PubMed Health⌕ Search

Biomedical subjects

M Perricaudet

Publications and source records attributed to M Perricaudet.

At least 145 records · Page 8Linked to original sources

Receptors bound to antiprogestin from abortive complexes with hormone responsive elements.

The mechanism of action of antisteroids is not understood and explanations of their antagonistic activity have been sought at all levels of hormone action. It has been proposed that antisteroids, after binding to receptor, trap it into a non-activated (non DNA-binding) form possibly through interaction with a heat-shock protein of relative molecular mass (Mr) 90,000 (90 K), or that the antisteroids provoke binding of receptor to nonspecific DNA sites but not to hormone responsive elements (HREs), or that the antisteroid-receptor complexes can bind to HREs but form abortive complexes that fail to regulate transcription. We have constructed a deleted cDNA encoding a mutant form of rabbit progesterone receptor which exhibits constitutive activity, that is, binds to HREs in the absence of hormone and thus bypasses the first two steps discussed above. Co-transfection experiments allowed the expression of both constitutive and wild-type receptors in the same recipient cells. Antiprogestin RU486-wild-type receptor complexes completely suppressed the activity of the constitutive receptor on a reporter gene, showing that the inhibition is at the level of their common responsive elements.

Animals↗

The analysis of EBV proteins which are antigenic in vivo.

We have used small random EBV B95-8 DNA fragments to generate a large genomic bank in a plasmid expression vector. This bank was screened with a pool of sera from individuals with IM thus allowing any EBV antigen which evoked an immune response in man to be identified. The characterization of four immunopositive clones obtained in this way is presented in this study. Three of these clones express viral ORF DNA sequences which are parts of larger ORFs in the BamH1 N(het), V and X regions of the B95-8 viral genome. cDNA cloning has been used to confirm that the cloned sequences from BamH1 N and V are expressed in cell culture and to identify the transcription units involved. The fourth clone expresses an ORF sequence located in the viral BamH1 F fragment in a region not previously recognized as having protein coding potential. The experimental design used here must reflect the situation in vivo and consequently these sequences must be expressed and be antigenic during IM.

Amino Acid Sequence↗

A spliced Epstein-Barr virus gene expressed in immortalized lymphocytes is created by circularization of the linear viral genome.

Epstein-Barr virus (EBV) immortalizes B-lymphocytes efficiently in vitro and in most or all of the cells a latent infection is established. Only a few viral genes are expressed during latency and these apparently maintain cell immortalization by EBV. A 1.9 kb cDNA clone of an EBV mRNA has been isolated from a B95-8 cDNA library and this cDNA corresponds to a new member of the group of EBV latent cycle genes. On Northern blots two polyadenylated transcripts 1.7 and 2.0 kb in length have been detected by the cDNA clone in B95-8 cells as well as in latently infected cell lines and in various cell lines derived from Burkitt's lymphomas. The cDNA sequence showed that this gene consists of nine exons and showed that this gene consists of nine exons and that the transcription unit crosses the terminal repeats. Thus, the intact gene is created upon infection by the circularization of the linear viral DNA molecule at the terminal repeats. One major open reading frame is present in the cDNA apparently coding for a 53 kd protein. A strongly hydrophilic part of the protein is followed by a very hydrophobic C-terminus, perhaps suggesting a membrane protein. The gene is unrelated to the other latent cycle genes, the EBV nuclear antigens (EBNA 1-4), the leader protein (LP), and the latent membrane protein (LMP) genes. This is the first example of a viral gene whose coding sequence is only created by joining of the ends of a linear virus.

Amino Acid Sequence↗

Transcriptional activation by the E1A regions of adenovirus types 40 and 41.

In order to establish whether the poor growth of the two fastidious adenoviruses types 40 and 41 (Ad40 and Ad41) in HeLa cells is due to a reduced trans-activation by the early region 1A (E1A), we have determined the trans-activating effect of this region on the expression of the chloramphenicol acetyltransferase (CAT) gene controlled by the Ad2 E4 promoter. Cotransfection of HeLa cells with plasmids containing the E1A regions of Ad5, Ad40, and Ad41, respectively, and the CAT gene controlled by the Ad2 E4 promoter showed that activation of the E4 promoter by the E1A regions of Ad40 and Ad41 depends on the same sequence elements of the E4 promoter as activation by the Ad5 E1A gene products. The level of activation, however, is significantly lower. This might partly explain the reduced growth in HeLa cells of the two viruses.

Adenovirus Early Proteins↗

Epstein-Barr virus gene expression in P3HR1-superinfected Raji cells.

The pattern of Epstein-Barr virus (EBV) RNAs expressed in Raji cells superinfected with P3HR1 EBV was examined. RNAs whose expression was of an immediate-early type (resistant to treatment of the cells with anisomycin) were identified. These RNAs, encoding the EBV reading frames BZLF1 and BRLF1, were probably expressed from defective virus within the P3HR1 preparation, and some of them were responsible for the induction of the EBV productive cycle in the Raji cells. The structures of the B95-8 RNAs equivalent to the anisomycin-resistant RNAs were determined. The RNA encoding the BZLF1 reading frame contained two splices which extended and modified the reading frame from that previously described.

