in length. Most of these fragments were not obtained when protein-free U1 RNA was similarly digested, whereas others were obtained in low yield from U1 RNA and much higher yield from U1 snRNP. RNA sequencing of the fragments revealed that the protein-protected sites in U1 snRNP correspond to base-paired stems I and II, loop a, and portions of stems III and IV (secondary structure nomenclature of Branlant et al., 1981). Single, "bulged" pyrimidines are present within the protein-covered helical regions of stems I and III. Most interestingly, the single-stranded 5' end of U1 RNA, implicated in mRNA splicing, was also highly protected by protein. These results demonstrate that the great majority of U1 RNA is covered by protein in U1 snRNP. The association of protein with the 5' end of U1 RNA is in agreement with recent evidence that snRNP proteins potentiate the binding of this region of U1 RNA with pre-mRNA splice sites.

Autoradiography↗

Alternative conformations of the ColE1 replication primer modulate its interaction with RNA I.

Replication of the ColE1 plasmid is regulated by the interaction of its primer RNA with a small countertranscript (RNA I) that acts as a repressor of functional primer formation. The interaction is dependent on the specific conformations of the complementary RNA molecules. Early in its synthesis, primer adopts an "anti-RNA I" configuration. As transcription proceeds, it is preempted by formation of an alternative domain designated stem-loop IV. This conformational transition has a significant effect on the rate of association of RNA I with the primer in vitro. Nascent primer in the "anti-RNA I" conformation (135 nucleotides) interacts with RNA I 6-fold faster than primer in the stem-loop IV conformation (241 nucleotides), and 35-fold faster than a 567 nucleotide primer precursor. We propose that a conformation-dependent "window of susceptibility" of primer to RNA I exists during primer transcription, and that altered conformations play a role in modulating the rate of functional primer formation.

Bacteriocin Plasmids↗

Deoxyribonucleic acid-ribonucleic acid hybridization. Annealing and quantitative recovery of intact ribosomal ribonucleic acid molecules from hybrids.

A simple and efficient method for hybridization and subsequent recovery of non-fragmented ribosomal RNA from the hybrid is described. The procedure involves annealing of immobilized denatured DNA bound on cellulose nitrate membrane filters to complementary RNA in 50% (v/v) formamide-0.33m-potassium chloride-10mm-tris-hydrochloric acid buffer, pH7.4, at 33 degrees for 3hr. Under these conditions no detectable changes in the sedimentation coefficients of the input RNA were detected. The RNA can subsequently be recovered quantitatively from the hybrid in intact form by incubating the filters in formamide or in 85% (v/v) dimethyl sulphoxide. The applicability of the method for the evaluation of the absolute size of ribosomal RNA cistrons in Escherichia coli DNA and for the determination of the size of messenger RNA molecules is discussed.

Buffers↗

Efficient initiation of HIV-1 reverse transcription in vitro. Requirement for RNA sequences downstream of the primer binding site abrogated by nucleocapsid protein-dependent primer-template interactions.

Synthesis of HIV-1 (-) strong-stop DNA is initiated following annealing of the 3' 18 nucleotides (nt) of tRNA(3)(Lys) to the primer binding site (PBS) near the 5' terminus of viral RNA. Here, we have investigated whether sequences downstream of the PBS play a role in promoting efficient (-) strong-stop DNA synthesis. Our findings demonstrate a template requirement for at least 24 bases downstream of the PBS when tRNA(3)(Lys) or an 18-nt RNA complementary to the PBS (R18), but not an 18-nt DNA primer, are used. Additional assays using 18-nt DNA-RNA chimeric primers, as well as melting studies and circular dichroism spectra of 18-nt primer:PBS duplexes, suggest that priming efficiency is correlated with duplex conformation and stability. Interestingly, in the presence of nucleocapsid protein (NC), the 24 downstream bases are dispensable for synthesis primed by tRNA(3)(Lys) but not by R18. We present data supporting the conclusion that NC promotes extended interactions between the anticodon stem and variable loop of tRNA(3)(Lys) and a sequence upstream of the A-rich loop in the template. Taken together, this study leads to new insights into the initiation of HIV-1 reverse transcription and the functional role of NC-facilitated tRNA-template interactions in this process.

