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K Georgopoulos

Publications and source records attributed to K Georgopoulos.

12 recordsLinked to original sources

Ikaros, an early lymphoid-specific transcription factor and a putative mediator for T cell commitment.

In a screen for transcriptional regulators that control differentiation into the T cell lineage, a complementary DNA was isolated encoding a zinc finger protein (Ikaros) related to the Drosophila gap protein Hunchback. The Ikaros protein binds to and activates the enhancer of a gene encoding an early T cell differentiation antigen, CD3 delta. During development, Ikaros messenger RNA was first detected in the mouse fetal liver and the embryonic thymus when hematopoietic and lymphoid progenitors initially colonize these organs; no expression was observed in the spleen or the bone marrow. The pattern of Ikaros gene expression and its ability to stimulate CD3 delta transcription support the model that Ikaros functions in the specification and maturation of the T lymphocyte.

Amino Acid Sequence

Functionally distinct isoforms of the CRE-BP DNA-binding protein mediate activity of a T-cell-specific enhancer.

Expression of the CD3 delta gene of the T-cell receptor (TCR) complex is regulated by a T-cell-specific enhancer. A highly conserved 40-bp motif (element delta A) within the CD3 delta enhancer is responsible for mediating its activity and specificity. Element delta A exhibits sequence similarities to the cyclic AMP response element (CRE) but does not respond to changes in the level of cyclic AMP. Using the delta A element as a probe, we have isolated three cDNA clones encoding three distinct protein isoforms, products of differential splicing and alternate promoter usage of the CRE-BP gene. These isoforms share the DNA binding and dimerization domains at the C terminus of the protein but differ at their N termini. In transfection assays, their activities as transcription regulators differ: CRE-BP2 is a potent activator, CRE-BP3 is a weak activator, and CRE-BP1 is transcriptionally inert. Mutations in the basic region of the CRE-BP1 protein which abrogate its ability to bind DNA render this protein a dominant repressor of the delta A enhancer. Antibodies to the CRE-BP protein interact specifically with the ubiquitous and predominantly T-cell-restricted nuclear complexes that bind to the delta A element and suggest the presence of this protein in homo- and heterodimeric complexes. Since the delta A motif is also present in the enhancer and promoter of the TCR alpha and beta genes, the CRE-BP isoforms may mediate expression of other members of the CD3/TCR complex during T-cell development.

Activating Transcription Factor 2

Cloning of murine TCF-1, a T cell-specific transcription factor interacting with functional motifs in the CD3-epsilon and T cell receptor alpha enhancers.

CD3-epsilon gene expression is confined to the T cell lineage. We have recently identified and cloned a human transcription factor, TCF-1, that binds to a functional element in the T lymphocyte-specific enhancer of CD3-epsilon. In a panel of human cell lines, TCF-1 expression was restricted to T lineage cells. TCF-1 belonged to a novel family of genes that contain the so-called high mobility group 1 (HMG) box. Here we report the cloning of murine TCF-1. Two splice alternatives were identified that were not previously observed in human TCF-1. Murine and human TCF-1 displayed a 95.5% overall amino acid homology. Recombinant murine and human TCF-1 recognized the same sequence motif in the CD3-epsilon enhancer as judged by gel retardation and methylation interference assays. With the murine cDNA clones several aspects of TCF-1 were analyzed. First, deletion analysis revealed that a region of TCF-1 containing the HMG box was sufficient for sequence-specific binding. Second, by high stringency Northern blotting and in situ hybridization, TCF-1 expression was shown to be confined to the thymus and to the T cell areas of the spleen. Third, TCF-1 bound specifically to a functional T cell-specific element in the T cell receptor alpha (TCR-alpha) enhancer. The T lineage-specific expression and the affinity for functional motifs in the TCR-alpha and CD3-epsilon enhancers imply an important role for TCF-1 in the establishment of the mature T cell phenotype.

Amino Acid Sequence

Tissue-specific nuclear factors mediate expression of the CD3 delta gene during T cell development.

