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F Rougeon

Publications and source records attributed to F Rougeon.

At least 73 records · Page 4Linked to original sources

Extra-renal transcription of the renin genes in multiple tissues of mice and rats.

Expression of the mouse renin genes (Ren-1 and Ren-2) and of the unique rat renin gene was determined in several extra-renal tissues of mice and rats by primer-directed enzymatic amplification of cDNAs. In addition to the adrenal glands, testis, and ovaries, renin transcripts are detected in the liver, whole brain, and hypothalamus and, at lower levels, in spleen, thymus, lung, and prostate. Expression of the rat renin gene correlates with that of the mouse Ren-1 gene with the notable exception of the submaxillary gland where renin transcripts are found only in mice. The levels of renin transcripts in the liver of females from both species are higher than in males. In mice, the relative levels of Ren-1 and Ren-2 transcripts vary widely in different tissues. These results support the hypothesis of a local renin-angiotensin system in multiple extra-renal sites and imply the existence of complex mechanisms of regulation of the renin gene, previously thought to be expressed in a tissue-specific manner.

Animals↗

The cDNA structure of rat plasma kallikrein.

From a liver cDNA library we have isolated and characterized the cDNA encoding rat plasma kallikrein. The cDNA structure contains 2,456 nucleotides with a 2,082-nucleotide-long open reading frame. Protein sequence data suggest that the signal peptide is 19 amino acids long. This results in a mature plasma prekallikrein containing 619 amino acids. Determination of tissue distributions using Northern blot analysis (3.0-kb transcript) and the polymerase chain-reaction methodology on RNA preparations demonstrated that in the rat the liver is the main source of this enzyme. Southern blots suggested the presence of a single gene coding for rat plasma kallikrein. Finally, although Southern blots revealed a homologous gene in mouse, the mRNA corresponding to the mouse hepatic proteinase is barely detectable on Northern blots, suggesting inefficient transcription or high turnover of the mRNA in this species.

Amino Acid Sequence↗

Renin-promoter SV40 large T-antigen transgenes induce tumors irrespective of normal cellular expression of renin genes.

Chimeric genes containing the 5'-flanking regions of the mouse renin genes, Ren1 and Ren2, associated with the early region of the simian virus 40 (SV40) were constructed. The two recombinant genes which contain, respectively, 0.45- and 2.5-kb the Ren1 and Ren2 5'-flanking sequences, named Ren1Tag and Ren2Tag, were microinjected into fertilized eggs. Tumors arose after a latency of 5-9 months in mouse lines harboring these hybrid genes except for one, in which a different and earlier pathology was observed (peripheral neuropathies). Most of the pathologies developed by these transgenic mice reflect the tumorigenic spectrum of the SV40 early region gene (choroid plexus, kidney, intestinal tumors, and peripheral neuropathies). None of these tumors arose from renin-producing cells nor produced renin. As suggested by the tumor pathology, the expression of the SV40 large T-antigen did not follow the normal expression of the Ren1 and the Ren2 genes since SV40 large T-antigen mRNA was found in tissues which normally do not express renin.

Animals↗

Structural analysis of 5'-flanking regions of rat, mouse and human renin genes reveals the presence of a transposable-like element in the two mouse genes.

The two renin genes of the mouse (Ren1 and Ren2) are expressed at different levels in the submaxillary gland (SMG). In contrast to mice, there is no detectable renin gene expression in the rat SMG. To determine the molecular basis for these different levels of renin expression, we have compared the 5'-flanking regions of the rat and mouse genes. The sequence of mouse, but not rat, genes reveals the presence in Ren1 and Ren2 of a large insertion, probably a new class of transposable elements. A second, apparently unrelated shorter insertion is present only in Ren2. Otherwise, the mouse and rat 5'-flanking sequences are well conserved and resemble the corresponding region of the human Ren gene, indicating that the insertions occurred after the separation of the rat and mouse species but before the duplication of the mouse Ren gene. We suggest that these structural differences may have a role in the differential expression of the Ren genes in mice and other animals.

