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Mapping of the carboxyl terminus within the tertiary structure of transducin's alpha subunit using the heterobifunctional cross-linking reagent, 125I-N-(3-iodo-4-azidophenylpropionamido-S-(2-thiopyridyl) cysteine.

A heterobifunctional cross-linking reagent, 125I-N-(3-iodo-4-azidophenylpropionamido-S-(2-thiopyridyl) cysteine (125-ACTP), has been synthesized. 125I-ACTP has been used to derivative reduced sulfhydryls of the retinal G protein, transducin (Gt), to form a mixed disulfide bond under mild, nondenaturing conditions (pH 7.4, 4 degrees C). The resulting disulfide was easily cleaved using reducing reagents. A 200-fold molar excess of 125I-ACTP relative to Gt resulted in the incorporation of 1-1.3 mol of the 125I-N-(3-iodo-4-azidophenylpropionamido)cysteine moiety of ACTP into Gt alpha. In contrast to 125I-ACTP, dithionitrobenzoate and dithiopyridone derivatized six sulfhydryls in native Gt. Incubation of a 10-fold molar excess of 125I-ACTP relative to Gt resulted in the derivatization of 0.75-0.9 and 0.1 mol of reduced sulfhydryls/mol Gt alpha and beta, respectively. Gt gamma was not derivatized by 125I-ACTP. Thus, Gt alpha was preferentially derivatized by 125I-ACTP. Tryptic digestion and amino acid sequencing of Gt alpha indicated that both Cys-347 near the carboxyl terminus and Cys-210 between the second and third consensus sequences forming the GTP-binding site were derivatized by 125I-ACTP in a ratio of approximately 70 and 30%, respectively. Thus, both Cys-210 and Cys-347 are labeled, even though derivatization by 125I-ACTP does not exceed 1 mol of SH/mol Gt alpha. It appears that derivatization of one sulfhydryl, either Cys-210 or Cys-347, excludes labeling of the second cysteine either by steric hindrance or induced conformational change making the second cysteine inaccessible to 125I-ACTP. Consistent with this finding was the observation that pertussis toxin-catalyzed ADP-ribosylation of Cys-347 inhibited 125I-ACTP derivatization of Cys-210. Derivatization of Gt alpha at either Cys-210 or Cys-347 by 125I-ACTP inhibited rhodopsin-catalyzed guanosine 5'-3-O-(thio)triphosphate binding to Gt, mimicking the effect of ADP-ribosylation of Cys-347 by pertussis toxin. ACTP contains a radioiodinated phenylazide moiety which, upon activation, can cross-link the derivatized cysteine to an adjacent polypeptide domain. Following reduction of the disulfide, the [125I] iodophenyl moiety will be transferred to the azide-inserted polypeptide. When photoactivation of the phenylazide moiety of 125I-ACTP after sulfhydryl derivatization was performed, insertion of the Cys-347 which contains Cys-210, was found.(ABSTRACT TRUNCATED AT 400 WORDS)

Azides↗

Characterization of interactions between transducin alpha/beta gamma-subunits and lipid membranes.

