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Methods for cDNA cloning and sequencing tobacco mosaic virus RNA.

DNA complementary to tobacco mosaic virus (TMV) RNA (cDNA) was prepared by priming reverse transcription with synthetic oligonucleotides. The cDNAs terminated prematurely at many specific sites and no transcripts longer than about 2000 nucleotides were obtained. However, the entire 6395 nucleotide long TMV RNA could be copied into cDNA by specific priming with a series of 13 to 17 residue long oligonucleotides or by non-specific priming with short, 4 to 7 residue, oligonucleotides. A number of different priming methods were used to convert the cDNA into double-stranded DNA (dsDNA). The double-stranded cDNA was recovered by shotgun cloning into M13 and analysed by sequencing. The frequency at which cDNA clones were recovered has been used to compare various cDNA cloning strategies.

Base Sequence↗

Identification of multiple species of calmodulin messenger RNA using a full length complementary DNA.

Poly(A) RNA from eel electroplax was used to construct a full length cDNA complementary to calmodulin (CaM) mRNA which was cloned in the PstI site of pBR322 DNA. Recombinant plasmids containing sequences complementary to CaM mRNA were identified by hybridization using a 32P-labeled CaM cDNA (pCM109). Nucleotide sequence analysis reveals that the clone from the plasmid pCM116 contains a 5' nontranslated region of 26 nucleotides, the entire coding region, and a 3' nontranslated region of 408 nucleotides. The amino acid sequence deduced from the nucleotide sequence is similar to those previously reported for CaM from other species. Comparison between the nucleotide sequence of the functional domains of the protein shows extensive homology between all four domains. pCM116 was utilized to determine and compare the populations of RNA present in different tissues. In eel electroplax, three species of cytoplasmic RNAs at 820, 1100, and 2000 nucleotides hybridize to the cDNA probe. The nucleus contains an additional CaM RNA molecule of 5500 nucleotides which may represent a primary transcript of the calmodulin gene. Sequence analysis of the 3' noncoding region of pCM116 reveals 3 possible polyadenylation sites (AATAAA) at positions 573, 580, and 855. The mRNA of 820 nucleotides was derived by polyadenylation at the first site whereas the mRNA of 1100 nucleotides was derived by poly(A) addition at position 855. These data are compatible with the idea that at least 2 of the 3 CaM mRNAs in eel electroplax tissue are derived from a single nuclear transcript by differential polyadenylation during processing.

Amino Acid Sequence↗

Genetic individuality of intracisternal A-particles of Mus musculus.

The nucleic acid sequence relationship between mouse intracisternal type A-particles and type C and B viruses was examined by reciprocal complementary DNA-RNA hybridization; complementary DNAs prepared from the RNAs of intracisternal A-particles were hybridized with high-molecular-weight RNAs from a variety of murine tumor viruses, and complementary DNAs representing a variety of RNA tumor virus genomes were hybridized with the high-molecular-weight RNAs from A-particles. The criterion for homology between two types of virus was that the heterologous hybridization reaction occurs over the same RNA concentration range as the homologous reacton. The results of these hybridizations indicate that there are no major sequence homologies between the RNA of intracisternal A-particles and the RNA of representative members of type B and C viruses of Mus musculus.

Animals↗

Primary sequence of ovomucoid messenger RNA as determined from cloned complementary DNA.

Ovomucoid messenger RNA (mRNAom) comprises approximately 8% of the total mRNA in the estrogen-stimulated oviduct. The recombinant plasmid pOM100 contained DNA complementary to the 3' end of mRNAom. DNA complementary to the 5' end of mRNAom was obtained from a partially purified preparation of mRNAom by polymerization by reverse transcriptase in the presence of a restriction fragment primer from pOM100. The complementary DNA mixture was amplified by molecular cloning using poly dG/dC tailing to form recombinant bacterial plasmids. Recombinant plasmids containing ovomucoid DNA sequences were selected by in situ hybridization to 32P-labeled pOM100 fragments. The longest plasmid containing ovomucoid DNA sequences was designated pOM502. The complete DNA sequence of both pOM100 and pOM502 was determined. The two plasmids appear to contain sequences complementary to the entire length of mRNAom. The nucleic acid sequence agrees with the known amino acid sequences for both ovomucoid and its N-terminal signal peptide. Highly homologous sequences occur in two regions that coincide with structural domains of the protein. Comparison of the sequence of mRNAom with that for other eucaryotic mRNAs allowed identification of possible functional regions in the mRNA molecule.

Animals↗

Ribonucleic acid synthesis in cells infected with influenza virus.

Virus-specific ribonucleic acid (RNA), synthesized in influenza virus-infected cells from 3.5 to 7.5 hr after infection, was studied. After velocity centrifugation in sucrose, three peaks of virus-specific RNA could be identified: 34S, 18S, and 11S. These RNA species are predominantly single-stranded and consist of 90% viral (plus) and 10% complementary (minus) RNA strands. Most (75%) of the complementary RNA is single-stranded, i.e., not part of RNA duplexes or replicative intermediates. The 34S RNA species is an aggregate of 18S and 14S RNA species. Both 18S and 11S RNA species are relatively heterogenous compared to 18S ribosomal RNA, and these species probably contain different RNA molecules having closely related sedimentation coefficients.

