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I E Scheffler

Publications and source records attributed to I E Scheffler.

At least 37 records · Page 2Linked to original sources

Glucose-dependent turnover of the mRNAs encoding succinate dehydrogenase peptides in Saccharomyces cerevisiae: sequence elements in the 5' untranslated region of the Ip mRNA play a dominant role.

We have demonstrated previously that glucose repression of mitochondrial biogenesis in Saccharomyces cerevisiae involves the control of the turnover of mRNAs for the iron protein (Ip) and flavoprotein (Fp) subunits of succinate dehydrogenase (SDH). Their half-lives are > 60 min in the presence of a nonfermentable carbon source (YPG medium) and < 5 min in glucose (YPD medium). This is a rare example in yeast in which the half-lives are > 60 min in the presence of a nonfermentable carbon source (YPG medium) and < 5 min in glucose (YPD medium). This is a rare example in yeast in which the half-life of an mRNA can be controlled by manipulating external conditions. In our current studies, a series of Ip transcripts with internal deletions as well as chimeric transcripts with heterologous sequences (internally or at the ends) have been examined, and we established that the 5'-untranslated region (5' UTR) of the Ip mRNA contains a major determinant controlling its differential turnover in YPG and YPD. Furthermore, the 5' exonuclease encoded by the XRN1 gene is required for the rapid degradation of the Ip and Fp mRNAs upon the addition of glucose. In the presence of cycloheximide the nucleolytic degradation of the Ip mRNA can be slowed down by stalled ribosomes to allow the identification of intermediates. Such intermediates have lost their 5' ends but still retain their 3' UTRs. If protein synthesis is inhibited at an early initiation step by the use of a prt1 mutation (affecting the initiation factor eIF3), the Ip and Fp mRNAs are very rapidly degraded even in YPG. Significantly, the arrest of translation by the introduction of a stable hairpin loop just upstream of the initiation codon does not alter the differential stability of the transcript in YPG and YPD. These observations suggest that a signaling pathway exists in which the external carbon source can control the turnover of mRNAs of specific mitochondrial proteins. Factors must be present that control either the activity or more likely the access of a nuclease to the select mRNAs. As a result, we propose that a competition between initiation of translation and nuclease action at the 5' end of the transcript determines the half-life of the Ip mRNA.

Base Sequence↗

Isolation and characterization of HL-60 cells resistant to nitroprusside-induced differentiation.

Sodium nitroprusside and sodium nitrite, which generate nitric oxide and increase the intracellular cGMP concentration, and 8-bromo-cGMP, a membrane-permeable cGMP analog, induce myelomonocytic differentiation of HL-60 cells (Boss, G. R. (1989) Proc. Natl. Acad. Sci. U. S. A. 86, 7174-7178). We have selected HL-60 cells resistant to nitroprusside-induced differentiation as assessed by acquisition of the OKM-1 antigen, reduction of nitro blue tetrazolium, and morphologic maturation. The variant cells were also resistant to differentiation induced by sodium nitrite and two cGMP analogs but still differentiated in response to other inducing agents such as dimethyl sulfoxide and cAMP analogs and showed the same changes in c-myc and c-fos expression in response to the latter drugs as occurred in parental cells. We studied the early steps of the NO/cGMP signal transduction pathway in the variant cells and found that basal and nitroprusside-stimulated guanylate cyclase activity was similar in parental and variant cell extracts and that nitroprusside increased the intracellular cGMP concentration to the same extent in parental and variant cells. As part of these studies we found that HL-60 cells expressed only alpha 2 and beta 2 guanylate cyclase mRNA; the abundance of these two mRNA species was similar in parental and variant cells. Neither nitroprusside nor 8-bromo-cGMP changed the intracellular calcium concentration in parental or variant cells. The data suggest that the defect in the variant cells is after guanylate cyclase activation in the NO/cGMP transduction pathway and that the cGMP and cAMP transduction pathways operate independently in inducing differentiation of HL-60 cells.