The gamma-subunits of heterotrimeric guanine nucleotide-binding regulatory proteins (G-proteins) are isoprenylated and alpha-carboxyl methylated at their COOH-terminal cysteine residues. These modifications are necessary for membrane attachment of the beta gamma complex, but a requirement of an additional factor has been proposed for the stable binding. We explored a possible contribution of the blocked amino terminus of beta-subunits of bovine photoreceptor G-protein, transducin (T alpha/T beta gamma = Gt alpha/beta 1 gamma 1), and of three beta gamma complexes (beta 1 gamma 2, beta 1 gamma 3, and beta 1 gamma 7) purified from bovine brains. Structural analyses revealed that every beta 1-subunit has an N-acetylated serine, which is unlikely to contribute to the membrane association. Since neither protease nor heat treatment of photoreceptor membranes affected the membrane binding of T beta gamma, it seems unlikely that rhodopsin (or other membrane proteins) serves as an anchor protein for accepting T beta gamma. In fact, T beta gamma bound to phospholipid large unilamellar vesicles (LUVs), of which the polar head groups strongly influenced the binding: T beta gamma alone showed 2-fold higher binding for negatively charged phosphatidylserine-LUVs than for neutral phosphatidylcholine (PC)-LUVs, while the affinity of T alpha/T beta gamma complex for the phosphatidylserine-LUVs was lower than that for the PC-LUVs. These results indicate that 1) an ionic interaction between T beta gamma and membrane surface plays an important role in the stable membrane association, and 2) the domain(s) of T beta gamma responsible for the association would be different between trimeric and dissociated states. We also found that synthetic peptides corresponding to the COOH-terminal region of T gamma inhibited T alpha-T beta gamma interaction only when the peptides were isoprenylated. This suggests that the isoprenyl moiety is located at the contact site between the subunits, not at the membrane-binding domain, when T beta gamma is complexed with T alpha.

Adenosine Diphosphate Ribose↗

[Analysis of cell specific transcription of the human cone transducin alpha subunit gene].

Cone transducin alpha subunit (Tc alpha), together with the two other components; beta and gamma subunits, composes a heterotrimeric G protein and transmits visual signals in the optic system. Genomic Tc alpha gene was cloned from human placental library using a cDNA probe isolated from a human T-cell cell line, Jurkat. The 5' region of Tc alpha was sequenced and the mechanism of Tc alpha expression was analysed by primer extension and CAT assay. Furthermore DNase 1 hypersensitivity test and genomic sequencing were performed. Primer extension revealed two transcription initiation sites. A TATA box and an inverted CCAAT box were identified just upstream of the transcription initiation sites, which constituted a typical promoter structure. In further upstream region, an octamer sequence (ATGCAAAT) and an inverted GGCCCC were found. The latter sequence is frequently present upstream of the genes expressed exclusively in retinal cells. No specific DNA element enhancing the expression of Tc alpha in Y79 cells (a Tc alpha expressing cell line) was found by CAT assay. However, DNaseI hypersensitivity test revealed the region to be in an active chromatin structure in Y79 as opposed to HeLa (a Tc alpha non-expressing cell line). By further study utilizing genomic sequencing, HeLa DNA was methylated in contrast to Y79, suggesting methylation as one of the transcription-regulating factors of this region.

Base Sequence↗

Localization of upstream silencer elements involved in the expression of cone transducin alpha-subunit (GNAT2).

PURPOSE: To localize cis-acting elements involved in the expression of the cone-specific G-protein, cone transducin alpha-subunit (GNAT2). METHODS: In this study, the authors used a genomic clone, HGLG3, to sequence 3139 base pairs of the upstream region of the GNAT2 gene and to localize cis-acting elements involved in the expression of GNAT2. Upstream elements were localized functionally by transfection of chloramphenicol acetyltransferase gene constructs containing nested deletions of this upstream region into WERI-Rb1 cells. Cell specificity of the localized elements was determined by transfection of the HeLa cells. Trans-acting factor-binding sites to functional cis-acting elements were determined by DNasel footprinting. Cell specificity of protein interaction with footprinted regions was tested by electrophoretic mobility shifts with nuclear extracts from WERI-Rb1 and HeLa cells. RESULTS: Transfection of WERI-Rb1 and HeLa cells revealed the presence of a strong, noncell-specific silencer region between -1130 and -23, a weak, cell-specific promoter between -151 and -10, and a stronger, noncell-specific element between +143 and +167. DNaseI footprinting showed three major footprints (S1, S2, and S3) between -807 and -176, indicating the binding sites for putative negative trans-acting factors. Individual footprinted sequences had similar electrophoretic mobility shifts when they were incubated with nuclear extracts from either WERI-Rb1 or HeLa cells, suggesting that these cells express the same negative factors. CONCLUSIONS: The expression of the GNAT2 gene is controlled by a strong silencer region, a weak upstream cell-specific promoter, and a strong downstream element. The silencer region interacts with similar proteins from retina- and nonretina-derived cell lines.