An obligatory step towards T cell maturation is expression of the CD3 gene products which occurs very early during thymic differentiation and may even precede migration to the thymus. Delineation of the transcriptional mechanisms that determine expression of the CD3 complex in immature and mature T cells will help us understand the molecular events that govern T cell development. We have previously reported that a 400 bp region 3' of the CD3 delta gene functions as a transcriptional enhancer with strong specificity for T cells. Here we identify two elements in the CD3 delta enhancer which mediate its T cell restricted function. Element delta A can function as an independent enhancer while element delta B has no independent function but augments the activity of element delta A. Together, delta A and delta B are sufficient to reconstitute the activity of the CD3 delta enhancer. Nucleoprotein complexes found in mature T cells have been identified whose presence correlates with activity of these two elements. Since these protein binding sites are conserved in other genes of the TCR-CD3 complex, elements delta A and delta B and their cognate nuclear factors may play an important role in T cell development.

Antigens, CD

The CD3 delta gene encodes multiple transcripts regulated by transcriptional and post-transcriptional mechanisms.

CD3 is a multi-subunit complex of proteins noncovalently associated with the T cell receptor (TcR) for antigen. Considerable evidence indicates a role for CD3 molecules in the transduction of activation signals in T cells. The murine CD3 delta gene encodes a 0.7-kb transcript present in mature T cells. Here we report the characterization of several additional CD3 delta transcripts; two nuclear transcripts, 4-4.5 kb in size, and two predominamtly cytoplasmic transcripts of 1.5 kb and 2.5 kb. Both T lymphoma cell lines and normal thymocytes express the 1.5-kb and 2.5-kb CD3 delta transcripts. These cytoplasmic transcripts have long 3'-untranslated sequences which extend beyond the polyadenylation site of the predominant 0.7-kb transcript. The protein synthesis inhibitor cycloheximide (CHX) increases the expression of all three cytoplasmic CD3 delta transcripts, indicating that their level of expression may be regulated by a labile inhibitor protein(s). The CHX elicited increase in CD3 delta mRNA appears to result from post-transcriptional events since the rate of CD3 delta gene transcription remains constant. In contrast to CHX, the calcium ionophore A23187 increases the rate of CD3 delta gene transcription and, like CHX, also increases the level of cellular CD3 delta mRNA. The immunosuppressive agent cyclosporin A inhibits A23187-mediated stimulation of transcription, but has no effect on the CHX-mediated induction of CD3 delta mRNA. We conclude that both transcriptional and post-transcriptional mechanisms can regulate the amount of all three cytoplasmic CD3 delta transcripts.

Animals

c-Jun dimerizes with itself and with c-Fos, forming complexes of different DNA binding affinities.

The c-Jun and c-fos proto-oncogenes encode proteins that form a complex which regulates transcription from promoters containing AP-1 activation elements. c-Jun has specific DNA binding activity, while c-Fos has homology to the putative DNA binding domain of c-Jun. Following in vitro translation, c-Jun binds as a homodimer to the AP-1 DNA site, while c-Fos fails to dimerize and displays no apparent affinity for the AP-1 element. Cotranslated c-Jun and c-Fos proteins bind 25 times more efficiently to the AP-1 DNA site as a heterodimer than does the c-Jun homodimer. These experiments suggest that in growth factor-stimulated cells c-Jun binds DNA as a dimer with c-Fos as its natural partner. However, overexpression of c-Jun protein in the absence of c-Fos may result in formation of aberrant homodimeric transcription complexes, which could abrogate the normal mechanisms controlling gene expression.

Binding Sites

A T cell-specific enhancer is located in a DNase I-hypersensitive area at the 3' end of the CD3-delta gene.

During intrathymic differentiation, the genes coding for the T cell receptor/CD3 (TCR/CD3) complex are expressed in stages resulting in surface expression of competent receptors on the most mature T cells. The CD3-delta, gamma and epsilon proteins, which are expressed intracellularly in the earliest detectable cells of T lineage, form the core of the TCR/CD3 complex. In the present investigation aimed at understanding the tissue specific expression of the murine CD3-delta gene, a T cell specific DNase I hypersensitive site was found 0.6 kb downstream of the polyadenylation site of the gene. A 0.4 kb genomic fragment encompassing this hypersensitive site exhibited properties of a strictly T cell-specific transcriptional enhancer which acts in a position- and orientation-independent manner. However, the activity of the promoter region was not found to be T cell restricted. Within this novel T cell-specific enhancer region, sequence motifs were found which are shared with the promoters of both the mouse and human CD3-delta genes; in this region we also found sequence homologies to the enhancer core element of the thymotropic viruses SL3 and RadLV. These findings suggest that regulatory elements 3' of the CD3-delta gene are at least in part responsible for its exclusive expression in thymus-derived lymphocytes.

