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D Bohmann

Publications and source records attributed to D Bohmann.

At least 37 records · Page 2Linked to original sources

Differential regulation of c-Jun and JunD by ubiquitin-dependent protein degradation.

c-Jun and JunD are two closely related members of the Jun family of transcription factors which markedly differ in their biological functions. Whereas c-Jun behaves as a positive regulator of cell growth and may cause cell transformation when overexpressed, JunD antagonizes both of these effects. To better understand how the activities of c-Jun and JunD are controlled, we investigated how their stabilities within the cell are determined. We show that, in contrast to c-Jun which is degraded following multi ubiquitination, JunD is not efficiently ubiquitinated and exhibits a correspondingly longer half-life. Mutational analysis reveals that the determinant for the difference in ubiquitination resides in the NH2-terminal regions of the proteins which in c-Jun contains the delta-domain.

3T3 Cells↗

JUN cooperates with the ETS domain protein pointed to induce photoreceptor R7 fate in the Drosophila eye.

R7 photoreceptor fate in the Drosophila eye induced by the activation of the Sevenless receptor tyrosine kinase and the RAS/MAP kinase signal transduction pathway. We show that expression of a constitutively activated JUN isoform in ommatidial precursor cells is sufficient to induce R7 fate independent of upstream signals normally required for photoreceptor determination. We present evidence that JUN interacts with the ETS domain protein Pointed to promote R7 formation. This interaction is cooperative when both proteins are targeted to the same promoter and is antagonized by another ETS domain protein, YAN, a negative regulator of R7 development. Furthermore, phyllopod, a putative transcriptional target of RAS pathway activation during R7 induction, behaves as a suppressor of activated JUN. Taken together, these data suggest that JUN and Pointed act on common target genes to promote neuronal differentiation in the Drosophila eye, and that phyllopod might be such a common target.

Animals↗

Cloning of the cDNA encoding human C/EBP gamma, a protein binding to the PRE-I enhancer element of the human interleukin-4 promoter.

The positive regulatory element-I (PRE-I) is a strong enhancer element essential for expression of the human interleukin-4 (IL-4)-encoding gene. In order to identify transcription factors binding to PRE-I, we screened a cDNA expression library from human Jurkat T-cells. A cDNA encoding the human CCAAT/enhancer binding protein-gamma (hC/EBP gamma) was cloned. The deduced amino acid (aa) sequence of HC/EBP gamma contains 150 aa with high homology to mouse Ig/EBP-1 and rat C/EBP gamma. The mRNA of hC/EBP gamma is expressed at a high level in Jurkat T-cells in three forms generated via differential polyadenylation. DNA-binding experiments with recombinant protein produced in bacteria demonstrate that hC/EBP gamma binds to PRE-I, but not to unrelated DNA fragments. Our data also show that hC/EBP gamma may cooperate with Fos to bind PRE-I.

Amino Acid Sequence↗

Multiple signals are required for function of the human granulocyte-macrophage colony-stimulating factor gene promoter in T cells.

The human granulocyte-macrophage CSF (GM-CSF) gene is expressed in T cells in response to TCR activation that can be mimicked by treatment of the cells with PMA and Ca2+ ionophore. The gene contains a proximal functional promoter region (-620 to +34), as well as a powerful enhancer located 3 kb upstream, both of which are involved in the response of the gene to TCR activation. The proximal promoter contains a region termed CLEO (-54 to -31) that consists of a purine-rich element abutting an activator protein-1 (AP-1)-like site, as well as an upstream nuclear factor-kappa B (NF-kappa B) site (-85 to -76) and a CK-1 element (-101 to -92). We show in this work that mutations in either the purine-rich region of the CLEO element or the NF-kappa B site result in reduced PMA/Ca2+ activation of a 620-bp human GM-CSF promoter-luciferase reporter construct in Jurkat T cells by 65% and 50%, respectively. The major inducible protein complex that binds to the human CLEO (hCLEO) element is an AP-1-like complex that is inducible by PMA alone, but shows increased binding in response to PMA together with Ca2+ ionophore. Although the binding of this complex is not cyclosporin-sensitive, promoter induction is inhibited by cyclosporin treatment. A second weak inducible complex resembling nuclear factor of activated T cells (NF-AT) was also observed binding to the hCLEO region. By using recombinant proteins, we confirmed that AP-1, NF-ATp, and a higher order NF-ATp/AP-1 complex could all form with the hCLEO element, and we have also defined the sequence requirements for binding of each of these complexes. We found that expression of a constitutively active form of calcineurin could substitute for Ca2+ ionophore and synergize with PMA to activate the GM-CSF promoter, and conversely that mutant-activated Ras could substitute for PMA and cooperate with Ca2+ ionophore. Co-expression of Ras and calcineurin, however, did not activate the GM-CSF promoter, but required the additional expression of NF-kappa B p65. These results imply that at least three signals are required to activate the GM-CSF proximal promoter, and that the signals impinge on distinct transcription factors that bind to the hCLEO and NF-kappa B regions of the promoter.