Base Sequence↗

Use of nucleic acid hybridization for specific detection of submicrogram quantities of DNA, and its application to human plasma.

A technique is described for using radiolabeled RNA complementary to human DNA as a probe for the specific identification of submicrogram concentrations of human DNA by formation of RNA-DNA hybrids. An example is given of its application to the semiquantitation of human DNA in human plasma, a substance that is ordinarily difficult to examine because materials are present that interfere with the usual colorimetric or fluorometric assays. An example is also given of the use of an analogous approach to analyzing rabbit serum for circulating bacterial DNA. Unique to the hybridization technique is a degree of specificity sufficient to identify specific base sequences and hence the origin of the DNA being detected, a point that may be important in the examination of circulating DNA reported to occur in patients with systemic lupus erythematosis. This technique may also be of value in clarifying the presently conflicting data regarding the occurrence of free DNA in the normal human circulation.

Animals↗

In situ hybridization with non-radioactive digoxigenin-11-UTP-labeled cRNA probes: localization of developmentally regulated mouse tenascin mRNAs.

An improved method for in situ hybridization was developed in order to identify the tissue-specific expression of messenger RNA (mRNA) for the novel extracellular matrix glycoprotein, tenascin, during mouse development. Non-radioactive RNA probes were generated by incorporating digoxigenin-11-UTP instead of conventional isotopic labels. Hybridization of anti-sense probes to complementary mRNAs was detected by a chromogenic staining reaction catalyzed by an anti-digoxigenin antibody-alkaline phosphatase conjugate. Markedly improved enhancement of staining was achieved by expanding the complexity of probes and strictly controlling the degree of proteolytic digestion of paraformaldehyde-fixed tissue sections. Six different complementary RNA (cRNA) probes representing most of the tenascin mRNA sequence were prepared. Very weak signals were obtained after single applications of each probe, but strong specific signals were present when all six probes were mixed together. In either case, no signal was found without prior proteolytic digestion of tissue sections with proteinase K. Treatment with increasing concentrations of proteinase K initially resulted in increased sensitivity of signal detection, but extensive digestion resulted in histological sections of poor quality for light microscopy. Optimal conditions varied according to the tissue type examined. In lung, in situ hybridization detected tenascin mRNA in the relatively large cells lining alveolar walls adjacent to type I pneumocytes. In cerebellum, glial cells of the Purkinje cell layer contained tenascin mRNA, but Purkinje cells did not. In both cases, hybridization signals were confined to the cytoplasm of cells, and no extracellular staining was observed. This method provides a promising new tool for analysis of spatio-temporal regulation of tenascin gene expression during embryogenesis and oncogenesis.

Animals↗

Muscle differentiation: insulin-like growth factors as positive modulators of myogenic regulatory genes?

The contribution of autocrine production of insulin-like growth factor II (IGFII) to myogenic differentiation was studied in the mouse myogenic C2 cells. Permissive C2 cells were stably transfected with a vector generating antisense RNA complementary to IGF RNAs. Our results show that: (1) accumulation of IGFII mRNA is dramatically decreased (this mRNA is undetectable by RNA blotting); (2) accumulation of MyoD mRNA also becomes undetectable by RNA blot analysis; (3) the ability of the cells to differentiate, including the activation of myogenin and myosin genes, is severely compromised; (4) expression of the MyoD genes and the ability to differentiate are restored following the addition of insulin or IGF to the cells. Our observations indicate that the autonomous differentiation of myogenic cells requires autocrine production of IGF and raise the possibility that IGFII positively regulates expression of the MyoD gene, one of the members of the myogenic regulatory factor family.

