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Biomedical subjects

C Murre

Publications and source records attributed to C Murre.

At least 55 records · Page 3Linked to original sources

The hexapeptide LFPWMR in Hoxb-8 is required for cooperative DNA binding with Pbx1 and Pbx2 proteins.

The Hox gene products are DNA-binding proteins, containing a homeodomain, which function as a class of master control proteins establishing the body plan in organisms as diverse as Drosophila and vertebrates. Hox proteins have recently been shown to bind cooperatively to DNA with another class of homeodomain proteins that include extradenticle, Pbx1, and Pbx2. Hox gene products contain a highly conserved hexapeptide connected by a linker of variable length to the homeodomain. We show that the hexapeptide and the linker region are required for cooperativity with Pbx1 and Pbx2 proteins. Many of the conserved residues present in the Hoxb-8 hexapeptide are required to modulate the DNA binding of the Pbx proteins. Position of the hexapeptide relative to the homeodomain is important. Although deletions of two and four residues of the linker peptide still show cooperative DNA binding, removal of all six linker residues strongly reduces cooperativity. In addition, an insertion of 10 residues within the linker peptide significantly lowers cooperative DNA binding. These results show that the hexapeptide and the position of the hexapeptide relative to the homeodomain are important determinants to allow cooperative DNA binding involving Hox and Pbx gene products.

Amino Acid Sequence↗

Localization of Pbx1 transcripts in developing rat embryos.

Recently, a new family of homeodomain proteins has emerged, that includes extradenticle, ceh-20, Pbx1, Pbx2 and Pbx3. The Pbx family has been shown to modulate the biological activities of the Hox proteins. We demonstrate here by in situ hybridization that Pbx1 transcripts are present in many embryonic tissues. Highest levels of Pbx1 expression in the developing embryo, from 12 to 20 days post coitum, are found in neuronal tissues, including brain, spinal cord and ganglia. In addition, Pbx1 transcripts are also detectable in the gut, lung, olfactory epithelium and kidney. The expression pattern of Pbx1 overlaps with that of many of the Hox gene products and is consistent with them acting in parallel to regulate common target genes.

Animals↗

Hox gene products modulate the DNA binding activity of Pbx1 and Pbx2.

A new family of homeodomain proteins has recently been identified that includes extradenticle, ceh-20 and three mammalian proteins Pbx1, Pbx2 and Pbx3. We show here that two members of this family, Pbx1 and Pbx2 bind cooperatively to DNA with both Hoxb-7 and Hoxb-8. Engrailed-2 modulates the DNA binding activity of the Pbx proteins to a different target site. E2A-Pbx1, a chimeric Pbx1 gene product involved in pre-B acute lymphoblastoid leukemia, has retained its ability to interact with the Hox proteins. These data show that vertebrate Hox and Pbx gene products have the ability to bind cooperatively to DNA.

Animals↗

c-jun inhibits insulin control element-mediated transcription by affecting the transactivation potential of the E2A gene products.

Pancreatic beta-cell-type-specific transcription of the insulin gene is principally controlled by trans-acting factors which influence insulin control element (ICE)-mediated expression. The ICE activator is composed, in part, of the basic helix-loop-helix proteins E12, E47, and E2-5 encoded by the E2A gene. Previous experiments showed that ICE activation in beta cells was repressed in vivo by the c-jun proto-oncogene (E. Henderson and R. Stein, Mol. Cell. Biol. 14:655-662, 1994). Here we focus on the mechanism by which c-Jun inhibits ICE-mediated activation. c-Jun was shown to specifically repress the transactivation potential of the E2A proteins. Thus, we found that the activity of GAL4:E2A fusion constructs was inhibited by c-Jun. The transrepression capabilities of c-Jun were detected only in pancreatic islet cell lines that contained a functional ICE activator. Repression of GAL4:E2A was mediated by the basic leucine zipper regions of c-Jun, which are also the essential regions of this protein necessary for controlling ICE activator-stimulated expression in vivo. The specific target of c-Jun repression was the transactivation domain (located between amino acids 345 and 408 in E12 and E47) conserved in E12, E47, and E2-5. In contrast, the activation domain unique to the E12 and E47 proteins (located between amino acids 1 and 99) was unresponsive to c-Jun. Our results indicate that c-Jun inhibits insulin gene transcription in beta cells by reducing the transactivation potential of the E2A proteins present in the ICE activator complex.