Base Sequence↗

Intramolecular signal transduction in c-Jun.

The DNA-binding activity of c-Jun is determined by the phosphorylation state of a cluster of threonine and serine residues located near its COOH-terminus. We have analyzed the events that lead to c-Jun activation via dephosphorylation of these sites in response to phorbol esters. Our results indicate that COOH-terminal dephosphorylation is an indirect consequence of a separate phosphorylation event targeted to the NH2-terminus of c-Jun. Thus, the activation of c-Jun DNA-binding potential, caused by COOH-terminal dephosphorylation, may not require the regulation of the kinase/phosphatase system that brings about this change, but rather an alteration in the accessibility of the COOH-terminal phosphoacceptor sites of c-Jun.

Amino Acid Sequence↗

Drosophila Jun mediates Ras-dependent photoreceptor determination.

The expression of the D. melanogaster transcription factor Jun in the eye imaginal disc correlates temporally and spatially with the determination of neuronal photoreceptor fate. Expression of dominant negative forms of Jun in photoreceptor precursor cells results in dose-dependent loss of photoreceptors in the adult fly. Conversely, localized overexpression of Jun in the eye imaginal disc can induce the differentiation of additional photoreceptor cells. Furthermore, the transformation of nonneuronal cone cells into R7 neurons elicited by constitutively active forms of sevenless, Ras1, Raf, and MAP kinase is relieved in the presence of Jun mutants. These results demonstrate a requirement of Jun downstream of the sevenless/ras signaling pathway for neuronal development in the Drosophila eye.

Animals↗

Ubiquitin-dependent c-Jun degradation in vivo is mediated by the delta domain.

The role of the ubiquitin-dependent proteolysis system in c-Jun breakdown was investigated. Using in vitro experiments and a novel in vivo assay that utilizes molecularly-tagged ubiquitin and c-Jun proteins, it was shown that c-Jun, but not its transforming counterpart, retroviral v-Jun, can be efficiently multiubiquitinated. Consistently, v-Jun has a longer half-life than c-Jun. Mutagenesis experiments indicate that the reason for the escape of v-Jun from multiubiquitination and its resulting stabilization is the deletion of the delta domain, a stretch of 27 amino acids that is present in c-Jun but not in v-Jun. c-Jun sequences containing the delta domain, when transferred to the bacterial beta-galactosidase protein, function as a cis-acting ubiquitination and degradation signal. The correlation between transforming ability and the escape from ubiquitin-dependent degradation described here suggests a novel route to oncogenesis.

Amino Acid Sequence↗

Repression of AP-1-stimulated transcription by c-Ets-1.

The transcriptional activities of c-Ets-1 and v-Ets and their functional interaction with the AP-1 factor c-Jun were investigated. Several recombinant Ets proteins were produced and purified either from bacteria or from insect cells. Plasmid DNAs that contained the polyoma virus enhancer Ets/AP-1 element were used as templates for in vitro transcription assays in the presence of HeLa nuclear extract and various combinations of the Jun and Ets proteins. Under these conditions full-length c-Ets-1 on its own does not markedly influence transcription but abolishes the strong transcriptional stimulation normally elicited by Jun. This repression depends on the Ets-binding site and on specific features of c-Ets-1 structure, as both v-Ets and a natural splicing variant c-Ets-1 (delta VII) fail to inhibit Jun activity. These findings suggest that c-Ets may act both as a transcriptional repressor or activator depending on promoter context and splicing pattern.