Base Sequence↗

Exon screening of the genes encoding the beta- and gamma-subunits of cone transducin in patients with inherited retinal disease.

PURPOSE: To screen the exons of the genes encoding the beta3-subunit (GNB3) and gammac-subunit (GNGT2) of cone transducin for mutations in a large number of unrelated patients with various forms of inherited retinal disease including cone dystrophy, cone-rod dystrophy and macular dystrophy. METHODS: Exons of the two genes were screened for mutations by denaturing gradient gel electrophoresis (DGGE) and/or single strand conformation polymorphism electrophoresis (SSCP); any variants were sequenced directly. RESULTS: Although many sequence variants were found in both genes, none could be associated with disease. Additionally, the gene structure and sequence of the coding exons of GNB3 were determined and compared with those of the dog homolog. Both human and canine GNB3 have nine coding exons and their two predicted amino acid sequences have 97% identity. CONCLUSIONS: The results indicate that GNB3 and GNGT2 are unlikely sites of mutations responsible for inherited retinal degenerations that predominantly effect cone-mediated function (cone and cone-rod dystrophies) or have a predilection for disease in the macula (macular dystrophies).

Amino Acid Sequence↗

Cdc20, a beta-transducin homologue, links RAD9-mediated G2/M checkpoint control to mitosis in Saccharomyces cerevisiae.

In the budding yeast Saccharomyces cerevisiae, the DNA damage-induced G2 arrest requires the checkpoint control genes RAD9, RAD17, RAD24, MEC1, MEC2 and MEC3. These genes also prevent entry into mitosis of a temperature-sensitive mutant, cdc13, that accumulates chromosome damage at 37 degrees C. Here we show that a cdc13 mutant overexpressing Cdc20, a beta-transducin homologue, no longer arrests in G2 at the restrictive temperature but instead undergoes nuclear division, exits mitosis and enters a subsequent division cycle, which suggests that the DNA damage-induced G2/M checkpoint control is not functional in these cells. This is consistent with our observation that overexpression of CDC20 in wild-type cells results in increased sensitivity to UV irradiation. Overproduction of Cdc20 does not influence the arrest phenotype of the cdc mutants whose cell cycle block is independent of RAD9-mediated checkpoint control. Therefore, we suggest that the DNA damage-induced checkpoint controls prevent mitosis by inhibiting the nuclear division pathway requiring CDC20 function.

Cdc20 Proteins↗

Disrupted development of the cerebral hemispheres in transgenic mice expressing the mammalian Groucho homologue transducin-like-enhancer of split 1 in postmitotic neurons.

Transducin-like Enhancer of split (TLE) 1 is a mammalian transcriptional corepressor homologous to Drosophila Groucho. In Drosophila, Groucho acts together with bHLH proteins of the Hairy/Enhancer of split (HES) family to negatively regulate neuronal differentiation. Loss of the functions of Groucho or HES proteins results in supernumerary central and peripheral neurons. This suggests that mammalian TLE/Groucho family members may also be involved in the regulation of neuronal differentiation. Consistent with this possibility, TLE1 is expressed in proliferating neural progenitor cells of the central nervous system, but its expression is transiently down-regulated in newly generated postmitotic neurons. Based on these observations, we investigated whether persistent TLE1 expression in postmitotic neurons would perturb the normal course of neuronal development. Transgenic mice were derived in which the human TLE1 gene is regulated by the promoter of the Talpha1 alpha-tubulin gene, which is exclusively expressed in postmitotic neurons. In these mice, constitutive expression of TLE1 inhibits neuronal development in the embryonic forebrain leading to increased apoptosis and neuronal loss in the ventral and dorsal telencephalon. These results provide the first direct evidence that TLE1 is an important negative regulator of postmitotic neuronal differentiation in the mammalian central nervous system.

