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SV40 deletion mutant (d1861) with agnoprotein shortened by four amino acids.

d1861 is an SV40 deletion mutant which was thought to lack the agnoprotein coding region and was used to verify the role of agnoprotein in the life cycle of SV40. In the present study the region flanking the deletion was sequenced and, in contrast to the available information, it was found that d1861 lacks 12 nt in phase, downstream from the AUG start codon of agnoprotein (residues 347-358). Using the runoff protocol with viral transcriptional complexes (VTC), that in vitro elongate the in vivo preinitiated nascent RNA, it was found that in vivo the major initiation site for late transcription is at residue 325, the same as in wild type (WT). In comparison with WT, d1861 encodes information for agnoprotein shortened by four amino acids and it has been identified in d1861 infected cells. However, pulse-chase experiments indicated that the rate of synthesis of d1861 agnoprotein is slower than that of WT agnoprotein and that it has a turnover rate of 1 hr as compared to 3 hr of WT agnoprotein. The reduced rate of synthesis of d1861 agnoprotein can be explained by nuclease S1 analyses in which the major leader of d1861 16 S RNA, that encodes the agnoprotein, appeared in significantly lower amounts as compared to the major leader of WT 16 S RNA. Furthermore, analysis of the potential secondary structures at the 5' end of the leader of d1861 16 S RNA has revealed stable structures in which the start codon of agnoprotein is sequestered in a stem. The involvement of RNA secondary structures in regulating the synthesis of agnoprotein is discussed.

Amino Acid Sequence

Sequence and linkage analysis of the Coxiella burnetii citrate synthase-encoding gene.

The nucleotide (nt) sequence of the Coxiella burnetii citrate synthase-encoding gene (gltA), previously cloned in Escherichia coli, was determined. The nt sequence analysis revealed an open reading frame (ORF) of 1290 bp capable of coding for a protein of 430 amino acids (aa) with a deduced Mr of 48,633. Preceding an ATG start codon, a possible transcription start point (tsp) with homology to the E. coli promoter consensus was detected. A poly-purine-rich region occurred immediately upstream from the gltA reading frame and potentially serves as a ribosome-binding site. Additionally, a G + C-rich region of dyad symmetry 3' to the translational stop codon was found that could possibly function as a Rho-independent transcriptional termination signal. A large, nearly perfect, inverted repeat was identified upstream from the gltA tsp and was shown by Southern analysis to be present in multiple copies in the C. burnetii genome. The deduced aa sequence of C. burnetii GltA was optimally aligned with enzymes from various prokaryotic sources and one eukaryotic source (pig heart). Using perfect aa identity, the C. burnetii enzyme demonstrated the greatest homology with GltA from Acinetobacter anitratum (65%). Although only 26% aa identity was seen with the pig heart enzyme, many of the residues identified in ligand binding appear to be conserved. Sequencing studies of a region centered approx. 5.6 kb upstream from gltA revealed an ORF read with opposite polarity that encodes a peptide highly homologous to the C terminus of the flavoprotein subunit of E. coli succinate dehydrogenase. This report represents the first nt sequence analysis of a gene of known function from the obligate intracellular parasite, C. burnetii.

Amino Acid Sequence

Effect of leader primary structure on the translational efficiency of phosphoglycerate kinase mRNA in yeast.

In order to determine the effect of the nucleotide composition of the 5'-untranslated (leader) region on the translational efficiency of mRNA in yeast, we replaced a large part of the leader region of the phosphoglycerate kinase (PGK) gene by various deoxyoligonucleotides of defined sequence. All mutations left the context of the transcription initiation site and AUG start codon intact. The mutant genes were introduced into yeast cells on a multicopy vector and the ratio of the steady-state levels of PGK mRNA and protein were determined. We found translational efficiency to be unaffected by the presence of either an 18 nucleotides (nt) long polyA or polyC tract or by sequences consisting of mixtures of A and C residues in any proportion. In contrast, a poly U tract, as well as mixtures of U and C residues, reduced translational efficiency by a factor of two to three, presumably by long-range base-pairing between the leader and sequences elsewhere in the coding or 3'-non-coding regions of the messenger. In agreement with this hypothesis, a five-fold reduction in translational efficiency was found for an mRNA carrying a polyC tract in the leader as well as a polyG tract in the trailer, neither of which had any effect on translational efficiency by itself. Therefore, we conclude that the leader and trailer regions (including the polyA tail) of PGK mRNA are sufficiently close to base-pair when containing complementary sequences. The resulting secondary structure evidently constitutes a barrier for incoming 40S subunits on their way to the AUG start codon. The presence of an 18 nt long polyG tract in the leader completely abolished translation of the PGK mRNA in accordance with earlier observations. However, we found that leaders containing up to 40% G residues interspersed with either A or U, still allow highly efficient translation. This value is about four times as high as the average G content of leader sequences in naturally occurring yeast mRNAs. Finally, neither deletion of about 40% of the trailer sequence of PGK mRNA, nor replacement of this sequence by homopolymer tracts had any effect on translational efficiency.

