Search PubMed⌕ Search

Biomedical subjects

R Cortese

Publications and source records attributed to R Cortese.

At least 109 records · Page 6Linked to original sources

Transcription of the promoter of the rat NF-1 gene depends on the integrity of an Sp1 recognition site.

The transcription start site and promoter of the rat gene coding for the transcription factor NF-1 have been identified. The NF-1 promoter was fused to the chloramphenicol acetyltransferase-coding sequence, and the resulting plasmid was transcriptionally active in the HepG2 cell line. Footprinting and gel retardation analysis indicated that the transcription factor Sp1 binds to the NF-1 promoter. Mutants in the Sp1-binding site displayed a strong reduction in transcriptional activity.

Animals↗

Characterization of the promoter elements required for hepatic and intestinal transcription of the human apoB gene: definition of the DNA-binding site of a tissue-specific transcriptional factor.

The promoter elements important for intestinal and hepatic transcription of the human apoB gene have been localized downstream of nucleotide -150. Footprinting analysis using hepatic nuclear extracts identified four protected regions, -124 to -100, -97 to -93, -86 to -33, and +33 to +52. Gel electrophoretic mobility shift assays showed that multiple factors interact with the apoB sequence -86 to -33, while the region -88 to -61 binds a single nuclear factor. Methylation interference analysis and nucleotide substitution mutagenesis identified the binding site of the factor between residues -78 and -68. Binding competition experiments indicate that this factor recognizes the regulatory elements of other liver-specific genes.

Apolipoproteins B↗

Post-transcriptional control of negative acute phase genes by transforming growth factor beta.

During the acute phase (AP) reaction the expression of a series of liver-specific genes coding for secretory proteins is either stimulated or suppressed by different cytokines released by activated monocytes. Transforming growth factor beta (TGF-beta) is a cytokine that, first identified for its ability to regulate cellular growth, has been gradually recognized to modulate several other functions. We have investigated the effect of TGF-beta on the expression of acute phase genes in liver cells. We found that TGF-beta selectively induces a specific decreases in the amount of mRNAs of genes negatively regulated during AP reaction, like albumin and apolipoprotein A-I (ApoA-I). The inhibitory effect of TGF-beta on the expression of negative AP genes is primarily post-transcriptional and it is very likely to be mediated via an enhancement of the turnover of both albumin and ApoA-I mRNAs.

Acute-Phase Proteins↗

A negative regulatory element in the promoter of the human alpha 1-antitrypsin gene.

A "minimal tissue-specific element" of the human alpha 1-antitrypsin (alpha 1-AT) gene promoter, located in the -137/-37 region, is able to drive hepatoma-specific transcription from the heterologous SV40 promoter. Here we show that, in HeLa cells, this element is inactivated by a negative regulatory mechanism. This negative control can be overcome by deletion or mutation of two specific DNA domains.

Base Sequence↗

The analysis of the human hemopexin promoter defines a new class of liver-specific genes.

Hemopexin (Hpx) is a plasma glycoprotein which is expressed only in the liver. It is synthesized at a lower rate in the fetal liver than in the adult, and its level increases during acute infections. As shown here, a fragment of the human hemopexin promoter spanning from positions -130 to +22 relative to the cap site is sufficient to direct cell-specific transcription of a reporter gene. Within this segment a short sequence, located between positions -120 and -104, is responsible for this effect. This positive cis-acting element, the Hpx A site, interacts with a family of nuclear proteins, some of which are present only in hepatoma cells. The potential meaning of these complex DNA-protein interactions and the homology with elements present on the promoter of other liver-specific and acute phase genes are discussed.

Base Sequence↗

The liver-specific transcription factor LF-B1 contains a highly diverged homeobox DNA binding domain.

The nuclear protein LF-B1 (also referred to as HNF-1) is a transcription activator required for the expression of several liver-specific genes. LF-B1 has been purified to homogeneity from rat liver nuclear extracts. The sequence of the protein has been partially determined and, subsequently, overlapping cDNA clones containing the entire open reading frame of LF-B1 were isolated. The full-length cDNA encodes a 628 amino acid protein and directs the synthesis in vitro of a protein capable of binding DNA with the same specificity as LF-B1. The cDNA was recombined into a vaccinia virus vector and active LF-B1 was obtained from infected HeLa cells. Addition of the vaccinia recombinant protein to rat spleen extracts results in activation of transcription of an LF-B1-dependent promoter. The DNA binding domain of LF-B1 is located in the amino-terminal part of the protein and displays distant structural similarity to the homeobox domain. The distribution of LF-B1 mRNA is restricted to liver, which correlates with the tissue-specific expression of its target genes.