Alternative Splicing↗

Structure and regulation of the growth arrest-specific (gas-1) promoter.

We have isolated recombinant genomic clones encompassing several kilobase pairs of the 5'-flanking regions of both the human and murine gas-1 gene (growth arrest-specific gene 1). Both species share a highly conserved region of approximately 550 base pairs upstream of the gas-1 transcription start site. Deletion analysis of the murine gas-1 promoter demonstrated that a fragment containing the first 665 base pairs is sufficient to drive the serum-regulated expression of a luciferase reporter gene in NIH3T3 cells, in a manner qualitatively reflecting the activity of the endogenous gene. Gel retardation assays indicated the presence of a number of DNA-binding proteins specific for sequences contained within the gas-1 transcription regulatory region. Comparative studies with extracts prepared from growing and resting cells revealed several growth state-specific binding activities. One promoter fragment that bound prominent growth- and arrest-specific complexes was further analyzed by copper-phenanthroline footprinting. It was found that the same DNA element is a target both for growth- and for arrest-specific activities. The factors characterized in this study are the first candidates for transcriptional regulators mediating cell growth-specific repression and/or growth arrest-specific activation of gene expression.

3T3 Cells↗

Different TRE-related elements are distinguished by sets of DNA-binding proteins with overlapping sequence specificity.

Several promoter elements with sequence similarity to the prototype TPA-responsive element (TRE) were compared by mobility-shift analyses. Activities within whole cell extracts were identified that bind to the TRE-like elements in the collagenase, the somatostatin, and the c-jun promoters. The corresponding factors appeared to differ in their degree of selectivity for these TRE-like sequences. One protein species bound equally well to all TREs. In addition, a subset of specific activities recognised only the somatostatin and the c-jun-derived element and one DNA-protein complex had exclusive specificity for the TRE present in the c-jun promoter. By antibody 'supershift' assays some of the protein components of the specific complexes were identified as CREB- and ATF-related products. Based on these data we postulate that bZip protein dimers differ in their ability to tolerate variations from the canonical TRE sequence. We propose that TRE-like promoter elements are distinguished by this ability to bind to different subsets of a family of related transcription factors.

Animals↗

Targeted degradation of c-Fos, but not v-Fos, by a phosphorylation-dependent signal on c-Jun.

The proto-oncogene products c-Fos and c-Jun heterodimerize through their leucine zippers to form the AP-1 transcription factor. The transcriptional activity of the heterodimer is regulated by signal-dependent phosphorylation and dephosphorylation events. The stability of c-Fos was found to also be controlled by intracellular signal transduction. In transient expression and in vitro degradation experiments, the stability of c-Fos was decreased when the protein was dimerized with phosphorylated c-Jun. c-Jun protein isolated from phorbol ester-induced cells did not target c-Fos for degradation, which suggests that c-Fos is transiently stabilized after stimulation of cell growth. v-Fos protein, the retroviral counterpart of c-Fos, was not susceptible to degradation targeted by c-Jun.

Amino Acid Sequence↗

Phosphorylation state and DNA-binding activity of c-Jun depend on the intracellular concentration of binding sites.

The DNA-binding activity of c-Jun expressed in eukaryotic cells was found to be markedly enhanced if the intracellular concentration of binding sites for this transcription factor was increased by cotransfection of specific plasmid DNA. Dephosphorylation experiments, phosphate mapping studies, and mutational analysis indicate that phosphorylation of a cluster of serine and threonine residues situated in close proximity to the DNA-binding domain is responsible for the observed adaptation of c-Jun activity to the intracellular concentration of accessible target sites.

