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Y Groner

Publications and source records attributed to Y Groner.

At least 91 records · Page 5Linked to original sources

Human Cu/Zn superoxide dismutase gene: molecular characterization of its two mRNA species.

Two cytoplasmic superoxide dismutase (SOD-1) mRNAs of about 0.7 and 0.9 kilobases (Kb.) were previously found in a variety of human cells. The two SOD-1 mRNAs are transcribed from the same gene and the major 0.7 Kb. species is approximately four times more abundant than the minor 0.9 Kb. mRNA. These two mRNAs differ in the length of their 3'-untranslated region and both have multiple 5'-ends. The longer transcript contains 222 additional nucleotides beyond the 3'-polyadenylated terminus of the short mRNA. S1 nuclease mapping and sequence analysis showed that these extra 222 nucleotides are specified by sequences contiguous to those shared by the two SOD-1 mRNAs. The 5'-termini of the two SOD-1 mRNAs were identified and mapped by both primer extension and S1 mapping. The majority of SOD-1 mRNA molecules (90-95%) have a 5'-start site located 23 base pairs (b.p.) downstream of the hexanucleotide -TATAAA-. The rest of the SOD-1 mRNA molecules have 5'-termini 30, 50 and 65 b.p. upstream from the major start region.

Base Sequence↗

The mouse c-abl locus: molecular cloning and characterization.

The mouse c-abl gene, part of the sequence of which was captured in Moloney murine leukemia virus to generate the transforming gene (v-abl) of the Abelson murine leukemia virus, has been isolated and characterized. The c-abl locus spans 40 kb in the mouse genome with the v-abl homologies distributed in no less than ten clusters along 25 kb of the cloned DNA. Partial sequence of the v-abl homologous regions indicates that v-abl derived from c-abl mainly by splicing of multiple exons of the c-abl gene. The c-abl sequences can be subdivided into two regions: a tyrosine kinase coding sequence distributed among eight small clusters on the 5' end of the gene and a C-terminal portion consisting of one small and one large cluster, which are needed neither for the tyrosine kinase activity nor for the transforming ability of v-abl. Apparent exon/intron boundaries in the homologous kinase-coding regions of c-abl and c-src are at different locations.

Amino Acid Sequence↗

Sequences involved in the regulated expression of the human interferon-beta1 gene in recombinant SV40 DNA vectors replicating in monkey cells.

The human genomic EcoRI fragment of 1.83 kb containing the interferon (IFN) gene IFN-beta1 with 285 nucleotides of 5'-flanking sequences was transfected into monkey kidney CV-1 cells as part of an SV40-pML2 vector. Induction of the monkey cells to produce IFN led to a rapid accumulation of IFN-beta1 RNA whose 5' ends were identical to the IFN-beta1 mRNA of human fibroblasts. This induction occurred with all recombinants tested. Expression from the SV40 late promoter was also seen in non-induced cells. We conclude that the regulation of the IFN-beta1 gene is retained in the replicating episomal SV40 vectors with high copy number, even when the gene is being transcribed from an external promoter. When the 5'-flanking sequences were deleted to leave only 40 bp before the presumed cap site of the IFN-beta1 gene, inducible formation of IFN-RNA with authentic 5' ends could still be demonstrated. However, inducibility and expression depended on the position of the deleted IFN-beta1 gene in the vector. We conclude that the sequences around the TATAA box and cap site on the IFN gene are involved in the regulation of its expression. Regulated short-term expression of the human IFN-beta1 gene in SV40 vectors provides a defined system in which the structures required to maintain the regulation and the influence of known external transcription signals can be examined.

5' Flanking Region↗

Methylations of adenosine residues (m6A) in pre-mRNA are important for formation of late simian virus 40 mRNAs.