Animals↗

Transducin-like Enhancer of split 2, a mammalian homologue of Drosophila Groucho, acts as a transcriptional repressor, interacts with Hairy/Enhancer of split proteins, and is expressed during neuronal development.

Groucho is a Drosophila transcriptional repressor involved in neurogenesis, segmentation, and sex determination together with basic helix-loop-helix proteins of the Hairy/Enhancer of split (HES) family. Several mammalian Groucho homologues, the Transducin-like Enhancer of split (TLE) 1 through 4 proteins, share similar properties with their Drosophila counterpart, suggesting that TLE proteins perform functions analogous to the roles of Groucho in Drosophila. The aim of this study was to examine this possibility by characterizing the properties of TLE2 and extending the analysis of TLE1. It is shown here that TLE2 and TLE1 are transcriptional repressors that contain two separate repression domains, located either within a Gln-rich amino terminal region or within an internal domain characterized by an abundance of Ser, Thr, and Pro residues. In addition, both TLE2 and TLE1 can homo- and heterodimerize through a short region that is part of their amino-terminal transcription repression domains. Finally, TLE2 interacts and is co-expressed with mammalian HES proteins in both neural and non-neural tissues. Taken together, these findings implicate TLE2 in transcriptional repression and define the structural elements that mediate transcriptional and protein-protein interaction functions of Groucho/TLE proteins.

Animals↗

Transducin-like enhancer of split proteins, the human homologs of Drosophila groucho, interact with hepatic nuclear factor 3beta.

Members of the hepatic nuclear factor 3 (HNF3) family, including HNF3alpha, HNF3beta, and HNF3gamma, play important roles in embryonic development, the establishment of tissue-specific gene expression, and the regulation of gene expression in differentiated tissues. We found, using the glutathione S-transferase pull-down method, that the transducin-like Enhancer of split (TLE) proteins, which are the human homologs of Drosophila Groucho, directly associate with HNF3beta. Conserved region II of HNF3beta (amino acids 361-388) is responsible for the interaction with TLE1. A mammalian two-hybrid assay was used to confirm that this interaction occurs in vivo. Overexpression of TLE1 in HepG2 and HeLa cells decreases transactivation mediated through the C-terminal domain of HNF3beta, and Grg5, a naturally occurring dominant negative form of Groucho/TLE, also increases the transcriptional activity of this region of HNF3. These results lead us to suggest that TLE proteins could influence the expression of mammalian genes regulated by HNF3.

Amino Acid Sequence↗

Role for the mortality factors MORF4, MRGX, and MRG15 in transcriptional repression via associations with Pf1, mSin3A, and Transducin-Like Enhancer of Split.

mSin3A and Transducin-Like Enhancer of Split (TLE) are two histone deacetylase (HDAC)-containing corepressors that function to repress transcription at targeted genes. Pf1 is a plant homeodomain zinc finger protein that interacts with both mSin3A and TLE, suggesting that it coordinates their function. Here we show that mSin3A and TLE interact with members of the mortality factor (MORF) family of putative transcriptional regulators. This family comprises MORF on chromosome 4 (MORF4) and MORF-related genes on chromosomes X and 15 (MRGX and MRG15, respectively) and is proposed to contribute to cellular senescence. Consistent with a role in transcription, we demonstrate that Gal4 fusions to each MORF family member repress transcription from a Gal4-dependent luciferase reporter. By using both mapping experiments and a dominant negative form of TLE, we show that repression by MORFs requires associations with mSin3A and TLE. Therefore, common functions of the MORFs are likely elicited through the action of a MORF/mSin3A/TLE complex. While the MORFs may have common functions, MRG15, but not MRGX or MORF4, interacted with Pf1. Therefore, MRG15 may have functions that are distinct from those of MRGX and MORF4. Consistent with this hypothesis, Pf1 reduced transcriptional repression by Gal4-MRG15 but it had no effect on repression by MRGX and MORF4. Pf1 has independent binding sites for MRG15 and mSin3A. In addition, Pf1 and MRG15 bind different domains on mSin3A. Together, these data suggest that the unique functions of MRG15 are elicited through the action of an MRG15/Pf1/mSin3A complex.