Animals↗

Thyroxine and testosterone transcriptionally regulate renin gene expression in the submaxillary gland of normal and transgenic mice carrying extra copies of the Ren2 gene.

Expression of the mouse renin genes (Ren1 and Ren2) in the submaxillary gland of female mice has been analyzed following administration of thyroxine (T4) or dihydrotestosterone (DHT). Both hormones appear to act independently on mRNA accumulation which increases about 5 fold over basal level. In vitro transcription assays in isolated nuclei demonstrate that both hormones act at the transcriptional level. The effects of DHT and T4 were also analyzed in transgenic mice obtained by microinjection of the Ren2 gene. We show that T4 is as efficient as DHT in promoting renin mRNA accumulation in these transgenic animals, in spite of their low basal level of Ren2 mRNA. Structural comparison of the Ren1 and Ren2 promoters with those of other genes regulated by T4 shows the conservation of two discrete regions.

Animals↗

Completion of the rabies virus genome sequence determination: highly conserved domains among the L (polymerase) proteins of unsegmented negative-strand RNA viruses.

We have now completed the rabies genome structure by the cloning and the sequencing of the entire L gene and the 5' untranscribed region. The L gene encodes a single open reading frame 2142 amino acids in length (244,206 Da) that corresponds to the viral RNA-dependent RNA polymerase. In contrast with other isofunctional proteins, the rabies polymerase exhibits a high degree of homology with the vesicular stomatitis virus polymerase, and a lesser degree, although significant, with those of Sendai virus and Newcastle disease virus, which suggests a differential evolution of the different cistrons. We have observed several strongly conserved stretches which may designate the independent functional domains of this multifunctional protein. In addition to the conservation of related transcription signals (N. Tordo et al. (1986) Proc. Natl. Acad. Sci. USA 83, 3914-3918.), this highlights the striking selective pressure on elements involved in transcription and replication mechanisms, and provides further evidence for a common ancestry of Rhabdoviridae and Paramyxoviridae families. The terminal complementarity observed in the rabies genome suggests the conservation of important genomic signals.

Amino Acid Sequence↗

High level of accumulation of a mRNA coding for a precursor-like protein in the submaxillary gland of male rats.

NaDodSO4/PAGE analysis of in vitro translation products of rat submaxillary gland (SMG) mRNAs has revealed an important sexual dimorphism. Moreover, most of the rat male-specific major translation products differ in size from those translated from male mouse SMG mRNAs. To characterize proteins accumulated in the rat SMG under androgen control, a cDNA library was constructed. Here we report the nucleotide sequence of a 0.7-kilobase mRNA that is 1000-3000 times more abundant in male rats than in female rats. The predicted corresponding protein, SMR1, has a molecular weight of 16,000 and contains a signal peptide for secretion and potential signals for glycosylation. An interesting feature of SMR1 is the presence, in a hydrophilic region, of the tetrapeptide Gln-His-Asn-Pro surrounded by two pairs of basic residues that represent potential cleavage sites for maturation enzymes. In rats, the tissue distribution of the SMR1 mRNA is restricted to the SMG and the prostate. Only very low amounts of SMR1 mRNA can be detected in the SMG of male or female mice. Southern blot analysis indicates the presence of three genes in rats but only one in mice. Hypotheses on the physiological role of SMR1-derived peptides in male rats are discussed.

Amino Acid Sequence↗

A mouse renin promoter containing the conserved decanucleotide element binds the same B-cell factors as an authentic immunoglobulin heavy chain promoter.