Amino Acid Sequence↗

The human haptoglobin gene promoter: interleukin-6-responsive elements interact with a DNA-binding protein induced by interleukin-6.

Transcription of the human haptoglobin (Hp) gene is induced by interleukin-6 (IL-6) in the human hepatoma cell line Hep3B. Cis-acting elements responsible for this response are localized within the first 186 bp of the 5'-flanking region. Site-specific mutants of the Hp promoter fused to the chloramphenicol acetyl transferase (CAT) gene were analysed by transient transfection into uninduced and IL-6-treated Hep3B cells. We identified three regions, A, B and C, defined by mutation, which are important for the IL-6 response. Band shift experiments using nuclear extracts from untreated or IL-6-treated cells revealed the presence of IL-6-inducible DNA binding activities when DNA fragments containing the A or the C sequences were used. Competition experiments showed that both sequences bind to the same nuclear factors. Polymers of oligonucleotides containing either the A or the C regions confer IL-6 responsiveness to a truncated SV40 promoter. The B region forms several complexes with specific DNA-binding proteins different from those which bind to the A and C region. The B region complexes are identical in nuclear extracts from IL-6-treated and untreated cells. While important for IL-6 induction in the context of the haptoglobin promoter, the B site does not confer IL-6 inducibility to the SV40 promoter. Our results indicate that the IL-6 response of the haptoglobin promoter is dependent on the presence of multiple, partly redundant, cis-acting elements.

Base Sequence↗

Interleukin 6 induces a liver-specific nuclear protein that binds to the promoter of acute-phase genes.

Interleukin 6 (IL-6) is responsible for a variety of biological effects related to the activation of defenses against infection or inflammation, including the immune response and the acute-phase reaction. Its mechanism of action is unknown. It has recently been shown to induce transcription of several genes encoding acute-phase proteins. Here we describe the identification of an IL-6 responsive element (IL-6RE) present in the promoter of the human hemopexin gene. This element is necessary and sufficient for the IL-6-dependent activation of transcription. The IL-6 effect does not require de novo protein synthesis. A liver-specific nuclear protein (IL-6DBP) binds to the hemopexin IL-6RE as well as to similar sequences on the promoter of other acute-phase genes. IL-6DBP DNA binding activity is induced by IL-6 via a posttranslational mechanism.

Acute-Phase Proteins↗

Recombinant interleukin 6 regulates the transcriptional activation of a set of human acute phase genes.

The phenomenon of acute phase (AP) response can be reproduced in vitro using cultured cells of hepatic origin by stimulation with the crude supernatant of activated monocytes (MoCM). Several monocyte-derived factors have been identified which might be responsible, alone or in combination, for the induction of AP response, but recently the attention has been focused on interleukin 6 (IL-6). We have previously shown that part of the AP response consists of the increase in the rate of transcription of the AP genes. Here we have treated the human hepatoma cell line Hep 3B with either crude MoCM or recombinant IL-6 and compared the effect of the two stimulants on the expression of both endogenous AP genes and recombinant plasmids introduced into the cells by transfection. The transfected plasmids contained the 5'-flanking region of AP genes fused to the coding region of the bacterial chloramphenicol acetyltransferase gene. We observe that the induction of mRNA accumulation of the endogenous genes corresponds to the transcriptional activation of the chloramphenicol acetyltransferase fusions. This is good evidence that the effect of IL-6 is totally or partially exerted at the level of transcription and that short segments of the 5'-flanking sequences of the inducible genes contain IL-6-responsive elements. Our results show that IL-6 is fully effective only on some of all the genes induced or repressed by MoCM, whereas others are only partially affected or totally nonresponsive.

Acetyltransferases↗

Two distinct factors interact with the promoter regions of several liver-specific genes.