Animals↗

RNA synthesis in cells infected with herpes simplex virus. XII. Sequence complexity and properties of RNA differing in extent of adenylation.

Fractionation of polyadenylated RNA from cells infected with herpes simplex virus by affinity chromatography on columns of poly (U) immobilized on glass-fiber filters yielded three major classes of RNA-containing poly(A) chains with average lengths of 30, 50, and 155 adenylate residues [poly(A)30, poly(A)50, poly(A)155]. In contrast, nitrocellulose membranes bound predominantly a fraction of RNA containing poly(A)155. The distribution of cytoplasmic RNA in the three classes was found to be independent of the labeling interval, ranging from 10 min to 6 h. Cytoplasmic poly(A) RNA consisted mainly (57 to 68%) of the poly(A)155 class; this was also the major class (68%) of polyadenylated RNA found in polyribosomes. Nuclear poly(A) RNA consisted largely (42 to 50%) of poly(A)30 class, whereas high-molecular-weight nuclear RNA sedimenting at greater than 45S contained almost exclusively the poly(A)30 tracts. Hybridization experiments involving unlabeled RNA and labeled viral DNA demonstrated the presence of viral RNA sequences complementary to approximately 40% of viral DNA in all polyadenylated RNA classes. Inasmuch as unfractionated cytoplasmic RNA arises from approximately 40% of the viral DNA, we conclude that most, if not all, viral RNA species present in the cytoplasm are adenylated. In contrast to these results, only a fraction of poly(A)155 RNA, complementary to 21% of viral DNA, bound to nitrocellulose filters. The selective binding of poly(A)155 sequences to nitrocellulose filters might be related to its secondary structure, since transcripts homologous to 40% of viral DNA bind to nitrocellulose membranes, provided the RNA is denatured prior to filtration. The data suggest that poly(A) tracts arise by at least two separate steps. The first involves the appearance of poly(A)30 tracts in the high-molecular-weight nuclear transcripts. The second involves polyadenylation to ply(A)50 and poly(A)155 RNA classes concomitant with processing and transport to the cytoplasm.

Base Sequence↗

[Characterization of total RNA, messenger poly(A)+ RNA and homologous complementary DNA in experimental cardiac hypertrophy].

Two biological modifications are observed during adaptation of cardiac tissue to work overload: an increase in total protein synthesis and a redistribution of myosin isoenzymes. These modifications suggest that changes in DNA transcription are involved in the early response of cardiac tissue to overload. Results are reported in this paper that show a parallel increase in total and polyadenylated RNA content and concentration in cardiac overloaded tissue in the rat. The characterization of cardiac poly (A)+ mRNA by mRNA X cDNA hybridization and the identification of specific mRNAs with recombinant plasmid cDNAs are given in this report as preliminary results.

Animals↗

Immunocytochemistry of a vasopressin (AVP) receptor with anti-idiotype antibody: inhibition of staining with a peptide (PVA) encoded by an RNA that is complementary to AVP mRNA.

Immunocytochemical staining of putative presynaptic (auto-) receptors associated with vasopressin (AVP) neurons by anti-idiotype antibody can be markedly reduced or abolished by preincubation of the antibody with peptide PVA. This peptide, Ser-Ser-Trp-Ala-Val-Leu-Glu-Val-Ala, represents amino acids encoded by a nucleotide sequence complementary to the mRNA code of AVP. These results suggest that PVA may have some binding characteristics similar to the AVP autoreceptor.

Animals↗

Antisense gene expression in yeast.

The use of antisense and ribozyme RNA to modulate gene expression is emerging as an effective genetic technique. A compilation of successful antisense gene suppression experiments reveals the absence of reports on the use of the yeast Saccharomyces cerevisiae as a host. We examine the field of antisense and ribozyme use in S. cerevisiae and discuss that this result is not due to any lack of attempts and may reflect unique features of S. cerevisiae biology. In an attempt to learn from cellular RNA physiology we review evidence for naturally occurring antisense RNA regulation. Although there are many examples of well characterised overlapping RNA transcripts there is, as yet, no clear evidence suggesting complementary RNA-dependent gene regulation in S. cerevisiae. The application of artificial antisense and ribozyme genes is then discussed with an emphasis on the role of yeast as a model system for the systematic and genetic analysis of antisense and ribozyme RNA function. In addition, potential reasons for the lack of attempts to use antisense or ribozyme genes to create pseudogenetic mutants are considered. We conclude that the application of successful antisense and ribozyme strategies in yeast may have to address features of S. cerevisiae RNA biology and offer experimental approaches that may identify some of these features.

Cell Cycle↗