Cell Differentiation↗

Characterization of the gene encoding the iron-sulfur protein subunit of succinate dehydrogenase from Drosophila melanogaster.

The iron-sulfur protein (Ip) subunit of succinate dehydrogenase (and complex II of the electron transport chain) is highly conserved in evolution [Gould et al., Proc. Natl. Acad. Sci. USA 86 (1989) 1934-1938]. We have cloned the Drosophila melanogaster Ip-encoding gene (SdhB) by genomic library screening using the human Ip-encoding cDNA as a probe at low stringency. A 2.7-kb fragment containing SdhB has been sequenced and shown to comprise the entire transcribed region and more than 900 bp of promoter region. The gene contains three exons and two small introns of 272 and 56 nt, respectively, and is transcribed into an mRNA of 1205 nt (plus poly(A) tail). The deduced amino-acid (aa) sequence shows strong similarities with Ip peptides from Escherichia coli, yeasts, plants and mammals, with 100% aa identity around the three Cys clusters which form the non-heme iron-sulfur centers. In situ hybridization on polytene chromosomes maps SdhB to band 42D 1-5 on the right arm of the second chromosome next to the centromere. Developmental and tissue-specific Northern blots show a single transcript of 1.3 kb in all tissues. However, its abundance varies during development and in the major body segments of the adult fly. Pupae have very low levels of transcript, in contrast to larvae. It is most abundant in the adult thorax and low in abdominal tissues.

Amino Acid Sequence↗

Studies on the assembly of complex II in yeast mitochondria using chimeric human/yeast genes for the iron-sulfur protein subunit.

A series of chimeric human/yeast IP genes were constructed in order to investigate domains of the iron-sulfur protein (IP) that are important for assembly and/or activity of complex II of the electron transport system in Saccharomyces cerevisiae. These genes were expressed in a respiration-deficient yeast mutant in which the endogenous IP gene had been disrupted. Substitutions at the N-terminus were tolerable. Substituting the region covering the first iron-sulfur center [2Fe-2S] had no effect on assembly, while activity decreased 2-5-fold. The addition of seven amino acids from the human peptide, including four charged residues, at the C-terminus did not perturb either assembly or activity. A region between the first and second cysteine clusters was identified which when substituted caused a complete failure in the assembly of complex II. It includes a 15 amino acid stretch which shows the greatest variability between species. Larger substitutions including this segment failed as well. Exchanging the region between the second and third cysteine clusters making up the [4Fe-4S] and [3Fe-4S] centers enabled transformants to grow on nonfermentable carbon sources, yet no SDH activity was observed in vitro. The IP and FP proteins accumulate to wild-type levels in these mutants. We speculate that the lack of observed activity is due to the lability of iron-sulfur centers in isolated, broken mitochondria.

Amino Acid Sequence↗

The gene for the iron sulfur protein of succinate dehydrogenase (SDH-IP) maps to human chromosome 1p35-36.1.

A partial human cDNA clone for the iron-protein (IP) subunit of succinate dehydrogenase (EC 1.3.99.1) was used in Southern analyses of restriction enzyme digests of genomic human and hamster DNA as well as hamster-human hybrids containing a limited number of human chromosomes. The gene for this protein was mapped to human chromosome 1. Digestion of genomic DNA with several restriction enzymes yielded two fragments detectable on a Southern blot, in contrast to the expectations based on the sequence of the cDNA clone. A preliminary analysis of a genomic clone with most of the IP gene has indicated the presence of several introns containing restriction sites detected by the Southern analysis. This genomic clone was also used for subregional mapping by fluorescence in situ hybridization (FISH) to human metaphase chromosomes. A single locus in the region 1p35-36.1 was identified.

Animals↗

The C-terminus of the succinate dehydrogenase IP peptide of Saccharomyces cerevisiae is significant for assembly of complex II.