Adenoviridae↗

extradenticle raises the DNA binding specificity of homeotic selector gene products.

Recently, a Drosophila gene has been identified, extradenticle, whose product modulates the morphological consequences of homeotic selector genes. We show here that extradenticle protein raises the DNA binding specificity of Ultrabithorax and abdominal-A but not that of Abdominal-B. We further show that extradenticle modulates the DNA binding activity of engrailed to a different target site. While a region N-terminal of the extradenticle homeodomain is required for Ultrabithorax and abdominal-A cooperativity, engrailed requires a domain C-terminal of the extradenticle homeobox. These studies show directly how the DNA binding specificity of selector gene products can be raised by extradenticle and provides a mechanism, cooperative DNA binding, that allows selector gene products to achieve some of their biological specificity.

Animals↗

Localization of E2A mRNA expression in developing and adult rat tissues.

E2A helix-loop-helix proteins are involved in the control of various developmental pathways. We show here by in situ hybridization that E2A transcripts are present in most embryonic and adult tissues. However, no E2A expression is detectable in heart and nonproliferative regions of the brain and spinal cord. Highest levels of E2A expression are found in the ependyma cell layer surrounding the cerebral ventricles in the embryonic rat brain. In addition, in the embryo, E2A transcripts were found in secretory cells of the pancreas, the bronchial tubes of the lung, glomeruli of the kidney, and the lining of the stomach. Interestingly, high levels of E2A transcripts are selectively found in the germinal center of the lymphatic nodules in the adult rat spleen. Thus, E2A, like its Drosophila homolog daughterless, is expressed in most tissues. The most notable feature of the E2A expression pattern is its high levels of expression in some areas of rapid cell proliferation and differentiation and in certain epithelial cell types.

Animals↗

Pbx1 is converted into a transcriptional activator upon acquiring the N-terminal region of E2A in pre-B-cell acute lymphoblastoid leukemia.

Twenty-five percent of human pediatric pre-B-cell acute lymphoblastic leukemias (ALLs) are characterized by the t(1;19)(q23;p13.3) chromosomal translocation. This translocation joins the 5' region of the E2A gene to the 3' region of the Pbx1 gene. The protein encoded by this chimeric gene contains the N-terminal transcriptional activation domain of E2A fused to the C-terminal region of Pbx1, which contains a putative homeodomain. Here we show that the Pbx1 homeodomain preferentially binds the sequence ATCAATCAA. We further show that promoters containing Pbx1-binding sites are activated by the chimeric E2A-Pbx1 protein but not by Pbx1. These results indicate that the t(1;19) translocation converts a nonactivating DNA-binding protein into a potent transcriptional activator, suggesting an unusual mechanism for oncogenic transformation.

Base Sequence↗

Dpbx, a new homeobox gene closely related to the human proto-oncogene pbx1 molecular structure and developmental expression.

Recently, a new class of homeodomain containing proteins, pbx1, pbx2, and pbx3 has been described. pbx proteins are most closely related to two yeast regulatory proteins, a1 and alpha 2. Here, we identify and characterize the pbx homolog in Drosophila, designated Dpbx. Dpbx is 95% identical to the pbx proteins within the homeodomain and, more remarkably, is 85% to 88% identical within a 201 amino acid region adjacent to the homeodomain. Cytologically, the Dpbx gene is located on the X chromosome at 14A. mRNA expression is both maternal and zygotic and occurs throughout the life cycle. Prior to full germband retraction, Dpbx is rather ubiquitously present and variations are minor. The most notable feature of Dpbx expression is that after germband retraction, high levels of Dpbx are observed in the anterior portion of the ventral nerve cord.

Amino Acid Sequence↗

Ets proteins: new factors that regulate immunoglobulin heavy-chain gene expression.