Animals↗

A screen for mutations in the transducin gene GNB1 in patients with autosomal dominant retinitis pigmentosa.

PURPOSE: To search for mutations in the GNB1 gene (coding for the transducin beta1-subunit protein) in patients with autosomal dominant retinitis pigmentosa. METHODS: We screened 185 unrelated patients with autosomal dominant retinitis pigmentosa (ADRP) using direct genomic sequencing of the three non-coding exons and 9 coding exons, along with immediately flanking intron DNA. RESULTS: We found 2 polymorphisms, one in intron 1 with a minor allele frequency of 24%, and one in intron 6 with a minor allele frequency of 12% among the 185 patients. Two rare variants (minor allele frequency <1%) were found in the 3' untranslated region of exon 12. No changes were found in the open reading frame (exons 3-11) or in the noncoding exons 1 and 2. CONCLUSIONS: No likely pathogenic GNB1 mutations have been found in any of 185 unrelated patients with ADRP. This result would be expected if hemizygosity for GNB1 does not result in ADRP or is a rare cause of ADRP.

3' Untranslated Regions↗

An intramolecular contact in Galpha transducin that participates in maintaining its intrinsic GDP release rate.

Receptor mediated stimulation of the G protein-alpha subunit leads to exchange of GDP for GTP, activating the protein. Spontaneous GDP release from Galpha can also lead to the active state, if GTP in solution binds the nucleotide binding pocket. The purpose of this study is to evaluate the molecular determinants for maintaining the spontaneous GDP release rates between two Galpha subunits. Galpha(t) has a low rate of nucleotide release, compared to Galpha(i1). Galpha(t/i1) chimeras were used to explore the molecular basis for this behavior. The C-terminal alpha4-helix, the N-terminal 56 residues and the Switch I/II regions of Galpha(t) were shown to affect the low spontaneous GDP release rate in Galpha(t). A specific molecular contact between Asp26 and Asn191 was found in Galpha(t) that is not present in Galpha(i1). In two chimeras disrupting this interaction produced an increased spontaneous GDP release; restoring the contact present in Galpha(t) into these chimeras decreased the GDP release rate by half as compared to the original chimeras. Similarly, introduction of this contact in wild-type Galpha(i1) decreased the GDP release rate of Galpha(i1) by half. Differences in GDP release rates may reflect physiological roles these proteins play in living systems.

Chimera↗

The small G-protein ARF1GDP binds to the Gt beta gamma subunit of transducin, but not to Gt alpha GDP-Gt beta gamma.

AlF4- activates heterotrimeric G-proteins G alpha subunits but not small GDP/GTP-binding proteins like ARF1. On retinal membranes containing holotransducin (Gt alpha GDP-Gt beta gamma) and incubated with ARFGDP, AlF4- induced Gt alpha GDP-AlF4 release and ARFGDP binding, probably to the remaining membrane-attached Gt beta gamma. On phospholipid vesicles reconstituted with Gt beta gamma, ARFGDP bound in proportion to Gt beta gamma, and was released upon subsequent Gt alpha GDP addition. Thus ARFGDP competes with Gt alpha GDP for binding to Gt beta gamma, probably through a conserved motif in the 'alpha 2 helix' of Gt alpha and ARF. This motif is found in the C-terminal helix of PH domains that bind to G beta gamma.

ADP-Ribosylation Factor 1↗