Site-directed mutagenesis was used to introduce mutations into the gene for the iron protein (IP) of succinate dehydrogenase (SDH) of Saccharomyces cerevisiae. Specifically, three mutations were examined which caused the synthesis of truncated IP peptides missing four, seven, or 17 amino acids from the C-terminus, respectively. The deletion of seven or more amino acids includes the loss of two lysine residues, which appear to have been highly conserved in evolution. While the deletion of four amino acids had no effect on the assembly of complex II and on its activity, the deletion including the two lysines abolished SDS activity completely and led to the failure of the imported IP peptide to be incorporated into a stable complex II or SDH complex. Replacement of one of the lysines by threonine had no effect, but replacement of both by threonine affected the specific activity of complex II but not its assembly and stability.

Amino Acid Sequence↗

Control of mRNA turnover as a mechanism of glucose repression in Saccharomyces cerevisiae.

We have examined the expression of the gene encoding the iron-protein subunit (Ip) of succinate dehydrogenase in Saccharomyces cerevisiae. The gene had been cloned by us and shown to be subject to glucose regulation (A. Lombardo, K. Carine, and I. E. Scheffler, J. Biol. Chem. 265:10419-10423, 1990). We discovered that a significant part of the regulation of the Ip mRNA levels by glucose involves the regulation of the turnover rate of this mRNA. In the presence of glucose, the half-life appears to be less than 5 min, while in glycerol medium, the half-life is greater than 60 min. The gene is also regulated transcriptionally by glucose. The upstream promoter sequence appeared to have four regulatory elements with consensus sequences shown to be responsible for the interaction with the HAP2/3/4 regulatory complex. A deletion analysis has shown that the two distal elements are redundant. These measurements were carried out by Northern (RNA) analyses of Ip mRNA transcripts as well as by assays of beta-galactosidase activity in cells carrying constructs of the Ip promoter linked to the lacZ coding sequence. These observations on the regulation of mRNA stability were also extended to the mRNA of the flavoprotein subunit of succinate dehydrogenase and in some experiments of iso-1-cytochrome c.

Cloning, Molecular↗

The 5'- and 3'-untranslated regions of ornithine decarboxylase mRNA affect the translational efficiency.

We have determined the roles of the 5'- and 3'-untranslated regions (UTR) of ornithine decarboxylase (ODC) mRNA in the post-transcriptional regulation of this enzyme. A series of expression vectors were constructed in which portions of the ODC 5' and/or 3' UTRs were placed flanking a reporter gene coding sequence, either firefly luciferase or chloramphenicol acetyltransferase, so as to generate a hybrid transcript. Translation of these chimeric genes in transient expression assays in wild type and ODC-deficient hamster cells was examined in the presence of normal or depleted polyamine pools. The ODC 5' UTR suppresses translation of the coding sequence it precedes irrespective of polyamine levels, and this effect is shown to be due to the GC-rich 5' segment of the UTR. The same effect is observed in vivo and in a rabbit reticulocyte in vitro translation system. The GC-rich region has the potential to form a very stable hairpin structure and inhibits translation in a position-dependent but orientation-independent manner. Insertion of the 3' UTR of ODC downstream of the translation termination codon of the reporter gene but prior to the polyadenylation signal partially relieves the suppression of translation imposed by the 5' UTR; the overall translatability of the message improves 30-50-fold.

Animals↗

Cloning and characterization of the iron-sulfur subunit gene of succinate dehydrogenase from Saccharomyces cerevisiae.

We describe the cloning and characterization of the complete gene for the iron-sulfur protein subunit of succinate dehydrogenase (EC 1.3.99.1) from Saccharomyces cerevisiae. The promoter and coding sequence have been cloned into an Escherichia coli-yeast shuttle vector. The cloned gene complements the defect in a succinate dehydrogenase-deficient yeast mutant isolated by us, and gene expression is fully responsive to induction by glucose deprivation, indicating that the promoter is intact.

Amino Acid Sequence↗

Molecular and genetic characterization of an ornithine decarboxylase-deficient Chinese hamster cell line.