Anisomycin↗

Mapping of the gene coding for Epstein-Barr virus-determined nuclear antigen EBNA3 and its transient overexpression in a human cell line by using an adenovirus expression vector.

The open reading frame which lies within the Epstein-Barr virus (EBV) T2 cDNA isolated by Bodescot et al. (M. Bodescot, O. Brison, and M. Perricaudet, Nucleic Acids Res. 14:2611-2620, 1986) was inserted into a eucaryotic expression vector containing a strong adenovirus promoter. The T2 cDNA contains viral genomic sequences from the short BLRF3 open reading frame fused to the adjacent BERF1 long open reading frame. After transfection of human cells, the recombinant plasmid directed the expression of a 140-kilodalton protein. The expressed protein had the same molecular weight, subcellular localization, and immunological characteristics as the EBV-determined nuclear antigen EBNA3, which is made in lymphocytes latently infected with EBV. Immunoprecipitation of extracts of transfected cells labeled with [32P]phosphoric acid showed that the EBNA3 protein is phosphorylated.

Adenoviruses, Human↗

A promoter for the highly spliced EBNA family of RNAs of Epstein-Barr virus.

A transcription start for the highly spliced EBNA group of RNAs in B95-8 cells has been identified in the short unique region of the virus genome. This promoter is used in many (but not all) human cell lines carrying Epstein-Barr virus, including a tightly latent human lymphoblastoid cell line. Another promoter for the EBNA RNAs was described previously in the internal repeat region of the virus genome. The existence of these alternative promoters may be important for differential control of EBNA gene expression.

Antigens, Viral↗

The E4 promoter of adenovirus type 2 contains an E1A dependent cis-acting element.

To study how the E1A polypeptides of adenovirus type 2 regulate transcription, we have constructed chimeric plasmids containing the bacterial gene encoding chloramphenicol acetyl transferase (CAT) under the control of either the wild type or the deleted E4 promoter of adenovirus type 2. Our previous results showed that promoter sequences located upstream from position -158, as measured from the cap site, are essential to the transactivation process. From a new set of deletion mutants, we now show that two regions, located between positions -239 and -218 and between positions -179 and -158, are involved in the E1A transactivation process. The deletion of only one of them does not significantly alter the E1A induction process compared with the wild type. Moreover, we show that these two regions lie within a DNA fragment which possesses the properties of an E1A-inducible "enhancer-like" element. In addition, the DNA fragment which contains this enhancer element is also able to confer the E1A inducibility to a heterologous promoter.

Acetyltransferases↗

Epstein-Barr virus mRNAs produced by alternative splicing.

The structure of Epstein-Barr virus mRNAs transcribed in B95-8 cells has been studied by cDNA cloning and sequencing. We present here the analysis of four cDNAs. The corresponding mRNAs are probably transcribed from a single promoter located in the US region. They are produced by alternative splicing of exons transcribed from the US, IR and UL regions. The exons are spread over 100 kbp. The exons from the IR region constitute a unit which is repeated several times. The cDNAs share the exons from the US and IR regions. Some of the cDNAs also share some of the exons from the UL region. Each cDNA contains a long open reading frame or the 5' end of a long open reading frame which ends several hundred nucleotides downstream on the viral genome. The 5' untranslated regions are unusually long. Three mRNA species differing in their 5' untranslated regions may encode for the nuclear antigen EBNA-1. The other mRNAs encode for polypeptides which may not have any common region.

Cloning, Molecular↗

An Epstein-Barr virus transcription unit is at least 84 kilobases long.

We have studied the structure of the Epstein-Barr virus mRNAs expressed in B95-8, a productively-infected Marmoset cell line established from in vitro-infected B-lymphocytes. We constructed a cDNA library from the cytoplasmic polyadenylated RNAs of B95-8 in the lambda gt10 bacteriophage. We present here the analysis of a 3.5 kbp cDNA containing exons transcribed from the US, IR and UL regions of the viral genome. The corresponding transcription unit is at least 84 kbp long. Two exons are transcribed from the US region, five from the IR region and two from the UL region. The exons from the IR region consist of two tandem repeats of a unit containing two exons, 66 and 132 nucleotides, and of a third copy of the 66 nucleotide exon. The exons from the UL region contain an open reading frame coding for a 944 amino acid polypeptide. The C-terminal end of this polypeptide harbors three types of repeated sequences. The corresponding mRNA is the second described of a family of mRNAs produced by alternative splicing of exons transcribed from the US, IR and UL regions.

Animals↗

In vitro and in vivo synthesis of the hepatitis B virus surface antigen and of the receptor for polymerized human serum albumin from recombinant human adenoviruses.