We used a DNA-protein interaction screening method to isolate a cDNA, Erg-3, whose product binds to a site, designated pi, present in the immunoglobulin (Ig) heavy-chain gene enhancer. Erg-3 is an alternatively spliced product of the erg gene and contains an Ets DNA-binding domain. Fli-1 and PU.1, related Ets proteins, also bind to the same site. In addition, PU.1 binds to a second site, designated microB, in the Ig heavy-chain enhancer. We demonstrate that the pi binding site is crucial for Ig heavy-chain gene enhancer function. In addition, we show that Erg-3 and Fli.1, but not PU.1, can activate a reporter construct containing a multimer of protein-binding sites, synergistically with helix-loop-helix protein E12. We discuss how combinatorial interactions between members of the helix-loop-helix and Ets families may account for the tissue specificity of these proteins.

Amino Acid Sequence↗

A new transcriptional-activation motif restricted to a class of helix-loop-helix proteins is functionally conserved in both yeast and mammalian cells.

Previous studies demonstrated that the amino-terminal portions of E2A and E2-2 are crucial for transactivation. Subsequent findings showed that the same amino-terminal region of E2A is involved in two different translocation events contributing to the induction of a pre-B-cell acute lymphoblastic leukemia and a pro-B-cell acute lymphoblastic leukemia. These results led us to focus on the amino-terminal region of E2A to better understand its normal role in transcriptional regulation and its aberrant involvement in the two leukemias. We report here the identification of two conserved boxes in the E2A amino-terminal domain that show extensive homology within the transactivation domains of E12, E47, E2-2, HEB, and daughterless, all members of the same class of helix-loop-helix proteins. Together, both boxes are crucial for transcriptional activation and have the potential to form a new activation motif, that of a loop adjacent to an amphipathic alpha-helix, designated the loop-helix (LH) motif. A minimal region containing the LH motif is sufficient for transcriptional activation. Point mutations in the amphipathic helix of the minimal region reduce its transactivation capabilities dramatically. The same constructs expressed in yeast cells show identical patterns of activation, suggesting that the LH motif and its target proteins are functionally conserved in yeast cells. We propose that the LH motif represents a novel transactivation domain that is distinct from the previously characterized acidic blob, proline-rich, and glutamine-rich activation motifs. In addition, the LH motif is the first activation motif restricted to one class of DNA binding proteins.

Amino Acid Sequence↗

E2A and E2-2 are subunits of B-cell-specific E2-box DNA-binding proteins.

A class of helix-loop-helix (HLH) proteins, including E2A (E12 and E47), E2-2, and HEB, that bind in vitro to DNA sequences present in the immunoglobulin (Ig) enhancers has recently been identified. E12, E47, E2-2, and HEB are each present in B cells. The presence of many different HLH proteins raises the question of which of the HLH proteins actually binds the Ig enhancer elements in B cells. Using monoclonal antibodies specific for both E2A and E2-2, we show that both E2-2 and E2A polypeptides are present in B-cell-specific Ig enhancer-binding complexes. E2-box-binding complexes in pre-B cells contain both E2-2 and E2A HLH subunits, whereas in mature B cells only E2A gene products are present. We show that the difference in E2-box-binding complexes in pre-B and mature B cells may be caused by differential expression of E2A and E2-2.

Antibody Specificity↗

Functional activity of myogenic HLH proteins requires hetero-oligomerization with E12/E47-like proteins in vivo.

In this report we provide four lines of evidence indicating that E12/E47-like proteins interact in vivo with the myogenic HLH proteins MyoD and myogenin. First, cotransfection of MyoD and E47 in COS cells indicates that these factors synergistically enhance transcription of a reporter gene containing an oligomerized MyoD-binding site. Second, mobility-shift assays of muscle cell nuclear extracts, "double shifted" with specific antisera, have identified complexes binding to the MEF1 site that contain either MyoD or myogenin in association with E12/E47-like proteins. Third, association with E47 alters the phosphorylation state of MyoD. Fourth, C3H10T1/2 cells expressing antisense E2A transcripts contain low levels of E2A gene products and display less terminal muscle differentiation when infected with retroviral MyoD or when challenged to differentiate with 5-azacytidine treatment. In addition we demonstrate that MyoD, in conjunction with E12/E47-like proteins, is functioning as a regulatory nodal point for activation of several other downstream muscle regulators.