A mouse renin-1 gene promoter fragment, normally inactive in B-cells, becomes a potent promoter in these cells after insertion of the highly conserved decanucleotide (dc/cd sequence) of immunoglobulin heavy and light chain promoters [(1987) EMBO J. 6, 1685-1690]. We observe retarded complexes of the same electrophoretic mobility when the cd-containing renin promoter fragment or an authentic immunoglobulin heavy chain promoter fragment is incubated with a nuclear extract from myeloma cells, suggesting that the renin promoter is activated due to its acquired ability to bind a B-cell-specific positive factor. No retarded complexes are observed with the original renin promoter fragment thus questioning the presence of a repressor as an explanation for its lack of activity in B-cells.

Animals↗

Interallelic and intergenic conversion events could induce differential evolution of the two rabbit immunoglobulin kappa light chain genes.

Contrary to the situation in humans or mice, where the constant region (C) of the Immunoglobulin (Ig) kappa (kappa) light chain is encoded by a single gene, the rabbit possesses two C kappa genes: C kappa 1 and C kappa 2. However, in domestic rabbits, the vast majority of the immunoglobulins have a light chain of the kappa 1 isotype, which is expressed under four complex, highly divergent allelic forms: b4, b5, b6 and b9. In previous papers, we have shown that this high level of divergence was due, at least partly, to conversion events of the kappa 1 by the kappa 2 locus. Up to now, little was known about the evolution of the C kappa 2 gene. Here, we report sequences of the C kappa 2 genes in three different haplotypes, and show that, in contrast to the situation in the kappa 1 locus, the three analysed C kappa 2 alleles are identical (or only differing by one silent substitution). This suggests that intergenic conversion, which introduced most of the divergence in the kappa 1 locus, is not reciprocal and is unidirectional from kappa 2 towards kappa 1. To explain the small number of silent substitutions in the C kappa 2 gene and its remarkable conservation, we propose an extended model of multigenic family evolution, which postulates that gene conversion events occur between linked genes as well as between alleles.

Alleles↗

Isolation of DNA-protein complexes based on streptavidin and biotin interaction.

We describe a method for the purification of proteins binding to specific DNA sites based on the strong interaction between streptavidin and biotin. We tested the efficiency of this method using the Escherichia coli lactose operon operator-repressor system. dUTP coupled to biotin is incorporated into a DNA fragment containing the lactose operator. A crude E. coli extract is first incubated with the biotinylated fragment and the reaction mixture is filtered on a streptavidin-agarose column. Proteins retained on the column are either eluted alone by high salt or isopropyl beta-D-thiogalactoside, or as a complex with the DNA site by enzymatic digestion of the DNA. We thus obtained a 3400-fold enrichment of the repressor complexed to the operator in one step. The method is simple and makes use of commercially available reagents. The large concentration of biotin-binding sites of the streptavidin-agarose matrix (0.1 mumol/ml packed gel) provides a very high capacity for the concentration and purification of large amounts of proteins. The advantage of this method for the detection and purification of other DNA-binding proteins is discussed.

Bacterial Proteins↗

The conserved decanucleotide from the immunoglobulin heavy chain promoter induces a very high transcriptional activity in B-cells when introduced into an heterologous promoter.

A conserved decanucleotide (ATGCAAATNA) is present 45-60 nucleotides upstream from the transcription startpoint in all immunoglobulin heavy chain promoters (VH promoters). We have introduced this decanucleotide (cd sequence) at a similar position into the upstream flanking sequence of the mouse Renin-1 gene. This gene is only transcribed in highly specialized tissues, and the fragment used here (-449 to +30 with respect to the main transcription startpoint) has little promoter activity in fibroblastic or myeloma cell lines, even if coupled to a functional enhancer. In contrast, after insertion of the decanucleotide, this fragment, while still inactive in non-lymphoid cells, becomes a potent promoter in B-cells when associated with SV40 or immunoglobulin heavy chain enhancer. In all respects, the engineered fragment behaves like an authentic VH promoter isolated in this laboratory, except that it is even more active in B-cells. Deletion experiments show that all renin sequences are dispensable for the activity of the chimaeric promoter, except probably for the renin TATA box which defines the precise transcription startpoint. We conclude that the decanucleotide is sufficient to activate a promoter in B-cells but not in non-B-cells, and therefore that no other element is needed to account for the B-cell specificity of the VH promoter. In addition, our results suggest that the lack of activity of the renin promoter in non cognate cells is not due to the binding of a repressor.