A segment of the human alpha 1-antitrypsin (alpha 1AT) 5'-flanking region comprising nucleotides -137 to -37 from the start of transcription is sufficient to drive liver-specific transcription from the homologous alpha 1AT promoter and from the heterologous SV40 promoter. In this paper we characterize two proteins, LF-A1 and LF-B1, whose ability to bind wild-type and mutant alpha 1AT promoter segments correlates with the ability of these segments to activate transcription in vivo. DNase I protection and methylation interference analysis reveals that LF-A1 recognizes sequences present in the regulatory region of the human alpha 1-antitrypsin, apolipoprotein A1 and haptoglobin-related genes. These sequences share a common 5' TGG/A A/C CC 3' motif. LF-B1 binds to the palindrome 5' TGGTTAAT/ATTCACCA 3' which is present in the human alpha 1-antitrypsin gene between positions -78 and -62 from the start of transcription. LF-B1 also recognizes a related sequence present in the human albumin gene between -66 and -50. These results suggest that LF-A1 and LF-B1 are common positive trans-acting factors which are required for the expression of several genes in the hepatocyte.

Albumins↗

Two different liver-specific factors stimulate in vitro transcription from the human alpha 1-antitrypsin promoter.

The region from -137 to -2 of the human alpha 1-antitrypsin (alpha 1AT) promoter directs liver-specific in vitro transcription. Two cis-acting elements, A and B, have been identified within this segment by site-directed mutagenesis. Competition with synthetic oligonucleotides corresponding either to the A or to the B sequence inhibits transcription from the wild-type promoter in vitro. Cis-linked A and B elements mediate liver-specific transcription from a truncated HSV-TK promoter in vitro. Five different proteins, LF-A1, LF-A2, LF-B1, LF-B2 and LF-C, bind to the alpha 1AT promoter in liver extracts. LF-A1 and LF-B1 are positive transcriptional factors which bind to the A and B elements respectively. Their absence in spleen provides an explanation for the liver specificity of transcription. A protein similar to LF-B2 is present in spleen. Binding of LF-B1 and LF-B2 to the alpha 1AT promoter is mutually exclusive, suggesting that LF-B2 might be a repressor.

Base Sequence↗

Purification of a NF1-like DNA-binding protein from rat liver and cloning of the corresponding cDNA.

NF1-like proteins play a role in transcription of liver-specific genes. A DNA-binding protein, recognizing half of the canonical NF1 binding site (TGGCA) present on the human albumin and retinol-binding protein genes, has been purified from rat liver. Several peptides deriving from a tryptic digest of the purified protein were sequenced and the sequence was used to synthesize specific oligonucleotides. Two overlapping cDNA clones were obtained from a rat-liver cDNA library; their sequence reveals an open reading frame coding for 505 amino acids, including all the peptides sequenced from the purified protein. The DNA-binding domain, most likely located within the first 250 amino acids, is highly homologous to the sequence of CTF/NF1 purified from HeLa cells. Northern analysis reveals several mRNA species present in different combinations in various rat tissues.

Amino Acid Sequence↗

Expression of human alpha 1-acid glycoprotein genes in cultured cells and in transgenic mice.

The human genome contains three alpha 1-glycoprotein genes (AGP-A, AGP-B, and AGP-B') encoding for slightly different forms of the protein. The major component of human alpha 1-acid glycoprotein found in plasma is coded by AGP-A, which is expressed in liver and in hepatoma cell lines and is induced by inflammatory stimuli. We have studied the regulation of the cloned AGP-A gene by transfection into cell lines of hepatic and nonhepatic origin. Unlike any other liver-specific gene investigated so far, every AGP construct tested was expressed with comparable efficiency in hepatoma and HeLa cells. In contrast, identical constructs in transgenic mice are expressed in a tissue-specific manner and are regulated by acute-phase stimuli. Transgenic mice carrying the cluster of three AGP genes secrete the human protein in the serum, and the corresponding mRNA is mainly derived from the AGP-A gene. The mRNA is liver specific, and its concentration increases several fold following experimentally induced inflammation. Additional transgenic lines carrying only the AGP-A gene showed that sufficient information for tissue-specific and regulated expression is contained within a 6.6-kb segment comprising the whole coding region plus 1.2-kb 5'-flanking and 2-kb 3'-flanking DNA.

Animals↗