Animals

Characterization and expression of the murine CD3-epsilon gene.

The receptor for antigen on the surface of T lymphocytes consists of a variable disulfide-bridged hetero-dimer (TCR-alpha/beta or -gamma/delta) associated with invariant CD3 proteins (CD3-gamma, -delta, -epsilon, and -zeta). The genes coding for the CD3 proteins are expressed in the earliest recognizable thymocytes, preceding the rearrangement and expression of the TCR genes. The isolation, characterization, and in vitro expression of the murine CD3-epsilon gene, as reported here, represent obligatory steps toward our understanding of the complex rules that govern T-cell-specific gene expression. The CD3-epsilon gene was transcribed from a non-TATA promoter and consisted of eight exons, two of which were unusually small (18 and 15 base pairs). The transmembrane exon was found to be homologous to the transmembrane exons of the CD3-gamma and CD3-delta genes. In transient-transfection experiments, a genomic fragment comprising 4 kilobases of upstream sequence and extending into the second exon sufficient to drive the expression of a reporter gene in murine T cells.

Amino Acid Sequence

Close linkage of the mouse and human CD3 gamma- and delta-chain genes suggests that their transcription is controlled by common regulatory elements.

Antigen receptors on the T-cell surface are noncovalently associated with at least four invariant polypeptide chains, CD3-gamma, -delta, -epsilon, and -zeta. The mouse CD3-gamma gene, consisting of seven exons, was found to be highly homologous to the CD3-delta gene described earlier. Both the high level of sequence homology and the exon/intron organization indicate that the CD3-gamma and -delta genes arose by gene duplication. Surprisingly, murine and human genomic DNA clones could be isolated that contained elements of both the CD3-gamma and CD3-delta genes. In fact, the putative transcription start site of the mouse CD3-gamma gene is less than 1.4 kilobases from the transcription initiation site of the mouse CD3-delta gene. Common elements that regulate the divergent transcription of the two genes are therefore proposed to be located in the intervening 1.4-kilobase DNA segment. This might contribute to the coordinate expression of the CD3-gamma and -delta genes during intrathymic maturation of T lymphocytes.

Amino Acid Sequence

Exon/intron organization of the genes coding for the delta chains of the human and murine T-cell receptor/T3 complex.

Genomic DNA clones containing the gene coding for the 20-kDa T3 glycoprotein of the T-cell receptor/T3 complex (T3-delta chain) of human and mouse were isolated and characterized. The human T3-delta gene is approximately equal to 4 kilobases (kb) long and contains five exons: a 151-base-pair (bp) exon containing the 5' untranslated and the coding sequences of the signal peptide, one exon of 219 bp, which contains most of the extracellular segment of the T3-delta chain, one 130-bp-long exon coding mainly for the transmembrane portion of the molecule, and two exons of 44 bp and 156 bp encoding the cytoplasmic domain and 3' untranslated region of the T3-delta chain, respectively. The murine T3-delta gene, which has a similar organization, contains 5 kb, because the first intron is approximately equal to 1 kb larger than in the human gene. Two major mRNA initiation sites within a small area approximately equal to 100 nucleotides 5' of the AUG codon were determined by S1 nuclease analysis and primer-extension studies. The remarkably high level of conservation of nucleotide sequences in this region suggests that this segment may be important for the regulation of T-cell-specific transcription of the T3-delta gene. The T3-delta gene does not contain the "TATA box" found in many eukaryotic promoters.

Animals

A reinvestigation of the cross-reactivity between Klebsiella and HLA-B27 in the aetiology of ankylosing spondylitis.

The existence of cross-reactivity between Klebsiella antigens and cells from donors who are HLA-B27 positive and exhibit ankylosing spondylitis (AS) has been reinvestigated. Cells and antisera from different laboratories have been tested together using simultaneously microcytoxicity, chromium release and enzyme linked immunosorbent assays (ELISA). No reproducible interaction has been found. Mitogenic stimulation did not induce cross-reactivity and 'transformation' of B27+AS- cells by Klebsiella culture supernatants failed. Two transformed cell lines from B27+ AS+ donors exhibited specific cross reaction with two anti-Klebsiella antisera but only by chromium release. Immunoprecipitation with these cells and antisera showed the absence of any AS+ -specific antigen. It is concluded that the involvement of Klebsiella in ankylosing spondylitis through simple immunological cross-reactivity or through interaction with HLA-B27 is unlikely.

Antigens, Bacterial