PubMed Health⌕ Search

Biomedical subjects

D Dufort

Publications and source records attributed to D Dufort.

8 recordsLinked to original sources

Regulation of a transcription factor network required for differentiation and metabolism.

Hepatocyte nuclear factors (HNFs) are a heterogeneous class of evolutionarily conserved transcription factors that are required for cellular differentiation and metabolism. Mutations in HNF-1alphaand HNF-4alpha genes impair insulin secretion and cause type 2 diabetes. Regulation of HNF-4/HNF-1 expression by HNF-3alpha and HNF-3beta was studied in embryoid bodies in which one or both HNF-3alpha or HNF-3beta alleles were inactivated. HNF-3beta positively regulated the expression of HNF-4alpha/HNF-1alpha and their downstream targets, implicating a role in diabetes. HNF-3beta was also necessary for expression of HNF-3alpha. In contrast, HNF-3alpha acts as a negative regulator of HNF-4alpha/HNF-1alpha demonstrating that HNF-3alpha and HNF-3beta have antagonistic transcriptional regulatory functions in vivo. HNF-3alpha does not appear to act as a classic biochemical repressor but rather exerts its negative effect by competing for HNF-3 binding sites with the more efficient activator HNF-3beta. In addition, the HNF-3alpha/HNF-3beta ratio is modulated by the presence of insulin, providing evidence that the HNF network may have important roles in mediating the action of insulin.

Animals↗

The transcription factor HNF3beta is required in visceral endoderm for normal primitive streak morphogenesis.

During early embryogenesis, the transcription factor HNF3beta is expressed in visceral and definitive endoderm, node, notochord and floorplate. A targeted mutation in the HNF3&bgr ; gene results in the lack of a definitive node and notochord. Furthermore, lack of HNF3beta results in failure of proper primitive streak elongation. To address whether HNF3beta is required in visceral endoderm, we have used tetraploid embryo-ES cell aggregations to generate chimeric mouse embryos with wild-type visceral endoderm and homozygous mutant HNF3beta embryonic ectoderm or vice versa. Replacing the visceral endoderm of mutant HNF3beta embryos rescued proper primitive streak elongation and, conversely, mutant visceral endoderm imposed a severe embryonic-extraembryonic constriction on wild-type embryonic ectoderm. Restoration of normal streak morphogenesis was not sufficient to allow formation of the node and notochord in HNF3beta mutant embryos. Thus, our results demonstrate that HNF3beta has two separate roles in primitive streak formation. One is to act within the visceral endoderm to promote proper streak morphogenesis. The second is autonomous to the node and its precursors and involves specification of node and notochord cell fates. HNF3beta mutant embryos rescued for the embryonic-extraembryonic constriction developed further than mutant embryos, allowing examination of later roles for HNF3beta. We show that such mutant embryos lack foregut and midgut endoderm. In addition, left-right asymmetry is affected in the mutant embryos.

Animals↗

Conserved cut repeats in the human cut homeodomain protein function as DNA binding domains.

Homeodomain-containing proteins are believed to function as sequence-specific DNA binding proteins, regulating gene expression. Specificity of sequence recognition is conferred by the homeodomain acting either alone or in conjunction with other conserved DNA binding domains as is the case for Pou domain and Paired domain proteins. The recent isolation of cDNAs encoding mammalian homologues of the Drosophila Cut homeodomain protein has revealed that the 72-amino acid Cut Repeats are conserved in evolution. We have investigated the biochemical activity of human Cut Repeats by expressing fusion proteins containing glutathione S-transferase linked to various combinations of Cut Repeats and Cut homeodomain. We show by gel retardation and DNase footprinting assays that Cut Repeats can function as DNA binding domains, either independently or in cooperation with the homeodomain. The binding affinity (KD) to a specific recognition site was estimated to be 8 x 10(-9) M for Cut Repeat 3 and 4 x 10(-10) M for Cut Repeat 1. When both Cut Repeat 3 and the Cut homeodomain were present in the fusion protein, the binding affinity was increased to 4 x 10(-11) M. These results define a novel class of proteins that contain in addition to the homeodomain a second conserved protein domain, the Cut Repeats, that also function as a DNA binding domain.

Animals↗

The human cut homeodomain protein represses transcription from the c-myc promoter.

