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G C Sen

Publications and source records attributed to G C Sen.

At least 55 records · Page 3Linked to original sources

The cyclic AMP response elements of the genes for angiotensin converting enzyme and phosphoenolpyruvate carboxykinase (GTP) can mediate transcriptional activation by CREM tau and CREM alpha.

The potential of the CREM family of proteins to activate transcription of the genes encoding the testis-specific isozyme of angiotensin converting enzyme (ACET) and the gluconeogenic enzyme, phosphoenolpyruvate carboxykinase (GTP) (PEPCK) (EC 4.1.1.32) were investigated. Both CREM tau and CREM alpha bind efficiently to the putative cyclic AMP response element (CRE) present in the ACET gene (CRET) and to the CRE in the PEPCK gene. In HepG2 cells, the CRE was required for the strong stimulation by CREM tau of the expression of a chimeric PEPCK (-210 to +73)-chloramphenicol acetyl transferase (CAT) gene. The CRE could be mutated to the CRET sequence without losing the stimulatory effects of CREM tau. However, a similar chimeric gene driven by the regulatory region of the ACET gene, which contains the CRET site, could only be stimulated by CREM tau when its imperfect TATA element was mutated to an authentic TATA. Surprisingly, CREM alpha, an alleged inhibitor of CRE-mediated transcription, stimulated the expression of both PEPCK-CAT and ACET-CAT genes in HepG2 cells, a process which required the presence of the CRE and the CRET sites, respectively. In contrast, when the same CRE elements were used to drive the transcription of a chimeric gene containing the thymidine kinase promoter linked to the CAT structural gene, CREM alpha inhibited its expression in HepG2 and JEG3 cells. The expression of the same chimeric gene, however, was stimulated by CREM alpha in F9 embryonal carcinoma cells. These results demonstrated that the nature of the transcriptional effects of CREM isoforms on CRE-mediated transcription depends on the specific gene, the specific cell type and the promoter context of the CRE site.

Animals↗

Activation of interferon-inducible 2'-5' oligoadenylate synthetase by adenoviral VAI RNA.

2'-5' oligoadenylate (2-5(A)) synthetase and protein kinase, RNA activated (PKR) are the only two known enzymes that bind double-stranded RNA (dsRNA) and get activated by it. We have previously identified their dsRNA binding domains, which do not have any sequence homology. Here, we report a profound difference between the two enzymes with respect to the structural features of the dsRNA that are required for their activation. The adenoviral virus-associated type I (VAI) RNA cannot activate PKR, although it binds to the protein and thereby prevents its activation by authentic dsRNA. In contrast, we observed that VAI RNA can both bind and activate 2-5(A) synthetase. Mutations in VAI RNA, which removed occasional mismatches present in its double-stranded stems, markedly enhanced its 2-5(A) synthetase-activating capacity. These mutants, however, are incapable of activating PKR. Other mutations, which disrupted the structure of the central stem-loop region of the VAI RNA, reduced its ability to activate 2-5(A) synthetase. These debilitated mutants could bind to the synthetase protein, although they fail to bind to PKR.

2',5'-Oligoadenylate Synthetase↗

Transcriptional repression of heterologous constitutive and inducible promoters by the negative element of the rabbit angiotensin-converting enzyme gene.

We previously identified a transcriptional negative element (NE) present in the rabbit angiotensin-converting enzyme (ACE) gene. Here, we report that the NE can also repress transcription driven by the strong constitutive promoters of the human beta-actin gene and SV40 in both ACE-expressing and nonexpressing cell lines. The extent of repression was influenced by the relative positions of the NE and the SV40 promoter and enhancer. The NE could also repress transcription driven by interleukin-1 and interferon-alpha-inducible promoters. Finally, transcription from a TATA-less promoter was equally repressed by the NE. Taken together, these results suggest that the NE of the rabbit ACE gene can function as a universal transcriptional silencer element.

Actins↗

Role of the amino-terminal residues of the interferon-induced protein kinase in its activation by double-stranded RNA and heparin.