The ornithine decarboxylase (ODC)-deficient Chinese hamster ovary (CHO) cell line C55.7 has normal amounts of ODC mRNA with very low amounts of immunologically detectable ODC protein, suggesting a structural mutation; however, 5-azacytidine treatment leads to phenotypical reversion (Steglich, C., and Scheffler, I. E. (1985) Somat. Cell Mol. Genet. 11, 11-23). We have demonstrated by chemical cleavage a single base mismatch in DNA heteroduplexes composed of wild-type and mutant cDNA strands. DNA sequencing showed that the mutant phenotype results from an aspartate-glycine substitution at amino acid 381 of the protein. When 5-azacytidine-revertant cell lines were selected for resistance to alpha-difluoromethylornithine, the resulting amplified ODC gene was structurally indistinguishable from the wild type gene. These results suggested the existence of a single active ODC locus in CHO cells. Using the methylation-sensitive restriction endonucleases AvaI and HpaII, we found evidence for two differentially methylated alleles in wild type, ODC-deficient and alpha-difluoromethylornithine-resistant cells. One of the alleles appeared completely inactivated by hypermethylation but could be reactivated by demethylation in spontaneous or 5-azacytidine-induced revertants.

Animals↗

Isolation and characterization of a Saccharomyces cerevisiae mutant with a disrupted gene for the IP subunit of succinate dehydrogenase.

A partial cDNA clone corresponding to the iron-sulfur protein of succinate dehydrogenase (EC 1.3.99.1) has been isolated by an application of the polymerase chain reaction (Gould, S. J., Subramani, S., and Scheffler, I. E. (1989) Proc. Natl. Acad. Sci. U. S. A. 86, 1934-1938). We used this clone for targeted gene disruption to isolate clones of Saccharomyces cerevisiae which were totally defective in this enzyme. The disruption of the gene was verified by Southern analysis. A Northern analysis revealed the existence of a new transcript which includes the 5' end of the mRNA for the IP subunit, but extends into the vector sequence disrupting the gene. A Western analysis suggests that the large flavoprotein subunit (FP) is still made in the mutant and imported into the mitochondria, but at significantly lower levels.

Blotting, Northern↗

Molecular characterization of human minichromosomes with centromere from chromosome 1 in human-hamster hybrid cells.

In this study we examine the amounts of four different human satellite DNA sequences in a series of human-hamster hybrid cells, which contain a human minichromosome including the centromere of human chromosome 1. Comparisons with the corresponding amounts in an intact human chromosome 1 suggest that the minichromosomes have lost satellite DNA sequences, and in one case a substantial fraction of several satellite DNAs is lost, without affecting the stability and normal mitotic segregation of the minichromosome. The smallest minichromosome appears to have lost all of the long arm and a significant portion of centromeric heterochromatin, while retaining 1000-2000 kb of the short arm of human chromosome 1. The satellite sequences examined include: a chromosome 1-specific satellite III probe, a chromosome 1-specific alpha satellite DNA, another alpha satellite DNA originally derived from the X chromosome, and an alphoid EcoRI dimer whose isolation from one of the minichromosomes and characterization is also described in this paper. One interpretation of these data indicates that an interspersion of blocks of satellite sequences occurs in the centromere region of chromosome 1. If these satellite sequences have functional significance, then there may be redundancy in the system that allows for a variation in the size of the kinetochore and the number of attachment sites for microtubules.

Base Sequence↗

Use of the DNA polymerase chain reaction for homology probing: isolation of partial cDNA or genomic clones encoding the iron-sulfur protein of succinate dehydrogenase from several species.