Amino Acid Sequence

Evolution of biosynthetic pathways: a common ancestor for threonine synthase, threonine dehydratase and D-serine dehydratase.

The Bacillus subtilis genes encoding threonine synthase (thrC) and homoserine kinase (thrB) have been cloned via complementation of Escherichia coli thr mutants. Determination of their nucleotide sequences indicates that the thrC stop codon overlaps the thrB start codon; this genetic organization suggests that the two genes belong to the same operon, as in E. coli. However, the gene order is thrC-thrB in B. subtilis whereas it is thrB-thrC in the thr operon of E. coli. This inversion of the thrC and thrB genes between E. coli and B. subtilis is indicative of a possible independent construction of the thr operon in these two organisms. In other respects, comparison of the predicted amino acid sequences of the B. subtilis and E. coli threonine synthases with that of Saccharomyces cerevisiae threonine dehydratase and that of E. coli D-serine dehydratase revealed extensive homologies between these pyridoxal phosphate-dependent enzymes. This sequence homology, which correlates with similarities in the catalytic mechanisms of these enzymes, indicates that these proteins, catalyzing different reactions in different metabolic pathways, may have evolved from a common ancestor.

Amino Acid Sequence

Lipoamide dehydrogenase from Azotobacter vinelandii. Molecular cloning, organization and sequence analysis of the gene.

The gene encoding lipoamide dehydrogenase from Azotobacter vinelandii has been cloned in Escherichia coli. Fragments of 9-23 kb from Azotobacter vinelandii chromosomal DNA obtained by partial digestion with Sau3A were ligated into the BamHI site of plasmid pUC9. E. coli TG2 cells were transformed with the resulting recombinant plasmids. Screening for clones which produced A. vinelandii lipoamide dehydrogenase was performed with antibodies raised against the purified enzyme. A positive colony was found which produced complete chains of lipoamide dehydrogenase as concluded form SDS gel electrophoresis of the cell-free extract, stained for protein or used for Western blotting. After subcloning of the 14.7-kb insert of this plasmid the structural gene could be located on a 3.2-kb DNA fragment. The nucleotide sequence of this subcloned fragment (3134 bp) has been determined. The protein-coding sequence of the gene consists of 1434 bp (478 codons, including the AUG start codon and the UAA stop codon). It is preceded by an intracistronic region of 85 bp and the structural gene for succinyltransferase. A putative ribosome-binding site and promoter sequence are given. The derived amino acid composition is in excellent agreement with that previously published for the isolated enzyme. The predicted relative molecular mass is 50223, including the FAD. The overall homology with the E. coli enzyme is high with 40% conserved amino acid residues. From a comparison with the three-dimensional structure of the related enzyme glutathione reductase [Rice, D. W., Schultz, G. E. & Guest, J. R. (1984) J. Mol. Biol. 174, 483-496], it appears that essential residues in all four domains have been conserved. The enzyme is strongly expressed, although expression does not depend on the vector-encoded lacZ promoter. The cloned enzyme is, in all the respects tested, identical with the native enzyme.

Amino Acid Sequence

Yeast LEU1. Repression of mRNA levels by leucine and relationship of 5'-noncoding region to that of LEU2.

Yeast LEU1 encodes the second enzyme in leucine biosynthesis. A 3.5-kilobase pair (kb) yeast genomic DNA fragment which complements a leu1 auxotroph was isolated by yeast transformation. After recloning into an integrating vector, a subfragment (of the 3.5-kb fragment) directs a URA3 marker to integrate at the LEU1 locus. About 1.9 kb was sequenced from the 5'-end of the 3.5-kb insert, and a long open reading frame and potential ATG start codon were located. S1 nuclease mapping showed a major start for LEU1 transcripts at 79 nucleotides upstream of the ATG codon. Northern blots with a LEU1-specific probe showed the size of the LEU1 transcript (about 2.9 kb) is consistent with the size of the enzyme and steady state levels of the transcript are sharply reduced in cells grown in the presence of an elevated leucine concentration. The latter observation correlates with the repression by leucine of LEU1 gene product levels. Other work has shown that the level of the LEU2 gene product is also repressed by leucine. Sequence comparisons between LEU1 and LEU2 show that the LEU2 5'-sequences which are cognate to leucine are not found in LEU1; and three blocks of nucleotide sequence homology between LEU1 and LEU2 occur in the 330 nucleotides upstream of the respective start codons.