We have previously reported that the amino-terminal residues 1-34 of the interferon-induced protein kinase (RNA-activated) (PKR) are necessary for its binding to and activation by double-stranded RNA (dsRNA) (Patel, R. C., and Sen, G. C. (1992) J. Biol. Chem. 267, 7671-7676). Here, we report that the amino-terminal 24 residues are indispensable for these properties of the enzyme. The replacement of these residues with 14 unrelated residues fully restored the protein's dsRNA binding activity, but only partially restored the enzyme activity. Mutation of residues 18 and 19 revealed their importance in determining the affinity of PKR for dsRNA and its ability to phosphorylate eukaryotic initiation factor 2 alpha. These mutations, however, did not affect PKR's autophosphorylation activity. Deletion mutants that failed to bind to and be activated by dsRNA could be fully activated by the alternative activator, heparin. Thus, activation of PKR by dsRNA and heparin is mediated through different mechanisms that require different domains of the protein.

Amino Acid Sequence↗

Role of glycosylation in the biosynthesis and activity of rabbit testicular angiotensin-converting enzyme.

Angiotensin-converting enzyme (ACE) is a type I glycoprotein anchored in the plasma membrane by a hydrophobic domain near its carboxyl terminus. The enzymatically active extracellular domain of ACE is slowly released from the cell by cleavage-removal of its membrane-anchoring carboxyl-terminal region. In the present study, we investigated the role of N- and O-glycosylation in intracellular transport and extracellular cleavage-secretion of rabbit testicular ACE. For ACE expression, we used an in vitro translation system, a permanently transfected mouse cell line, and human and Chinese hamster cells transiently transfected with vaccinia virus-T7 RNA polymerase-driven expression vectors. Sugar modifications of ACE were analyzed by testing its sensitivity to specific glycosidases. Cellular protein glycosylation was inhibited by using chemical inhibitors and a mutant cell line defective in protein glycosylation. Our experiments demonstrated that newly synthesized ACE acquires both N- and O-linked sugars before its cleavage-secretion and complete blockage of glycosylation results in rapid intracellular turnover of underglycosylated ACE. However, ACE synthesized without N-linked complex sugars and O-linked sugars can undergo normal transport and cleavage-secretion, and the underglycosylated protein is enzymatically active.

Animals↗

Identification of positive and negative transcriptional regulatory elements of the rabbit angiotensin-converting enzyme gene.

The two tissue-specific mRNAs encoding the isozymes of rabbit angiotensin-converting enzyme (ACE) are generated from the same gene by alternative choice of two transcription initiation sites 5.7 kb apart. In the current study, we have characterized the regulatory sites controlling the transcription of the larger pulmonary isozyme mRNA. For this purpose, reporter genes driven by varying lengths of upstream region of the ACE gene were transfected into ACE-producing cells. Our results demonstrated that the transcription of this gene is primarily driven by positive elements within the first 274 bp DNA upstream of the transcription initiation site. The reporter gene driven by this region was expressed in two ACE-producing cells but not in two ACE-non-producing cells thereby establishing its tissue specificity. Our experiments also revealed the existence of a strong negative element located between -692 and -610 positions. This element suppressed the expression of the reporter gene in a dose-dependent and position and orientation-independent fashion thus suggesting that it is a true silencer element. It could also repress the expression of a reporter gene driven by the heterologous strong promoter of the beta-actin gene. The repressing effects of the negative element could be partially overcome by cotransfecting the isolated negative element along with the reporter gene containing the negative element. This result was possibly due to the functional removal of a limiting trans-acting factor which binds to this element. Electrophoretic mobility shift assays revealed that the negative element can form several complexes with proteins present in the nuclear extract of an ACE-producing cell line. At least part of the negative element is strongly conserved in the upstream regions of the human and mouse ACE genes.

Animals↗

Regulated cleavage-secretion of the membrane-bound angiotensin-converting enzyme.