Adenovirus Early Proteins↗

B-cell- and myocyte-specific E2-box-binding factors contain E12/E47-like subunits.

Recent studies have identified a family of DNA-binding proteins that share a common DNA-binding and dimerization domain with the potential to form a helix-loop-helix (HLH) structure. Various HLH proteins can form heterodimers that bind to a common DNA sequence, termed the E2-box. We demonstrate here that E2-box-binding B-cell- and myocyte-specific nuclear factors contain subunits which are identical or closely related to ubiquitously expressed (E12/E47) HLH proteins. These biochemical function for E12/E47-like molecules in mammalian differentiation, similar to the genetically defined function of daughterless in Drosophila development.

Animals↗

A new homeobox gene contributes the DNA binding domain of the t(1;19) translocation protein in pre-B ALL.

It was previously shown that the chromosome 19 breakpoint of the t(1;19)(q23;p13.3) translocation, found in human pre-B cell acute lymphoblastic leukemias, is within the E2A transcription factor gene on chromosome 19. A cell line with this translocation contains two novel chimeric mRNAs, both with the same 5'E2A sequences but with different lengths of 3' sequence from a previously unrecognized gene dubbed prl, located on chromosome 1. The chimeric RNAs encode a protein that lacks 171 amino acids of E2A, including its DNA binding and dimerization motifs, but have instead a homeobox-related sequence from prl. Therefore, the production of a chimeric E2A-Prl protein may contribute to the acute lymphoblastic phenotype by directly altering the expression of genes normally responsive to the Prl homeoprotein.

Amino Acid Sequence↗

The gene for enhancer binding proteins E12/E47 lies at the t(1;19) breakpoint in acute leukemias.

The gene (E2A) that codes for proteins with the properties of immunoglobulin enhancer binding factors E12/E47 was mapped to chromosome region 19p13.2-p13.3, a site associated with nonrandom translocations in acute lymphoblastic leukemias. The majority of t(1;19)(q23;p13)-carrying leukemias and cell lines studied contained rearrangements of E2A as determined by DNA blot analyses. The rearrangements altered the E2A transcriptional unit, resulting in the synthesis of a transcript larger than the normal-sized E2A mRNAs in one of the cell lines with this translocation. These observations indicate that the gene for a transcription factor is located at the breakpoint of a consistently recurring chromosomal translocation in many acute leukemias and suggest a direct role for alteration of such factors in the pathogenesis of some malignancies.

Child↗

Interactions between heterologous helix-loop-helix proteins generate complexes that bind specifically to a common DNA sequence.

A DNA binding and dimerization motif, with apparent amphipathic helices (the HLH motif), has recently been identified in various proteins, including two that bind to immunoglobulin enhancers (E12 and E47). We show here that various HLH proteins can bind as apparent heterodimers to a single DNA motif and also, albeit usually more weakly, as apparent homodimers. The HLH domain can mediate heterodimer formation between either daughterless, E12, or E47 (Class A) and achaete-scute T3 or MyoD (Class B) to form proteins with high affinity for the kappa E2 site in the immunoglobulin kappa chain enhancer. The achaete-scute T3 and MyoD proteins do not form kappa E2-binding heterodimers together, and no active complex with N-myc was evident. The formation of a heterodimer between the daughterless and achaete-scute T3 products may explain the similar phenotypes of mutants at these two loci and the genetic interactions between them. A role of E12 and E47 in mammalian development, analogous to that of daughterless in Drosophila, is likely.

Animals↗

A new DNA binding and dimerization motif in immunoglobulin enhancer binding, daughterless, MyoD, and myc proteins.

Two cDNAs were isolated whose dimerized products bind specifically to a DNA sequence, kappa E2, located in the immunoglobulin kappa chain enhancer. Both cDNAs share a region of extensive identity to the Drosophila daughterless gene and obvious similarity to a segment in three myc proteins, MyoD, and members of the Drosophila achaete-scute and twist gene family. The homologous regions have the potential to form two amphipathic helices separated by an intervening loop. Remarkable is the stringent conservation of hydrophobic residues present in both helices. We demonstrate that this new motif plays a crucial role in both dimerization and DNA binding.

Amino Acid Sequence↗