Animals↗

Expression of snowshoe hare bunyavirus S RNA coding proteins by recombinant baculoviruses.

Recombinant baculoviruses have been constructed that express the two snowshoe hare (SSH) bunyavirus proteins coded in overlapping reading frames of the SSH S viral-complementary RNA species (namely the nucleoprotein, N, and the nonstructural protein, NSS). The 26.5 kDa N protein, which is read from the first AUG of the mRNA containing the SSH S sequence, was expressed at a high level (estimated to be ca 40% of the stained cellular proteins in recombinant baculovirus-infected Spodoptera frugiperda cells). This level of expression was much higher than that of the 10.5 kDa NSS protein made at the same time (estimated to be less than 1% of the stained proteins), presumably due in part to lower levels of translation initiation from the second AUG (19 nucleotides downstream). Bal31 nuclease digestion was used to delete the first ATG of the SSH DNA sequence in the baculovirus transfer vector and BamHI was used to remove downstream N coding sequences. A second recombinant baculovirus was constructed from the products that only expressed the SSH NSS protein. The yield of NSS protein was estimated to be of the order of ca 2% of the stained cellular proteins. A third recombinant transfer vector made from the products of the Bal31 digestion, fortuitously possessed a new ATG 8-10 nucleotides upstream of the NSS ATG. A recombinant virus derived from this vector synthesized essentially similar quantities (ca 2% each) of both the NSS protein and a 16.7 kDa N-related product.

Amino Acid Sequence↗

Rearrangement of a 1,3-trans-[Pt(NH3)2[(GXG)-N7G,N7G]] intrastrand cross-link into interstrand cross-links within RNA duplexes.

The cross-linking reaction described previously in the DNA and 2'-O-methyl RNA series is extended to RNA duplexes. A 17mer single-stranded RNA containing the 1,3-trans-[Pt(NH3)2[(GAG)-N7G,N7G]] intrastrand chelate, named G*AG* (* indicating a platinated base) gives, upon pairing with the complementary RNA strand, the G*AG/CUC* interstrand cross-link. The rate of the reaction in 200 mM NaClO4 is similar to that observed for DNA-RNA duplexes. It depends on the added Na+ or Mg2+ cation and on its concentration. RNA duplexes containing GA/GA or AG/AG tandem mismatches in the rearrangement triplet core were also studied. The major interstrand cross-links, G*AG/CGA* and G*AG/AGC*, are accompanied by a minor one involving the central G of the CGA or AGC complementary sequence G*AG/CG*A and G*AG/AG*C. In 200 mM NaClO4, the G*A/GA tandem mismatch does not modify the rate of the cross-linking rearrangement whereas the AG*/AG mismatch slows it down by a factor of four. Our results reflect the predominance of the local structure of the rearrangement core over the nucleophility of the cross-linking base. They also show that the reaction could be used to trap tertiary structures of naturally occurring RNAs, including those with the commonly encountered GA/GA mismatch.

Base Pairing↗

Completion of avian retroviral DNA replication intermediates inhibited by antisense RNA.

High level expression of RNA complementary to either neo(r) or src sequences located near the 3' end of recombinant retroviral vectors derived from Rous sarcoma virus inhibited viral replication. Stable integration of proviral DNA was not detected in the presence of antisense RNA. We investigated the mechanism of this inhibition by determining the structure of unintegrated viral DNA (vDNA) intermediates accumulating in the presence of the anti-sense RNA. The major vDNA intermediate detected was a full-length duplex linear molecule with complementary single-stranded long terminal repeats (LTRs). These vDNA linears could be joined directly by T4 DNA ligase to form junctions which contained a single normal LTR. These results can be explained by arrest of linear vDNA formation before strand displacement results in completion of the LTRs. Isolation of these sticky-ended intermediates as linear rather than nicked circular molecules suggests that these complementary vDNA LTR segments were not hydrogen bonded in the infected cell and further implies that completion of LTR synthesis is an ordered, controlled process.