Angiotensin-converting enzyme (ACE) is an ectoprotein anchored in the plasma membrane through a hydrophobic domain near its carboxyl-terminal region. Mouse epithelial cells transfected with rabbit testicular ACE cDNA, synthesize, glycosylate, and secrete ACE by cleavage processing of its membrane-anchoring carboxyl-terminal region. Because the cleavage-secretion process is slow, the enzyme accumulates on the cell surface. We show that this process can be enhanced by treatment of cells with tumor-promoting phorbol esters leading to depletion of the cell surface enzyme. The cleavage processing occurs only after the protein has reached the cell surface and is not affected by disruption of the Golgi apparatus or the lysosomal compartments. The exact peptide bond cleaved has been identified by sequencing the amino-terminal residues of the purified COOH-terminal tail left in the cells after ACE is secreted and the carboxyl-terminal residues of secreted ACE. The cleavage occurs at a monobasic site between Arg-663 and Ser-664 generating the soluble enzyme and leaving a cell-bound protein of 74 residues. These results demonstrate the existence of cellular mechanisms that regulate the conversion of cell-bound ACE to a soluble enzyme.

Amino Acid Sequence↗

Characterization of the interactions between double-stranded RNA and the double-stranded RNA binding domain of the interferon induced protein kinase.

The interferon-inducible protein kinase, PKR, requires double-stranded (ds) RNA for its activation. We have previously mapped its dsRNA-binding domain (DRBD) to the amino terminal 170 residues (Patel and Sen, 1992). In the present study, we have characterized in detail the interactions between dsRNA and DRBD. For this purpose, DRBD was produced in bacteria as a polyhistidine-tagged protein and purified by affinity chromatography. A polyclonal antibody was raised against purified DRBD. For studying dsRNA-DRBD interactions, a Northwestern assay and an electrophoretic mobility shift assay (EMSA) using a radiolabeled in vitro transcribed 82 bp dsRNA probe was developed. The antiserum reacted with both DRBD and PKR but did not prevent their interactions with dsRNA. DRBD, on the other hand, blocked the activation of PKR by dsRNA. DRBD and the dsRNA probe formed multimeric complexes which were separable by EMSA. The antibody could interact with these complexes and supershift their mobility. Competition with unlabeled dsRNA revealed that the dimeric DRBD-dsRNA complex was much more stable than the monomeric complex. Similar competition assays using 11 different synthetic and natural RNA molecules revealed that only authentic dsRNA molecules could effectively compete with the probe for binding DRBD in a sequence-independent fashion.

Amino Acid Sequence↗

Mutations in two specific residues of testicular angiotensin-converting enzyme change its catalytic properties.

Chemical modifications of 2 specific residues present in angiotensin-converting enzyme (ACE) result in its inactivation, thereby suggesting that these 2 residues may be important for its enzyme activity. We directly tested this hypothesis by substituting Tyr-236 with Phe and Lys-154 with Glu in rabbit testicular ACE (ACET) using site-directed mutagenesis of the corresponding cDNA. Wild type ACET, the two single mutants, and the double mutant were expressed in HeLa cells using the vaccinia virus-T7 polymerase expression system. The rate of synthesis, post-translational modifications, and cleavage secretion pattern of all four proteins were indistinguishable. The enzymatic properties of the two single mutants and the wild type enzyme were also very similar. In contrast, the double mutant had about a 20-fold lower specific activity although its Km was only 6-fold higher than that of the wild type protein. The double mutant also had a 100-fold higher Ki for lisinopril, a competitive inhibitor of ACET, and was 17-fold less sensitive to stimulation by NaCl, an activator of ACET. These results directly demonstrate that Tyr-236 and Lys-154 are indeed critical for the catalytic activity, lisinopril inhibition, and NaCl activation of ACET.

Amino Acid Sequence↗

Differentiation-dependent activation of interferon-stimulated gene factors and transcription factor NF-kappa B in mouse embryonal carcinoma cells.

We have recently shown that the adenovirus E1A gene products block interferon-alpha-induced signal transduction and transcription factor NF-kappa B-mediated gene induction. Here we report that the same responses are also blocked in undifferentiated F9 teratocarcinoma cells. The block was removed upon cellular differentiation and regained upon the introduction of viral E1A into the differentiated cells. In undifferentiated cells, interferon-beta failed to induce the transcription of interferon-responsive genes because of a lack of activation of the cognate trans-acting factors. As a result, in these cells, virus replication was not inhibited by interferon. Similarly, in undifferentiated but not in differentiated F9 cells, tumor necrosis factor alpha failed to stimulate NF-kappa B-mediated transcription of a reporter gene because of a failure in the activation of NF-kappa B trans-acting factor. These results suggest that a cellular E1A-like activity, present in undifferentiated F9 cells, and adenoviral E1A use similar mechanisms for repressing the expression of specific cellular genes.

