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Biomedical subjects

L Reshef

Publications and source records attributed to L Reshef.

At least 19 recordsLinked to original sources

Cooperation between transcription factors regulates liver development.

Characterization and cloning of liver-enriched transcription factors have provided the tools to study the regulation of liver differentiation. Characterization of the temporal and spatial expression of these factors have shown a sequential order of appearance, in coordination with the expression of their target genes, during liver development. Evidence has accumulated showing cooperation between distinct factors in regulating liver-specific gene expression. Since each of these factors is not uniquely expressed in the liver, yet, the liver is the only tissue that expresses all of these factors, the cooperation between the coexisting liver-enriched factors could constitute the basis for the regulation of liver-specific gene expression.

Animals

Transcriptional regulation of the phosphoenolpyruvate carboxykinase gene by cooperation between hepatic nuclear factors.

To study the transcriptional regulation of the liver gluconeogenic phenotype, the underdifferentiated mouse Hepa-1c1c7 (Hepa) hepatoma cell line was used. These cells mimicked the fetal liver by appreciably expressing the alpha-fetoprotein and albumin genes but not the phosphoenolpyruvate carboxykinase (PEPCK) gene. Unlike the fetal liver, however, Hepa cells failed to express the early-expressed factors hepatocyte nuclear factor 1 alpha (HNF-1 alpha) and HNF-4 and the late-expressed factor C/EBP alpha, thereby providing a suitable system for examining possible cooperation between these factors in the transcriptional regulation of the PEPCK gene. Transient transfection assays of a chimeric PEPCK-chloramphenicol acetyltransferase construct showed a residual PEPCK promoter activity in the Hepa cell line, which was slightly stimulated by cotransfection with a single transcription factor from either the C/EBP family or HNF-1 alpha but not at all affected by cotransfection of HNF-4. In contrast, cotransfection of the PEPCK construct with members from the C/EBP family plus HNF-1 alpha resulted in a synergistic stimulation of the PEPCK promoter activity. This synergistic effect depended on the presence in the PEPCK promoter region of the HNF-1 recognition sequence and on the presence of two C/EBP recognition sequences. The results demonstrate a requirement for coexistence and cooperation between early and late liver-enriched transcription factors in the transcriptional regulation of the PEPCK gene. In addition, the results suggest redundancy between members of the C/EBP family of transcription factors in the regulation of PEPCK gene expression.

Animals

Differential regulation of the rat phosphoenolpyruvate carboxykinase gene expression in several tissues of transgenic mice.

The selective expression of a unique copy gene in several mammalian tissues has been approached by studying the regulatory sequences needed to control expression of the rat phosphoenolpyruvate carboxykinase (PEPCK) gene in transgenic mice. A transgene containing the entire PEPCK gene, including 2.2 kb of the 5'-flanking region and 0.5 kb of the 3'-flanking region, exhibits tissue-specific expression in the liver, kidney, and adipose tissue, as well as the hormonal and developmental regulation inherent to endogenous gene expression. Deletions of the 5'-flanking region of the gene have shown the need for sequences downstream of position -540 of the PEPCK gene for expression in the liver and sequences downstream of position -362 for expression in the kidney. Additional sequences upstream of position -540 (up to -2200) are required for expression in adipose tissue. In addition, the region containing the glucocorticoid-responsive elements of the gene used by the kidney was identified. This same sequence was found to be needed specifically for developmental regulation of gene expression in the kidney and, together with upstream sequences, in the intestine. The apparently distinct sequence requirements in the various tissues indicate that the tissues use different mechanisms for expression of the same gene.

Aging

Cis-regulatory elements that confer differential expression upon the rat gene encoding phosphoenolpyruvate carboxykinase in kidney and liver.

The PCK gene, encoding cytosolic phosphoenolpyruvate carboxykinase, is specifically expressed in gluconeogenic tissues, liver and kidney. Hence it serves as a model of a class of single-copy genes whose transcription is restricted to a few tissues, rather than a unique tissue. To begin delineating the mechanisms that govern this pattern of expression, cis-regulatory elements of PCK were examined using transient transfection assays in PCK-expressing kidney and hepatoma cell lines. The analyses enabled us to identify a proximal element, between nucleotide (nt) positions -121 and -98, relative to the transcription start point that is sufficient for specific expression in kidney cells, but is just one of the elements required for expression in hepatoma cells. A distal element (between nt -487 and -417), which is essential for hepatoma-specific expression, is not needed in kidney cells. We suggest that the differential regulation of PCK expression in the liver and kidney results from an interplay between different cis-regulatory elements and trans-acting factors.