Cycloleucine, a competitive inhibitor of methionine transferase was used to generate in vivo partially methylated mRNA in SV40-infected BSC-1 cells. Cycloleucine at 0.5 mg/ml causes more than a 30% decrease in internal m6As of late SV40 mRNA with only minor effect on the dimethyladenosine of the 5' caps m7GpppmAm. After treatment with 2 and 5 mg/ml of cycloleucine, internal m6As were reduced by 10- and 100-fold, respectively. The inhibition of BSC-1 mRNA methylations paralleled that observed for late SV40 mRNAs. In cells exposed to 2 mg/ml cycloleucine production of late SV40 mRNA was inhibited by 80% whereas the amount of SV40 nuclear RNA was only slightly reduced. Size fractionation of SV40 nuclear RNA from cycloleucine-treated cells revealed a loss of SV40 19 S RNA with a corresponding increase of fragmented RNA sedimenting between 11 to 5 S, so that the total amount of SV40 RNA in the nucleus was almost unchanged. Analysis of viral transcription complexes from cells treated with cycloleucine indicated that SV40 transcription was not affected by cycloleucine. SV40-transformed cells, in contrast to BSC-1 cells, were able to process and transport undermethylated RNA. When transformed cells were treated with 2 mg/ml cycloleucine no changes in quantities or size of cytoplasmic and nuclear RNA were detected. The data argues for a role of internal m6A moieties in modulating the processing-linked transport of mRNA from the nucleus to the cytoplasm of nontransformed cells. Transformed cells may escape these controls due to structural alterations in their perinuclear regions.

Adenosine↗

Nucleotide sequence and expression of human chromosome 21-encoded superoxide dismutase mRNA.

Cytoplasmic superoxide dismutase (SOD-1; EC 1.15.1.1) is encoded by human chromosome 21. The SOD-1 gene locus is located at chromosomal region 21q22, which is involved in Down syndrome. cDNA clones containing sequences of human SOD-1 were previously isolated. In the present study the nucleotide sequence of one clone, designated pS61-10, was determined. It contains 459 nucleotides representing the entire coding region and 95 nucleotides of the 3' untranslated region. In human cells two poly(A)-containing SOD-1 RNAs of 0.7 and 0.5 kilobases were detected. These two species are also present in monkey cells, whereas mouse cells contain only a 0.5-kilobase RNA. In a mouse/human hybrid line that contains chromosome 21 as the only human chromosome, the two human SOD-1 RNAs were detected, indicating that both are encoded by this chromosome. These RNAs were found in poly(A)-containing polysomal RNA and were translated in vitro to SOD-1 polypeptide; they are therefore functional mRNAs. In normal human fibroblasts 0.002-0.006% of the poly(A)-containing RNA was SOD-1 RNA. The level in monosomic 21 cells was 70% of this value and the level in fibroblasts from Down syndrome patients was about 2 times higher than normal.

Base Sequence↗

Human cytoplasmic superoxide dismutase cDNA clone: a probe for studying the molecular biology of Down syndrome.

The gene locus for human cytoplasmic superoxide dismutase (SOD-1; superoxide:superoxide oxidoreductase, EC 1.15.1.1) is located in or near a region of chromosome 21 known to be involved in Down syndrome. To approach the molecular biology of this genetic disease we have constructed a SOD-1 cDNA clone. Poly(A)-containing RNA enriched for human SOD-1 mRNA was isolated, used to synthesize double-stranded cDNA, and inserted into the endonuclease Pst I site of the plasmid pBR322. The chimeric molecules were used to transform Escherichia coli. Two clones containing SOD-1 cDNA inserts were identified by their ability to hybridize specifically with mRNA coding for SOD-1. Each of these clones carries a 650-base-pair insert, as was determined by restriction enzyme digestion and electron microscopic heteroduplex analysis. Hybridization of labeled cloned cDNA to RNA blots revealed two distinct SOD-1 mRNA classes of 500 and 700 nucleotides. The data suggest that both are polyadenylylated and are coded by chromosome 21.