We have developed an adenovirus vector to express foreign proteins under the control of the adenovirus E1a promoter. Two recombinant plasmids, harbouring either the S gene or the pre-S2 region and the S gene of hepatitis B virus under the control of the E1a promoter, were used to construct two recombinant adenoviruses. These two viruses direct the synthesis of hepatitis B virus surface antigen (HBsAg) particles during the time course of an infectious cycle. When the pre-S2 region is present in the constructed virus, the synthesis of particles carrying the receptor for polymerized human serum albumin (pHSA) is observed. Moreover, the inoculation of rabbits with this latter purified recombinant adenovirus elicits the production of antibodies that react with both HBsAg and pHSA receptor.

Adenoviruses, Human↗

The E4 transcriptional unit of Ad2: far upstream sequences are required for its transactivation by E1A.

We have investigated the effect of the E1A polypeptides of adenovirus 2 on the transcription of the viral E4 region. For this purpose, we have fused the promoter region of the E4 gene to the bacterial gene coding for chloramphenicol acetyl transferase. We have found that transcription from the E4 promoter is increased at least 20 fold in the presence of the E1A region. We have also found that the largest E1A polypeptide is the regulating factor, whereas the shortest has no apparent effect. Deletion of sequences upstream from position -158, as measured from the cap site, reduces the efficiency of the transcription in the presence of E1A by more than 15 fold. An important regulatory domain lies between positions -158 and -179. This domain contains the sequence 5' GGGAAGTGAC 3' which is homologous to the E1A enhancer core sequence. Another similar sequence is also present at position -149.

Adenoviruses, Human↗

Spliced RNA from the IR1-U2 region of Epstein-Barr virus: presence of an open reading frame for a repetitive polypeptide.

We have constructed a cDNA library from the cytoplasmic RNAs of Raji cells, a Burkitt's lymphoma cell line latently infected with Epstein-Barr virus. We report here the characterization of a cDNA representing a spliced RNA transcribed from the IR1-U2 region of the viral genome. The cDNA is 1007 bp long. The 5' region contains three tandem repeats of two exons, 66 and 132 bp, which are transcribed from the IR1 repeats. The 3' region is formed from four exons transcribed from U2. An open reading frame extends from the 5' end to position 784, and includes the repeats. This reading frame presumably corresponds to the carboxy-terminal 261 amino acids of a polypeptide containing several repeats of a 66 amino acid sequence. Since it would be encoded by the IR1-U2 region of the viral genome, the putative polypeptide might be involved in the process of growth-transformation of B-lymphocytes.

Amino Acid Sequence↗

Individual products of the adenovirus 12S and 13S EIa mRNAs stimulate viral EIIa and EIII expression at the transcriptional level.

Recombinant plasmids containing mutant or wild-type adenovirus serotype 2 EIa genes that produce the 12S mRNA alone, the 13S mRNA alone, or both mRNAs were cotransfected into HeLa cells with plasmids containing the viral EIIa or EIII transcription units. The amount of RNA produced from the EIIa and EIII promoters was increased by the products of both the 13S and the 12S RNAs. By measuring the level of specific transcription in nuclei isolated from transfected cells we directly demonstrate that the increased amount of EIIa RNA is due to stimulation of the rate of transcription.

Adenoviridae↗

mRNAs from human adenovirus 2 early region 4.

The molecular structure of the mRNAs from early region 4 of human adenovirus 2 has been studied by Northern blot analysis, S1 nuclease analysis, and sequence analysis of cDNA clones. The results make it possible to identify four different splice donor sites and six different splice acceptor sites. The structure of 12 different mRNAs can be deduced from the analysis. The mRNAs have identical 5' and 3' ends and are thus likely to be processed from a common mRNA precursor by differential splicing. The different mRNA species are formed by the removal of one to three introns, and they all carry a short 5' leader segment. The introns appear to serve two functions; they either place a 5' leader segment in juxtaposition with an open reading frame or fuse two open translational reading frames. The early region 4 mRNAs can encode at least seven unique polypeptides.

Adenoviruses, Human↗

Polyadenylic acid addition sites in the adenovirus type 2 major late transcription unit.

The cytoplasmic mRNAs which are transcribed from the major late adenovirus promoter can be arranged into five 3'-coterminal families, L1 to L5. We have defined the polyadenylation sites of the mRNAs that belong to the five families at the nucleotide level. From the results, the following conclusions can be made. (i) The hexanucleotide sequence AAUAAA is present at the 3' end of all late adenovirus type 2 mRNAs and precedes the site of polyadenylation by 12 to 30 nucleotides. (ii) Between one and three A residues are present in the genomic sequence at the polyadenylation site. (iii) A sequence with the composition (T)n (A)p (T)q (n, p, q greater than or equal to 1) is found 4 to 24 nucleotides beyond all the adenovirus-specific polyadenylation sites except the 3'-coterminal family L4. This sequence is also found beyond many cellular polyadenylation sites. (iv) The L1 and L2 polyadenylation sites are very similar in structure. The other polyadenylation sites show no apparent sequence relationship, except for the hexanucleotide sequence.

Adenoviruses, Human↗