Animals

Regulation of tissue- and development-specific gene expression in the liver.

The liver is equipped with a repertoire of enzymatic activities essential for executing its specialized role in metabolism, the expression of which is regulated during development. The liver-specific phenotype is the consequence of a developmental tissue-specific program of gene expression. Sequences close to many characterized structural liver-specific genes (cis-regulatory elements) regulate their transcription. Identification of such cis-regulatory elements, capable of conferring a hepatocyte-specific gene expression, has been achieved by the introduction of chimeric genes into germ lines, producing transgenic animals, into differentiated cultured cells and into a cell-free transcription system. Such cis-elements in the DNA are recognized by specific DNA-binding nuclear proteins (trans-acting factors) which are liver-enriched and developmentally controlled. The interaction of defined cis-acting elements, near liver-specific genes, with liver-specific trans-acting factors might result in the differentiation of cells of the endoderm lineage into hepatocyte cells.

Animals

Developmentally regulated interactions of liver nuclear factors with the rat phosphoenolpyruvate carboxykinase promoter.

A sequential pattern of interactions of trans-acting factors in rat liver with the phosphoenolpyruvate carboxykinase promoter during late development was observed. A liver-enriched factor, possibly AF1, interacted with the promoter in fetal liver, whereas a factor with the characteristics of C/EBP bound the promoter after birth with the onset of the gene expression.

Age Factors

Separate cis-regulatory elements confer expression of phosphoenolpyruvate carboxykinase (GTP) gene in different cell lines.

The gene encoding cytosolic phosphoenolpyruvate carboxykinase (GTP) [PEPCK; GTP:oxaloacetate carboxy-lyase (transphosphorylating), EC 4.1.1.32], a key enzyme in gluconeogenesis and glyceroneogenesis, is expressed in tissues that arise from different embryonal origins: the gluconeogenic liver arises from endoderm, whereas the gluconeogenic kidney cortex and glyceroneogenic adipose tissue arise from the mesoderm. To identify the cis-regulatory elements conferring the differential gene expression, PEPCK chimeric genes were transfected into two rat hepatoma cell lines (H4IIEC3 and HTC-M1.1) and mouse adipocytes (3T3F442A), which express the endogenous gene, and into myoblasts and preadipocytes, which do not express it. The results demonstrate that 597 base pairs of the 5' flanking region of the PEPCK gene are sufficient to confer cell-specific gene expression in the PEPCK-expressing hepatoma cells and adipocytes. However, different elements within this 597-base-pair region enhance the gene expression in the hepatoma cells (endoderm) and adipocytes (mesoderm). In the hepatocytes, expression is conferred by two elements--one 5' of position -362 and the other 3' of position -98 with respect to the transcription start site. The region in between these two elements (from -362 to -98), which seems to inhibit the gene expression in the hepatocytes, confers enhanced expression in the adipocytes. Moreover, the distal positive regulatory element of the hepatocytes seems to be orientation and PEPCK promoter dependent. In contrast, the positive regulatory element of the adipocytes seems to act as a more typical enhancer. These results suggest that separate cis-regulatory elements confer cell-specific expression of the PEPCK gene.

Animals

trans activation of rat phosphoenolpyruvate carboxykinase (GTP) gene expression by micro-coinjection of rat liver mRNA in Xenopus laevis oocytes.

To study the liver-specific trans activation of the rat phosphoenolpyruvate carboxykinase (PEPCK) gene, the PEPCK promoter was linked to a reporter gene and was microinjected into Xenopus laevis oocytes alone or in conjunction with rat liver poly(A)+ RNA. The rat liver mRNA markedly enhanced the expression of the PEPCK-chimeric construct. This effect appeared to be sequence specific, as it was dependent on the presence of the intact promoter. Moreover, the RNA effect was limited to mRNA preparations from PEPCK-expressing tissues only. Finally, microinjection of size-fractionated liver mRNA revealed that the trans-acting factor(s) is encoded by RNA of 1,600 to 2,000 nucleotides, providing a direct bioassay for the gene(s) involved in this tissue-specific trans-activation process.

Animals

Fate of polyoma origin of replication after its direct introduction into mice.