Animals↗

Regulated expression of the Ren-2 gene in transgenic mice derived from parental strains carrying only the Ren-1 gene.

The Ren-2 gene encoding the mouse submaxillary gland (SMG) renin was microinjected into the pronuclei of fertilized eggs from mice carrying only the Ren-1 gene. In addition to the whole transcription unit, the injected DNA contained 2.5 and 3 kb of upstream and downstream flanking sequences, respectively. Three independent transgenic mice lines were obtained; two of them had integrated one copy of the Ren-2 gene, the last one had integrated five and eleven copies at two independent sites. Independently of the number of Ren-2 copies integrated, the pattern of Ren-2 gene expression in all the transgenic mice was identical to that observed in wild-type animals in which Ren-1 and Ren-2 are closely linked on chromosome 1. In particular, the exogenous Ren-2 gene was only transcribed in the kidney and in the SMG. In the kidney, Ren-1 and Ren-2 mRNAs were present at a comparable level, whereas in the SMG Ren-2 mRNA was at least 100-fold more abundant than Ren-1 mRNA. Moreover, Ren-2 expression in the SMG was positively regulated by androgens. Only one difference between transgenic mice and wild-type mice carrying the Ren-2 gene has been observed: the basal level of Ren-2 transcription in the SMG of transgenic females was lower than in two-gene strain females. Androgen treatment of transgenic females induced SMG renin mRNA to a level identical to that of transgenic males. This suggests that the basal level of SMG renin mRNA is dependent upon cis-acting elements which are not present in the microinjected fragment.

Animals↗

Rearrangement and expression of rabbit immunoglobulin kappa light chain gene in transgenic mice.

To determine whether a foreign unrearranged immunoglobulin gene can be functionally rearranged and expressed in vivo, a rabbit b9 kappa light chain gene construct containing a single germ-line kappa chain variable (V) region gene (V kappa), the five kappa chain joining (J) segments (J kappa), and the kappa chain constant (C) region germ-line gene (C kappa) was introduced into fertilized mouse eggs. Eleven transgenic mice carrying 1-30 copies of the rabbit kappa gene construct were obtained. Rearrangement of the transgene due to V kappa-J kappa recombination was observed in the spleen of all the mice lines analyzed. Only the J kappa 1 and J kappa 2 segments, which have canonical sequences for rearrangement and high-level expression, are utilized in assembly of the rabbit gene. V kappa-J kappa 1 and V kappa-J kappa 2 joining was also observed in the thymus but not in nonlymphoid tissue. Polyadenylylated rabbit kappa chain transcripts of 1.2 kilobases were found in the spleen of the transgenic mice. The level of transcription was low despite a high level of rearrangement. Three transgenic mice lines secreted kappa light chains encoded by the foreign rabbit gene. Serum rabbit kappa chains were associated with mouse mu and gamma 1 heavy chains. However, hybrid antibody molecules containing both rabbit and mouse kappa light chains were also found in the serum of these animals. These results suggest that, although the rabbit kappa chain gene construct contains the necessary sequences for gene assembly, sequences implicated in stage- and tissue-specific regulation of kappa chain gene rearrangement are either missing or not recognized by mouse lymphoid cells.

Animals↗

Segmental homology between the promoter region of the human renin gene and the mouse ren1 and ren2 promoter regions.

We have isolated and determined the nucleotide (nt) sequence of the 5' region of the human renin gene (h-ren). Two TATA boxes and a CAAT box were found. Start point determination has shown that only the proximal TATA box was used as the transcription initiation signal, both in the kidney and in a renin-secreting tumor. Comparison of the sequence of the 500-bp region upstream from the transcription start point with the corresponding regions of the ren1 and ren2 genes of the Swiss mouse revealed no overall homology between the human and mouse renin sequences. Only very short sequences of high homology ranging in size from 10 to 18 nt were found in the sequenced regions. By hybridization experiments, we have detected a region upstream from each mouse renin gene related to the h-ren; analysis of the nt sequence of this region reveals that they belong to the Alu family of repetitive DNA.