Base Sequence↗

Determining the effect of inducible protein phosphorylation on the DNA-binding activity of transcription factors.

Inducible phosphorylation or dephosphorylation of transcription factors is an important mechanism of signal-dependent gene regulation in eukaryotic cells. This paper describes a combination of techniques that can be used to study the effect of this covalent protein modification on the DNA-binding activity of transcription factors. The protein of interest is genetically tagged with oligohistidine to allow rapid purification on nickel-chelate columns after being transiently overexpressed in eukaryotic tissue culture cells. Phosphorylation-dependent DNA-binding activity is determined in a blotting assay including an in situ dephosphorylation step. Studies on the protooncogene-encoded transcription factor c-Jun employing this assay revealed a TPA-inducible protein dephosphorylation event that strongly increases the DNA-binding potential of the protein. Our data confirm the results published recently by others and provide a rapid, efficient, sensitive, and well-controlled experimental system to analyze the phosphorylation-regulated modulations in the DNA-binding activity of transcription factors.

Amino Acid Sequence↗

Functional dissection of AP-1 transcription factors using the Gal4 adaptor assay.

In the Gal4 adaptor assay, leucine zipper-containing proteins are tethered indirectly to the promoters of Gal4-responsive reporter genes via synthetic protein chimeras consisting of a Gal4 DNA-binding domain with an attached leucine zipper. Ternary complexes composed of the DNA binding site, the adaptor protein, and a leucine zipper factor can stimulate reporter gene activity, provided that the latter component possesses a transcriptional activation domain. This system is used to assay the transcriptional function and the interactions between various AP-1 factors.

Amino Acid Sequence↗

Transcription factor phosphorylation: a link between signal transduction and the regulation of gene expression.

Changes in cellular gene transcription patterns induced by extracellular signals are thought to be important for many biological processes, including the control of cell growth. The transmission of gene regulatory signals through the cytoplasm is mediated by signaling pathways, of which protein kinases are important components, and recent evidence suggests that communication between the cytoplasm and nucleus relies on signal-dependent phosphorylation and dephosphorylation of transcription factors. This new information is reviewed and the implications for gene regulation and the control of cell growth are discussed.

Animals↗

Biochemical analysis of transcriptional activation by Jun: differential activity of c- and v-Jun.

The human proto-oncogene product, c-Jun, is a member of the AP-1 family of transcription factors, which mediate the regulation of gene expression in response to extracellular signaling. Comparison of c-Jun and v-Jun by in vitro transcription assays revealed that v-Jun has significantly greater transcriptional activity than c-Jun. Analysis of Jun mutants expressed in bacteria indicates that this difference in transcriptional activity is due to the presence of a regulatory domain located at the N-terminal region of c-Jun. Other Jun mutants identify an activation domain rich in acidic and proline residues toward the C-terminal end of the molecule, in a region near the DNA binding domain. These findings suggest that during retroviral transduction, a constitutively active Jun protein has been generated by deleting a negatively acting domain. This putative repressor domain may also play a role in the signal-dependent induction of c-Jun activity.

Amino Acid Sequence↗

Fos-associated protein p39 is the product of the jun proto-oncogene.

The Fos protein complex and several Fos-related antigens (FRA) bind specifically to a sequence element referred to as the HeLa cell activator protein 1 (AP-1) binding site. A combination of structural and immunological comparisons has identified the Fos-associated protein (p39) as the protein product of the jun proto-oncogene (c-Jun). The p39/Jun protein is one of the major polypeptides identified in AP-1 oligonucleotide affinity chromatography extracts of cellular proteins. These preparations of AP-1 also contain Fos and several FRA's. Some of these proteins bind to the AP-1 site directly whereas others, like Fos, appear to bind indirectly via protein-protein interactions. Cell-surface stimulation results in an increase in c-fos and c-jun products. Thus, the products of two protooncogenes (and several related proteins), induced by extracellular stimuli, form a complex that associates with transcriptional control elements containing AP-1 sites, thereby potentially mediating the long-term responses to signals that regulate growth control and development.

Cell Transformation, Neoplastic↗