The DNA polymerase chain reaction was developed for in vitro amplification of specific DNA sequences, and it has been used for a wide variety of purposes in several fields. We have developed an application of the polymerase chain reaction that is useful for the isolation of partial cDNA or genomic clones of conserved genes. We used this technique to clone the gene encoding the iron protein subunit (27 kDa) of succinate dehydrogenase (EC 1.3.5.1) from several species, including human, rat, Drosophila melanogaster, Arabidopsis thaliana, Schizosaccharomyces pombe, and Saccharomyces cerevisiae. Mixed oligonucleotide primers corresponding to two conserved regions of the protein were used in conjunction with genomic and cDNA templates in the reaction. The primers contained all possible nucleotide combinations that could encode the corresponding peptide sequences. These oligonucleotide mixtures contained 262,144 (2(18] and 8192 (2(13] unique sequences, respectively. Use of the polymerase chain reaction for homology probing allows one to utilize more complex mixtures of oligonucleotides as probes than is possible with filter hybridization screening techniques. In addition, the polymerase chain reaction offers the advantage of synthesizing the DNA product directly, in some cases obviating the need to construct cDNA or genomic libraries. This application of the polymerase chain reaction should be useful not only for the identification of conserved genes in a variety of species but also for the isolation of previously unknown members of gene families.

Amino Acid Sequence↗

Temperature-sensitive Chinese hamster cell mutant with a defect in glycoprotein synthesis: accumulation of the EGF receptor in the endoplasmic reticulum and the role of the glucose-regulated protein GRP78.

A temperature-sensitive mutant of Chinese hamster fibroblasts with a defect in glycoprotein synthesis is investigated after transfection and amplification of the gene for the human EGF receptor. We demonstrate that at the nonpermissive temperature a partially glycosylated species of the receptor accumulates in the endoplasmic reticulum. The oligosaccharides present are the high mannose types, since they can be removed completely by treatment with endoglycosidase H. Pulse-chase experiments show that the abnormal species of the receptor cannot be chased to a form that is either resistant to endoglycosidase H, or altered in its mobility on SDS polyacrylamide gels. The abnormal species of the receptor appears within the first hour of a shift to the nonpermissive temperature, and no further changes are observed upon prolonged incubation of cells at 40 degrees C. However, after 3-4 hours immunoprecipitations of the receptor yield another protein, which has properties very similar, if not identical, to the glucose-regulated protein GRP78. The induction of this protein at 40 degrees C can be suppressed completely with an inhibitor of RNA synthesis, without any effect on the glycosylation defect, or on the accumulation of the EGF receptor in the endoplasmic reticulum.

Animals↗

Characterization of single-copy probe from vicinity of centromere of human chromosome 1.

Human DNA sequences in the human-hamster somatic cell hybrid XJM12.1.3 exist in the form of a minichromosome including the centromere of human chromosome 1. We describe the cloning of XJM12.1.3 DNA into the lambda vector EMBL3, the identification of minichromosome DNA-containing recombinants by hybridization with human sequences, and the characterization of one recombinant as a specific and unique probe for a region close to the centromere of human chromosome 1. This probe and others isolated from the minichromosome DNA are being developed to permit molecular access to a human centromere and its functional sequences.

Animals↗

Steady-state and nuclear run-on analyses of transcription in a temperature-sensitive Chinese hamster cell mutant with a defect in RNA metabolism.

We have further characterized a temperature-sensitive mutant of Chinese hamster lung fibroblasts in tissue culture with a defect in RNA metabolism. The mutant phenotype is reflected in transcription in crude extracts or in isolated nuclei, when these are made from cells shifted to the nonpermissive temperature; however, differential heat inactivation between mutant and wild-type extracts cannot be demonstrated with cell-free systems. We tentatively conclude that the mutation may affect initiation of transcription which cannot be observed in our in vitro systems. Partially purified RNA polymerase I, II, and III fractions are indistinguishable from wild type. A temperature shift does not affect transcription by RNA polymerase III measured with intact cells or by nuclear run-on experiments. The nuclear run-on and other experiments suggest that RNA polymerase II-dependent transcription is inhibited before RNA polymerase I-dependent transcription. This conclusion is also supported by Northern analyses of selected mRNAs in nonsynchronized and synchronized cells after a shift to the nonpermissive temperature.

Amanitins↗