2',5'-Oligoadenylate Synthetase↗

Transcriptional repression of interleukin-6 gene by adenoviral E1A proteins.

Transcription of interleukin-6 (IL-6) gene in human HepG2 and HeLa cells was induced by treatment with interleukin-1 (IL-1), tumor necrosis factor-alpha (TNF-alpha), phorbol 12-myristate 13-acetate, or dibutyryl cyclic AMP. These agents enhanced the expression of chloramphenicol acetyltransferase (CAT) activity in cells transfected with chimeric CAT genes driven by the transcriptional regulatory regions of human IL-6 gene. Both induced and basal levels of CAT expression were severely repressed upon co-transfection of expression vectors encoding the adenoviral E1A289R or E1A243R protein. The conserved region 1 of E1A proteins was required for this activity. IL-6-CAT expression could also be induced by co-transfecting expression vectors containing cDNAs of the catalytic subunit of protein kinase A or c-jun. E1A repressed transcriptional induction by these agents as well. Similar inhibition was observed when a CAT gene driven by the NF kappa B element of the IL-6 gene was used as a reporter plasmid. In a cell line stably transfected with the E1A gene, IL-1 or TNF-alpha failed to induce IL-6 mRNA. Electrophoretic mobility shift assays were carried out with nuclear extracts of these cells using, as probes, the NF kappa B element or the multiple regulatory element of the IL-6 gene. With either probe, additional faster migrating DNA-protein complexes were formed in the extracts of E1A-expressing cells as compared with the extracts of the corresponding control cells. Experiments with NF kappa B antibody revealed differences between the different DNA-protein complexes formed in the extract of E1A-expressing cells. These observations suggest that E1A represses IL-6 gene transcription by interfering with the formation of appropriate DNA-protein complexes.

Adenovirus E1A Proteins↗

Identification of the double-stranded RNA-binding domain of the human interferon-inducible protein kinase.

The interferon-inducible double-stranded (ds) RNA-activated protein kinase (p68 kinase) is a physiologically important enzyme that regulates the rate of cellular and viral protein synthesis by phosphorylating and thereby inactivating the peptide chain initiation factor 2. We have generated a cDNA clone of the human p68 kinase by polymerase chain reaction cloning using the recently published sequence of this enzyme. Active enzyme was synthesized by in vitro transcription-translation of the cDNA clone. This system was used for mapping the dsRNA-binding domain of the enzyme. Progressive deletions from the carboxyl terminus were introduced by digesting the cDNA with suitable restriction enzymes. Expression of proteins harboring deletions from the amino terminus was achieved by cloning DNA fragments into appropriately constructed expression vectors. Affinity of the truncated proteins for dsRNA was examined by testing their capacity to bind to dsRNA-agarose beads. Our results demonstrated that the dsRNA-binding domain lies at the amino terminus of the protein. A truncated protein containing the first 170 amino acid residues from the amino terminus could bind to dsRNA. However, deletion of 34 residues from the amino terminus or 41 residues from the carboxyl terminus of this truncated protein eliminated its dsRNA-binding activity. Comparison of the primary structure and the secondary structure of this region of p68 kinase and the corresponding region of 2'-5'-oligoadenylate synthetase revealed no apparent similarity.

Base Sequence↗

Role of protein phosphorylation in activation of interferon-stimulated gene factors.