Recently we have developed a method for direct introduction of calcium phosphate-precipitated DNA into newborn rats. To examine whether the foreign DNA can replicate, a plasmid containing a polyoma origin of replication was injected into newborn mice. The plasmid was found intact in liver and spleen and able to transform bacteria. The foreign DNA had disappeared by the seventh day after injection. Yet, the plasmid DNA containing the polyoma origin of replication had undergone replication in both the liver and the spleen.

Animals

Glucocorticoids control phosphoenolpyruvate carboxykinase gene expression in a tissue specific manner.

Cytosolic Phosphoenolpyruvate carboxykinase is a key gluconeogenic enzyme which is expressed in a tissue specific manner in the liver, kidney and adipose tissue and is under hormonal control. The effect of glucocorticoids on expression of the gene coding for phosphoenolpyruvate carboxykinase in adipose tissue has been studied in vivo in rats and in vitro in adipose tissue organ culture and mouse 3T3 L1 adipocytes. Glucocorticoids, both in vivo and in vitro, repress the steady state level of phosphoenolpyruvate carboxykinase mRNA in the adipose tissue while increasing it in the kidney. The size of the mRNA and its 5' end are identical in adipose tissue and kidney, thus the same promoter is used in all tissues. The inhibitory effect of glucocorticoids on phosphoenolpyruvate carboxykinase gene expression was located at the level of transcription. As glucocorticoids are known to stimulate transcription of phosphoenolpyruvate carboxykinase gene in the liver and kidney, the inhibitory effect on its transcription in adipose tissue suggests that tissue specific transcription factors may modulate the effect of glucocorticoids.

Adipose Tissue

Developmental acquisition of DNase I sensitivity of the phosphoenolpyruvate carboxykinase (GTP) gene in rat liver.

The sensitivity to DNase I digestion of the gene encoding rat phosphoenolpyruvate carboxykinase (GTP) (EC 4.1.1.32) was assessed during development and prior to the onset of expression. This gene is resistant to DNase I digestion in nuclei isolated from livers of 19-day rat fetuses. Gradual acquisition of sensitivity of the phosphoenolpyruvate carboxykinase gene, which starts later than the 19th day of gestation and is completed by the 21st day, occurs before initiation of gene expression. As transcription of the phosphoenolpyruvate carboxykinase gene is not detected until birth, the events observed may represent a shift from a dormant to an active gene. Injection of N6,O2-dibutyryladenosine 3',5'-cyclic monophosphate into fetuses on the 19th day of gestation induces gene expression and sensitivity to DNase I digestion within 3 hr of treatment. While this short treatment does not affect the methylation pattern of the gene, longer treatment of fetuses (2 days) with dibutyryl-cAMP results in premature hypomethylation of the gene. A hierarchy of modifications of the phosphoenolpyruvate carboxykinase gene during development is discussed.

Animals

Developmental expression and modification of genes.

Differentiating tissue is characterized by a specific repertoire of proteins out of which some are developmentally controlled. This review describes modifications in the structure of genes which encode developmentally regulated proteins. Evidence is provided for changes in chromatin conformation and DNA methylation of specific genes-either change can be observed in various stages of some vertebrates. The involvement of hormones in regulating DNA modifications is suggested, and interrelationships between DNA modifications and gene expression are discussed.

5-Methylcytosine

Direct introduction of genes into rats and expression of the genes.

A method of introducing actively expressed genes into intact mammals is described. DNA precipitated with calcium phosphate has been injected intraperitoneally into newborn rats. The injected genes have been taken up and expressed by the animal tissues. To examine the generality of the method we have injected newborn rats with the chloramphenicol acetyltransferase prokaryotic gene fused with various viral and cellular gene promoters and the gene for hepatitis B surface antigen, and we observed appearance of chloramphenicol acetyltransferase activity and hepatitis B surface antigen in liver and spleen. In addition, administration of genes coding for hormones (insulin or growth hormone) resulted in their expression.

Acetyltransferases

Tissue-specific hypomethylation and expression of rat phosphoenolpyruvate carboxykinase gene induced by in vivo treatment of fetuses and neonates with 5-azacytidine.