Animals↗

Analysis of promoter and enhancer cell type specificities and the regulation of immunoglobulin gene expression.

We have analysed the properties of IgH promoter (VH) and enhancer (Ig) regions which were used to drive the expression of the chloramphenicol acetyl transferase (CAT) gene (cat) in recombinant plasmids. We observe little synergistic effect between the VH promoter and Ig enhancer on cat gene expression in our constructs. Replacing the VH promoter by the thymidine kinase (TK) promoter does not affect the enhancer-mediated B-cell-specific expression of the cat gene. However, replacement of the VH promoter by the mouse renin gene promoter, which is not normally expressed in B cells, completely abolishes cat gene expression in cells of this lineage. When the Ig enhancer is replaced by the SV40 enhancer (SV), CAT activity is restricted to B cells. The VH promoter is as efficient as the TK promoter in a preB cell line. Extending the size of the VH promoter fragment to include sequences between 126 to 639 bp upstream from the transcription start point results in an eight-fold decrease in CAT activity. In this situation, the tissue specificity of the promoter cat fusion is maintained. Among the various combinations tested here, the association of the TK promoter and the Ig enhancer expresses the cat gene most efficiently. The implications of these observations are discussed.

Acetyltransferases↗

Walking along the rabies genome: is the large G-L intergenic region a remnant gene?

Rabies cDNA clones, obtained by "walking along the genome" using two successive DNA primers, have allowed the sequence determination of the genes encoding the N, M1, M2, G, and the beginning of the L protein as well as the rabies intergenic regions. Start and stop transcription signals located at the border of each gene encoding a protein have been identified and are similar to the corresponding signals from vesicular stomatitis virus (VSV) and Sendai virus. Except for limited stretches of the nucleoprotein, there is no homology between corresponding structural proteins of these three viruses. Rabies intergenic regions are variable both in length and sequence. Evidence for the existence of a remnant protein gene in the 423 nucleotide long G-L intergenic region is presented. This finding is discussed in terms of the evolution of unsegmented negative-strand RNA viruses.

Amino Acid Sequence↗

Evolution of the immunoglobulin kappa light chain locus in the rabbit: evidence for differential gene conversion events.

The rabbit kappa light chain gene family is characterized by the presence of two constant region (C kappa) genes; the C kappa 1 gene encodes the constant region of the principal rabbit immunoglobulin light chain, the C kappa 2 gene being not or very poorly expressed in domestic rabbits. There exist four major K1 alleles (b4, b5, b6, and b9), which are unequally expressed in heterozygous rabbits at the K1 locus. Here, we compare the nucleotide sequences of the joining (J) clusters of the kappa light chain gene (J kappa) linked to the b4K2 locus and to the b4 and b9 alleles at the K1 locus. As for C kappa genes, there is evidence for intergenic conversion between the J kappa 1 and J kappa 2 clusters as well as maximum divergence in the expressed J segments. The b9 J kappa 1 cluster differs from its b4 counterpart in that two out of the five J kappa segments (J1 and J2) are expressed instead of only one. This implies that preferential expression of the b4 allele as compared to the b9 allele is not only correlated to the number of available J kappa pieces. The b9 J2 segment is functional in spite of the presence of a termination codon immediately upstream of its coding region. Two major structural differences were observed between the J-C intron sequences of the b9 and b4 alleles; namely a 160-base-pair deletion of an A + T-rich sequence in b9 (which also occurs in the K2 locus) and a 10-base-pair deletion plus some substitutions in the region corresponding to the mouse kappa intron activating element. These differences could underlie the lower transcriptional rate of the b9 allele.

Alleles↗