Animals↗

Specific in vitro initiation of transcription of simian virus 40 early and late genes occurs at the various cap nucleotides including cytidine.

High specific activity [beta-32P]ATP and [beta-32P]CTP were used to study in vitro transcriptional initiation and subsequent capping of simian virus 40 (SV40) early and later RNAs. More than 40% of the capped SV40 RNA synthesized in vitro was also polyadenylylated. With [beta-32P]ATP, only adenosine-containing caps were labeled and the incorporated radioactive phosphate was found exclusively in the beta position. Cap digestion patterns showed extensive qualitative and quantitative similarities between these 32P-labeled caps and caps labeled in vivo [Canaani, D., Kahana, C., Mukamel, A. & Groner, Y. (1979) Proc. Natl. Acad. Sci. USA 76, 3078--3082]. With [beta-32P]CTP, only early SV40 RNA was labeled, consistent with the absence of cytosine-containing caps in late transcripts. The [beta-32P]CTP-labeled cap was identified as m7GpppCmpU, which was previously identified as the major cap of in vivo labeled early SV40 mRNA [Kahana, C., Gidoni, D., Canaani, D. & Groner, Y. (1981) J. Virol. 37, 7--16]. This experiment provides biochemical evidence for eukaryotic RNA polymerase II initiation of transcription with CTP. The data imply that, on SV40 DNA, RNA polymerase II initiates transcription at multiple nucleotide sequences and capping occurs at the initiator nucleotide.

Adenosine Triphosphate↗

Simian virus 40 early mRNA's in lytically infected and transformed cells contain six 5'-terminal caps.

Late simian virus 40 (SV40) mRNA contains eight different cap structures which we have previously identified and mapped on the viral genome. As reported here, 5'-cap heterogeneity is a common feature to both the early and the late SV40 mRNA's. methyl-3H-labeled viral mRNA was purified from cells infected at 41 degrees C with SV40 mutant tsA209. Three different cap cores were identified: m7GpppGm, m7GpppCm, and m7GpppAm. An average of three to four m6A residues per mRNA molecule was found. RNase T2-resistant 32P-labeled early caps from tsA209-infected cells isolated and characterized. Six distinct cap I structures were identified: m7GpppCmpU (30%), m7GpppGmpC (24%), m7GpppAmpG (18%), m7GpppGmpU (13%), m7GpppGmpG (12%), and m7GpppAmpU (3%). A similar 5'-end heterogeneity was observed in early SV40 mRNA from BSC-1 cells infected with wild-type SV40 strain 777 in the presence of cytosine arabinoside and in the SV40 UV-transformed permissive line C-6. Five of these capped dinucleotides are complementary to DNA sequences at 0.66 map unit in a region previously identified by the primer extension method (Reddy et al., J. Virol. 30:279-296, 1979; Thompson et al., J. Virol. 31:437-438, 1979) as the 5' end of the early message. DNA sequences upstream from this region contain the TATTTAT (Hogness-Goldberg box), which is missing from upstream of the 5'-cap sites of late SV40 mRNA. Thus, 5'-end heterogeneity is not necessarily related to the presence or the absence of this putative transcriptional "initiation signal." When the possibility that SV40 5' caps represent transcriptional initiation sites is considered, the data also suggest that, on SV40 DNA, eucaryotic RNA polymerase II initiates transcription at multiple nucleotide sequences, including pyrimidines.

Animals↗

Identification and mapping of N6-methyladenosine containing sequences in simian virus 40 RNA.