Rat fetuses of 17-19-day gestation were injected in utero with 5-azacytidine (two to three daily injections of 40 micrograms/fetus). Neonates were injected with seven daily injections (1 mg/kg). DNA samples were isolated from the fetal and neonatal livers and neonatal spleen and subjected to analysis of their methylation status. Overall methylation was analyzed by the nearest-neighbor analysis (at CpG sites) and the pattern of methylation at CCGG sites by Southern blot analysis using phosphoenolpyruvate carboxykinase (PEPCK) sequences as probes. While DNAs from the liver and spleen undergo hypomethylation to the same extent in response to the 5-azacytidine treatment, the changes in the methylation patterns of the PEPCK gene in the two tissues are strikingly different. The changes observed indicate that a decrease in the methylase activity (inhibition by 5-azacytidine) results in site- and tissue-specific hypomethylation. The tissue-specific changes in the methylation pattern are associated with a tissue-specific expression of the PEPCK gene. Although the gene is hypomethylated by azacytidine in both liver and spleen, it is expressed only in the liver. The expression of already active genes (PEPCK in the kidney and albumin in the liver) is not further enhanced by the drug.

Animals

Conservation from rat to human of cytosolic phosphoenolpyruvate carboxykinase and the control of its gene expression.

Structural conservation of cytosolic phosphoenolpyruvate carboxykinase protein and mRNA sequence was found in all species examined from rodents to human. The mitochondrial isoenzyme, in all species tested, represents a distinct protein. Moreover, irrespective of the ratio of cytosolic to mitochondrial isoenzyme, cytosolic phosphoenolpyruvate carboxykinase activity in the human as in the rat is controlled at the level of gene expression and through the same multiple hormonal stimulation. This evolutionary conservation of the cytosolic phosphoenolpyruvate carboxykinase structure and mode of regulation supports the enzymes' physiological importance in mammals.

Animals

Sequential changes in DNA methylation patterns of the rat phosphoenolpyruvate carboxykinase gene during development.

The cytosolic phosphenolpyruvate carboxykinase [PEPCK; GTP:oxaloacetate carboxy-lyase (transphosphorylating), EC 4.1.1.32] gene was isolated from a rat genomic library, and a map of the methylatable sites C-C-G-G and G-C-G-C has been constructed. The extent of methylation of 18 sites in the PEPCK gene in adult liver, kidney, spleen, and heart muscle and in fetal liver has been analyzed using the 5-methylcytosine sensitive enzymes Hpa II and Hha I. This analysis revealed extensive undermethylation of the PEPCK gene in the adult liver and kidney (PEPCK-expressing tissue), whereas the gene in adult spleen and heart muscle as well as in fetal liver (PEPCK-nonexpressing tissues) was heavily methylated. However, unlike the gene in the adult nonexpressing tissues, a region in the middle of the gene was found to be partially hypomethylated in fetal liver. This hypomethylation correlates with the competence of the fetal liver gene to be expressed. Treatment of fetuses by in utero injection of 5-azacytidine causes a hypomethylation-associated activation of the PEPCK gene. Taken together, the present findings suggest a sequential loss of methyl groups during development. When related to PEPCK gene expression, the sequential loss of methyl groups demonstrates an early stage prior to transcription characterized by hypomethylation of discrete sites and a later developmental hypomethylation of all sites associated with the mature active PEPCK gene around the time of birth.

Age Factors

Primary activation of cytosolic phosphoenolpyruvate carboxykinase gene in fetal rat liver and the biogenesis of its mRNA.

The primary appearance of phosphoenolpyruvate (P-pyruvate) carboxykinase RNA transcripts in fetal liver was induced by a number of different stimulii . This may occur as rapidly as an hour after injection in utero of N6,O2'-dibutyryl-adenosine 3',5'-monophosphate (Bt2cAMP) to fetuses, suggesting that all stimulii predominantly affect activation of the P-pyruvate carboxykinase gene. Bt2cAMP treatment induces the appearance of the enzyme RNA transcripts, predominantly of the mature type in the cytoplasm. However, insulin deficiency by streptozotocin treatment causes the appearance of large-size as well as mature mRNA in the nucleus, in addition to the appearance of P-pyruvate carboxykinase mRNA in the cytoplasm. Insulin treatment of such diabetic fetuses, prior to causing the disappearance of P-pyruvate carboxykinase mRNA, reduces nuclear transcripts but increases the abundance of mature cytoplasmic enzyme mRNA. Bt2cAMP treatment of insulin-deficient fetuses causes an additive effect, increasing the abundance of not only the mature but the large P-pyruvate carboxykinase RNA transcripts as well. The results are best interpreted as insulin acting both to inhibit transcription of and accelerate post-transcriptional processes affecting P-pyruvate carboxykinase RNA.

Animals