Animals↗

Temperature-sensitive mutants in the vaccinia virus A18R gene increase double-stranded RNA synthesis as a result of aberrant viral transcription.

Mutations in the vaccinia gene A18R cause activation of the cellular ribonucleolytic 2-5A pathway. To determine the mechanism of 2-5A pathway activation, mutant infections were analyzed for synthesis of double-stranded RNA and for transcription of individual virus genes. At late times postinfection, A18R mutant-infected cells contained an increased amount of complementary RNA and a higher steady state level of RNA from regions of the genome transcribed normally only early in the infection. The phenotype of A18R ts mutants is indistinguishable from that of wild-type infections done in the presence of isatin-beta-thiosemicarbazone (IBT). Actinomycin D is a potent inhibitor of activation of the 2-5A pathway in IBT-treated wt infections. Based on these observations, we conclude that the phenotype induced by A18R mutants or by IBT treatment of wt infections is caused by a loss of control of late viral transcription.

2',5'-Oligoadenylate Synthetase↗

Probing FinO-FinP RNA interactions by site-directed protein-RNA crosslinking and gelFRET.

The conjugative transfer of F-plasmids is repressed by a two-component system, which consists of the antisense RNA FinP and the protein FinO. FinO binds FinP, protecting it from endonucleolytic degradation and facilitating duplex formation between FinP and its complementary RNA. Here we present the results of site-specific protein-RNA cross-linking and gel-based fluorescence resonance energy transfer (gelFRET) experiments used to probe the structure of a complex of FinO bound to an RNA target consisting of a duplex with 5' and 3' single-stranded tails. The crosslinking experiments reveal that an extensive, largely positively charged surface on FinO contacts RNA. The gelFRET measurements indicate that the 5' single-stranded tail of the RNA is in closer contact with much of the protein than the distal, blunt end of the RNA duplex. These data suggest that significant conformational adjustments in the protein and/or the RNA accompany complex formation.

Bacterial Proteins↗

Cloning and sequencing of a deoxyribonucleic acid copy of glyceraldehyde-3-phosphate dehydrogenase messenger ribonucleic acid isolated from chicken muscle.

Glyceraldehyde-3-phosphate dehydrogenase (GAPDH) was purified from the breast muscles of 3-week-old chickens and used to raise a specific antiserum in rabbits. This antiserum was coupled to an in vitro translation assay to monitor the purification of GAPDH mRNA. RNA was isolated from identical breast muscles and consecutively fractionated with several techniques to yield a preparation of GAPDH mRNA which was at least 50% pure. Double-stranded cDNA was made against this purified RNA, inserted into pBR322, and used to transform Escherichia coli. Recombinants were screened by colony filter hybridization with a cDNA probe made against the purified RNA. The hybridization-positive clone with the largest insert, pGAD-28, was then characterized by using pGAD-28-cellulose to select complementary RNA from total poly(A) RNA and then translating the hybridization-selected RNA in vitro. The single translation product was shown to be GAPDH by (1) comigration with pure GAPDH on sodium dodecyl sulfate-polyacrylamide gels, (2) precipitation with specific anti-GAPDH antiserum, (3) cyanylation fingerprinting, and (4) AMP-agarose affinity chromatography. pGAD-28 was mapped with several restriction enzymes and then sequenced by the method of Maxam and Gilbert [Maxam, A. M., & Gilbert, W. (1977) Proc. Natl. Acad. Sci. U.S.A. 74, 560]. The 1261-nucleotide insert was found to contain 29 nucleotides of noncoding sequence at the 5' end, the entire coding region, and 230 nucleotides of the 3'-noncoding region including a poly(A) addition signal (AATAAA) and the first five residues of the poly(A) tail.

Animals↗