Possible involvement of protein phosphorylation in interferon (IFN)-mediated activation of IFN-stimulated gene factor 3 (ISGF3) was investigated. For this purpose, in vivo experiments with specific inhibitors of protein kinases and in vitro experiments with protein phosphatases were carried out. In HeLaM cells, 2-aminopurine, an inhibitor of double-stranded RNA-dependent protein kinase, blocked the induction of ISGF3 gamma subunit but not the activation of ISGF3 alpha subunit. A series of experiments using combinations of protein and RNA synthesis inhibitors and 2-aminopurine indicated that the block elicited by 2-aminopurine was at the level of ISGF3 gamma mRNA synthesis. Activation of ISGF3 alpha, although insensitive to 2-aminopurine, was completely blocked by 10 nM staurosporine, an inhibitor of protein kinase C. On the other hand, even 500 nM staurosporine did not block the induction of ISGF3 gamma. Incubation of cytoplasmic or nuclear extracts of IFN-treated HeLaM cells in vitro with alkaline phosphatase completely eliminated their ability to form the ISGF3 complex but not the ISGF1 complex. Treatment with acid phosphatase, on the other hand, changed the electrophoretic mobility of the ISGF3 complex but did not obliterate it. Complementation experiments revealed that ISGF3 alpha was the alkaline phosphatase-sensitive component of the complex. These results suggest that a protein kinase C-mediated phosphorylation step is involved in ISGF3 alpha activation and a 2-aminopurine-sensitive component is involved in ISGF3 gamma mRNA induction.

2-Aminopurine↗

Use of alternative polyadenylation sites for tissue-specific transcription of two angiotensin-converting enzyme mRNAs.

The pulmonary isozyme of rabbit angiotensin-converting enzyme (ACE) is encoded by an mRNA of about 5 kb. cDNA clones corresponding to different parts of this mRNA have been isolated and the complete nucleotide sequences of both the coding and non-coding regions of the mRNA have been determined. The encoded protein has 1309 residues with a 33 amino acids-long signal peptide at the amino terminus and a potential membrane-anchoring domain near the carboxyl terminus. There is a strong sequence homology between two regions of the rabbit cDNA and between the rabbit, human, and mouse cDNAs. Comparison of the nucleotide sequences of the 3' untranslated regions of rabbit pulmonary and testicular ACE cDNAs revealed that the testicular cDNA is nested within the pulmonary cDNA at the 3' end. A rabbit genomic clone encompassing this region was isolated and partially sequenced. It was shown that the gene contains two potential polyadenylation sites 628 bp apart within one exon. Northern analyses with an appropriate oligonucleotide probe confirmed that the proximal polyadenylation site is used exclusively for terminating the testicular mRNA whereas the distal one is used exclusively for the pulmonary mRNA. These results demonstrated that the transcription of the two mRNAs encoding the two ACE isozymes not only initiates at two alternative tissue-specific sites which are 5.7 kb apart but the mRNAs also get polyadenylated at two alternative sites which are 628 bp apart.

Amino Acid Sequence↗

Adenovirus E1A represses the cyclic AMP-induced transcription of the gene for phosphoenolpyruvate carboxykinase (GTP) in hepatoma cells.

Adenovirus infection of hepatoma cells inhibited transcription of the phosphoenolpyruvate carboxykinase (GTP) (EC 4.1.1.32) (PEPCK) gene and virtually eliminated transcription of a chimeric gene which contained the PEPCK promoter linked to the structural gene for chloramphenicol acetyltransferase (CAT). This effect is due to the viral protein E1A, since adenovirus containing a deletion in the E1A gene did not repress transcription from the PEPCK promoter. Both the 243R and 283R products of the E1A gene were effective. The conserved region 1 (CR-1) domain of E1A was required for this effect. Treatment of hepatoma cells with 8-bromo-cAMP or transfection with plasmids coding for the catalytic subunit of protein kinase A, CAAT/enhancer binding protein alpha (C/EBP), or Jun, all potent inducers of PEPCK gene transcription, did not relieve the inhibition caused by E1A. This inhibition does not appear to be mediated by major enhancer elements and in the PEPCK gene since transcription from the PEPCK promoter containing block mutations in binding domains for C/EBP and cAMP regulatory element binding protein (CREB) was also inhibited by E1A. Transcription of chimeric genes containing two copies each of the major cAMP response domains (CRE-1 and P-3) linked to a neutral promoter and fused to the CAT structural gene was stimulated by the catalytic subunit of protein kinase A, but this effect was totally inhibited by E1A. The strong repressive effect of E1A on PEPCK gene transcription seems to involve an interruption of an obligatory interaction between factors which bind to the cAMP response element in the PEPCK promoter and the TATA box.

Adenoviridae↗