Late SV40 16S and 19S mRNAs were found to contain an average of three m6A residues per mRNA molecule. The methylated residues of both the viral and cellular mRNAs occur in two sequences; Gpm6ApC and (Ap)nm6ApC, where n = 1-4. More than 60% of the m6A residues in SV40 16S and 19S mRNAs occur in Gpm6ApC even though there are twice as many (A)nAC than GAC sequences in these messengers. The m6A containing oligonucleotides of late SV40 MRNAs were localized in the viral messengers. In the 16S mRNA two m6A oligonucleotides were located at the 5' coding region between 0.95--0.0 map units. The third m6A residue was mapped between 0.0--0.14 map units in the translated portion of this mRNA. The overall pattern of internal methylation in the 19S mRNA is similar. However, some differences between 16S and 19S mRNAs were observed in both the content and location of the longer (Ap)n m6AC nucleotides. These results provide the first example of precise localization of internal methylation sequences in mRNA species with defined coding specificity. It implies that a) location of m6A residues is not random but specific to a particular region of the RNA, b) apart from sequence specificity other structural features of the mRNA may influence internal methylation and c) m6A residues are present in coding regions of SV40 mRNAs.

Adenosine↗

Sequence heterogeneity at the 5' termini of late simian virus 40 19S and 16S mRNAs.

The 5'-cap-containing leader sequence of the most abundant 19S and 16S mRNAs of simian virus 40 (SV40) was previously mapped between 0.67 and 0.76 map units. We now find that the two late mRNA species contain multiple 5' ends. Eight different RNase T2-resistant cap structures were identified:m7GpppmAmpU (47%); m7GpppmAmpUmpU (19%); m7GpppmAmpC (16%); m7GpppmAmpCmpA (5%); m7GpppmAmpG (6%); m7GpppGmpC (3%); m7GpppmAmGmpA (2%); m7GpppGmpCmpG (2%). Capped T1 oligonucleotides of 19S and 16S mRNAs have been isolated by two different procedures: (i) chromatography on a DEAE-cellulose column followed by paper electrophoresis and (ii) two-dimensional electrophoresis/homochromatography. Cap structures of the isolated 5' oligonucleotides were identified. Each of the major caps was found to be associated with a few differential 5' oligonucleotides, implying a vast heterogeneity at the termini of SV40 late mRNAs. The results suggest that on SV40 DNA, RNA polymerase II has a reportoire of initiation points. In most of the cases, initiation takes place with adenosine triphosphate followed by a pyrimidine. Alternatively, transcription may start at one specific point but a unique mechanism of processing generates heterogeneous populations of termini with a common 5' adenosine triphosphate.

Base Sequence↗

Initiation factor eIF-4B (IF-M3)-dependent recognition and translation of capped versus uncapped eukaryotic mRNAs.

Translation of capped and uncapped eukaryotic mRNAs is stimulated by addition of eIF-4B to an mRNA-dependent reticulocyte lysate system. m7G5 ppp inhibits translation of capped but not uncapped mRNAs and reduces translation of capped vaccinia mRNA to the level obtained with uncapped vaccinia mRNA. Exogenous eIF-4B but no other initiation factor reverses inhibition of protein synthesis by m7G5'ppp. Both capped and uncapped mRNAs interact directly with eIF-4B to form a stable complex, which can be detected by a simple nitrocellulose filter binding assay. However, addition of a 5'-cap to beta-eliminated globin mRNA or satellite tobacco necrosis virus RNA (normally uncapped) increased binding affinity of these mRNAs for eIF-4B and causes binding of these mRNAs to become sensitive to inhibition by m7G5'ppp. These results indicate that the role of the mRNA 5'-cap in translation is related specifically to the function of eIF-4B in forming a complex with mRNA (prior to association of mRNA with the 40 S ribosomal subunit) and that both cap and non-cap sequences participate in this process.

Animals↗

Methylation and capping of RNA polymerase II primary transcripts by HeLa nuclear homogenates.