Studies of the c-myc promoter have shown that efficient transcription initiation at the P2 start site as well as the block to elongation of transcription require the presence of the ME1a1 protein binding site upstream of the P2 TATA box. Following fractionation by size exclusion chromatography, three protein-ME1a1 DNA complexes, a, b, and c, were detected by electrophoretic mobility shift assay. A cDNA encoding a protein present in complex c was isolated by screening of an expression library with an ME1a1 DNA probe. This cDNA was found to encode the human homolog of the Drosophila Cut homeodomain protein. The bacterially expressed human Cut (hu-Cut) protein bound to the ME1a1 site, and antibodies against hu-Cut inhibited the ME1a1 binding activity c in nuclear extracts. In cotransfection experiments, the hu-Cut protein repressed transcription from the c-myc promoter, and this repression was shown to be dependent on the presence of the ME1a1 site. Using a reporter construct with a heterologous promoter, we found that c-myc exon 1 sequences were also necessary, in addition to the ME1a1 site, for repression by Cut. Taken together, these results suggest that the human homolog of the Drosophila Cut homeodomain protein is involved in regulation of the c-myc gene.

Animals↗

A protein binding site from the murine c-myc promoter contributes to transcriptional block.

Recent studies have revealed that expression of several eukaryotic genes can be regulated at the level of transcription elongation. As a first step to elucidate the mechanism by which transcription elongation is modulated, several groups have identified sequences necessary for transcriptional block within the c-myc gene. These studies indicated that transcriptional block depends not only on sequences surrounding the sites of block, but also on sequences within the promoter: some deletions within the c-myc promoter eliminated transcriptional block and, with chimeric constructs, transcriptional block was observed when some heterologous promoters but not others were fused to the c-myc termination region. Using a chimeric construct containing the H-2Kb major histocompatibility class gene promoter linked to the c-myc first exon, we show that transcriptional block is increased by the addition of a 25 bp DNA sequence from the c-myc promoter. Similar results are obtained whether this sequence is inserted upstream or downstream of the transcription initiation site. We further show that nuclear factors interact with this sequence in vitro. Interestingly, when a mutated version of this sequence was tested, we observed decreased nuclear factor binding in vitro as well as reduced transcriptional block in nuclear run-on transcription assays. These results suggest that interactions of protein factors with specific nucleotide sequences near the transcription initiation site can affect elongation of transcription at sites located further downstream.

Animals↗

A cis-acting element in the promoter region of the murine c-myc gene is necessary for transcriptional block.

A block to elongation of transcription has been shown to occur within the first exon of the human and murine c-myc genes. The extent of this block was found to vary with the physiological state of cells, indicating that modulation of the transcriptional block can serve to control the expression of this gene. To determine which sequences are required in cis for the transcriptional block, we generated a series of constructs containing various portions of murine c-myc 5'-flanking and exon 1 sequences. We established populations of HeLa and CV-1 cells stably transfected with these constructs. The transcription start sites were determined by S1 nuclease mapping analysis, and the extent of transcriptional block was measured by nuclear run-on transcription assays. Our results demonstrate that at least two cis-acting elements are necessary for the transcriptional block. A 3' element was found to be located in the region where transcription stopped and showed features reminiscent of some termination sites found in procaryotes. A 5' element was positioned between the P1 and P2 (C. Asselin, A. Nepveu, and K. B. Marcu, Oncogene 4:549-558, 1989). Removal of the more 3' binding site abolished the transcriptional block.

Animals↗

Multiple subelements within the polyomavirus enhancer function synergistically to activate DNA replication.

The polyomavirus origin for DNA replication comprises at least two essential, but functionally distinct, cis-acting components. One of these, the origin core, is required only for DNA replication. It includes binding sites for large T antigen and the origin of bidirectional DNA replication. The other component is required for both transcription and DNA replication and is represented by two functionally redundant regions, alpha and beta, which are elements of the polyomavirus enhancer. Whereas either enhancer element will activate DNA replication, both enhancer elements are required to constitute a functional enhancer of transcription. To identify the sequences that make up each enhancer element, we have subjected them separately to in vitro mutagenesis and measured their capacity to activate replication in cis of the origin core in MOP-8 cells, which provide all trans-acting replicative functions including large T antigen. The results reveal that the beta enhancer element is composed of three subelements, two auxiliary subelements, and a core subelement. The core subelement independently activated DNA replication, albeit poorly. The auxiliary subelements, which were inactive on their own, acted synergistically with the core subelement to increase its activity. Interestingly, dimers of the beta core subelement functioned as well as the combination of a beta auxiliary subelement and a core subelement, suggesting that the subelements are functionally equivalent. The alpha enhancer element is organized similarly; it too comprises an auxiliary subelement and a core subelement. These results lead us to suggest that the polyomavirus enhancer comprises two levels of organization; two or more enhancer elements form an enhancer, and two or more subelements make up an enhancer element. The subelements share few sequences and serve as binding sites for distinct cellular factors. It appears, therefore, that a number of different cellular proteins function cooperatively to activate polyomavirus DNA replication by a common mechanism.

Base Sequence↗