HeLa nuclear homogenates incubated in vitro incorporate [beta-32P]ATP and S-[methyl-3H]-adenosylmeth-ionine ([3H]SAM) into blocked methylated 5' termini of newly synthesized RNA. Approximately 10% of the RNA chains initiated in vitro with [beta-32P]ATP are subsequently blocked by condensation of GMP to di- or triphosphate terminated RNA. The blocked termini can then be methylated by transfer of methyl groups from [3H]SAM to the 7 position of the guanosine and 2'-O position of the adenosine to form m7Gpp*pAm- capped terminus. In addition to conventional triphosphate caps, HeLa nuclear homogenates produce capping structures containing two phosphate residues in the pyrophosphate bridge. The two distinct cap forms were separated by DEAE-cellulose chromatography and analyzed. In contrast to triphosphate caps (m7GpppXm) in which X can be any one of the four nucleosides (G, A, C, or U), in diphosphate caps (m7GppXm), more than 95% of the penultimate nucleoside Xm is G. Incorporation of both [beta-32P]ATP and [3H]SAM into caps was markedly reduced by low concentrations of alpha-amanitin. However, an ammonium sulfate fraction of the nuclear homogenate can cap beta-32P-labeled RNA (pp*pA-RNA) to form m7Gpp*pA-RNA, in the presence of 0.5 microgram/mL of alpha-amanitin. Therefore, the nuclear capping enzyme is resistant to this drug. Our results indicate that RNA polymerase II primary transcripts are the substrate for the cellular capping enzyme and that the beta phosphate in the pyrophosphate bridge (m7GgammapbetapalphapXm) is derived from the 5' ends of the RNA chains.

Amanitins↗

Isolation and purification of double-stranded ribonuclease from calf thymus.

A RNase from calf thymus, which specifically cleaves native or synthetic double-stranded RNA molecules endonucleolytically, has been isolated and purified from calf thymus. For optimal activity, the enzyme requires a sulfhydryl reagent and divalent cations; over 95 per cent of the activity is inhibited by 0.5 mm ethidium bromide. The degradation of [3H]poly(C)-poly(I) by purified enzyme preparations yields labeled dinucleotides and octanucleotides; the latter oligonucleotide contained 5'-phosphate and 3'-hydroxyl termini. The enzyme cleaves high molecular weight RNAs such as RNA products formed in vitro by T3 phage-induced RNA polymerase from T3 phage DNA, heterogeneous RNA isolated from duck reticulocyte nuclei, and 45 S RNA isolated from rat liver nucleoli. The mode of degradation of RNA in vitro with the double-stranded RNase is similar to that of Escherichia coli RNase III and appears to act endonucleolytically. The degradation of 45 S RNA with the enzyme results in the production of 29 S and 19 S RNA fragments. These findings suggest that the enzyme may be involved in the processing of high molecular weight precursor RNAs to mRNA or rRNAs in a manner analogous to that reported for RNase III of E. coli.

Animals↗

5'-Terminal sequences and coding region of late simian virus 40 mRNAs are derived from noncontiguous segments of the viral genome.

The region of the simian virus 40 genome complementary to the 5' end of the most abundant poly(A)-containing 19S and 16S mRNAs was mapped by hybridization of double-labeled RNA ([3H]methyl group and [14C]uridine) to specific DNA fragments. Chemical identification of methylated residues indicated that a common "leader" sequence adjacent to the 5' terminus of both 19S and 16S mRNA is transcribed from DNA sequences located between 0.67 and 0.76 map units. The estimated size of this "leader" RNA, which does not code for any known viral protein, is 170-200 nucleotides. Our results indicate that sequences complementary to the "leader" region and coding portion of 16S mRNA are located in separate parts of the simian virus 40 genome.

Base Sequence↗

Capping structures of simian virus 40 19S and 16S mRNAs.

In vivo [methyl 3H]-labeled SV40 19S and 16S mRNA species were purified and their internal methylation as well as their capping structures analyzed. SV40 viral mRNA sedimenting in the 19S region contains approximately equal proportions of m7GpppAm and m7Gppm6Am, while the 16S mRNA contains mainly m7Gpppm6Am. N6 methyl adenosine is located internally within the RNA chains of both the 19S and 16S species.

Adenosine↗