Amino Acid Sequence

Rat urate oxidase: cloning and structural analysis of the gene and 5'-flanking region.

The structural gene (UOX) encoding rat urate oxidase (UOX) spans at least 23 kb and is composed of eight exons and seven introns. All of the exon-intron splice junction sequences conformed to the GT/AG consensus established for eukaryotic genes. The transcription start point (tsp) was determined using S1-type nuclease protection riboprobe, and assigned to an adenine 54 nucleotides (nt) upstream of the ATG start codon. A 456-bp 5'-terminal fragment, starting at the ATG codon, carries a putative TATA (ATAAAA) sequence at -32, and two putative 'CAAT box' sequences at -62 and -71 bp upstream from the tsp. No sequence resembling 'GC' box hexanucleotides (GGGCGG or CCGCCC) was found. The structural features of the 5'-flanking region of the UOX gene are distinct from the 5'-flanking sequences of peroxisomal beta-oxidation system genes which contain one or more 'GC' box elements but lack TATA- and CAAT-like features [Osumi et al., J. Biol. Chem. 262 (1987) 8138-8143; Ishii et al., J. Biol. Chem. 262 (1987) 8144-8150]. The 5'-flanking region of the UOX gene reveals a sequence, TTAGTAATT at nt -276 from the tsp, which appears to be complementary to the underlined part of the liver-specific LF-B1/HNF-1 consensus sequence, GTTAATNATTAAC (where N = A, C, T, G or no nt).

Amino Acid Sequence

Effects of deletions in the N-terminal basic arm of brome mosaic virus coat protein on RNA packaging and systemic infection.

The first 25 amino acids of brome mosaic virus (BMV) coat protein include 8 basic and no acidic residues and are implicated in binding the encapsidated RNA. Using infectious transcripts from BMV RNA3 cDNA clones, we modified this region of the coat gene. A coat protein mutant with the first 25 amino acids deleted failed to direct either packaging of viral RNA in protoplasts or systemic infection of whole barley plants. Neither symptoms, virions, nor viral RNA was detectable in plants inoculated with this mutant or a mutant with a frameshift mutation in the coat gene. Mutants with the normal start codon changed to AAG or with the first eight codons deleted allowed translation to start at a downstream AUG, resulting in a deletion of the first 7 amino acids of the mature wild-type coat protein. These mutants not only packaged viral RNA in protoplasts but directed symptomatic, systemic infections that developed with normal speed and degree of spread within the host. The AUG-to-AAG point substitution did not revert to the wild type after long-term culture in planta. Wild-type BMV virions were also found to contain small amounts of a protein that coelectrophoresed with the truncated coat protein produced by the viable AAG and eight-codon-deletion mutants. This minor coat protein species presumably arose by infrequent translation initiation at the second AUG in the wild-type coat protein gene. Absence of encapsidation-competent coat protein appeared to stimulate production of nonstructural proteins in protoplast infections.

Amino Acid Sequence

The beta-lactam biosynthesis genes for isopenicillin N epimerase and deacetoxycephalosporin C synthetase are expressed from a single transcript in Streptomyces clavuligerus.

Isopenicillin N isomerase (epimerase) has been purified from Streptomyces clavuligerus, and the amino acid sequence of the N-terminus has been determined. By using single oligonucleotide probes based on high GC codon bias ("guessmers"), the translation start codons were determined for two successive genes in the beta-lactam-biosynthetic pathway and mapped within a 3.6-kilobase-pair KpnI restriction fragment. The epimerase gene (cefD) was located immediately upstream of the deacetoxycephalosporin C synthetase (expandase) gene (cefE) that was characterized previously. cefD was sequenced and expressed in Escherichia coli; the resulting cell extracts contained epimerase activity. Western immunoblots demonstrated that a protein comigrated with purified S. clavuligerus epimerase at 44 kilodaltons. cefD and cefE were separated by an 81-base-pair segment. The DNA sequence upstream of the epimerase gene had a high AT content, suggestive of a promoter region. Primer extension analysis of S. clavuligerus mRNA showed that the start of transcription occurred approximately 130 base pairs upstream of the epimerase translation start site; Northern (RNA blot) analysis revealed a hybridization signal large enough to code for both epimerase and expandase, and nuclease S1 protection assays showed that a single message may code for epimerase, expandase, and another unknown protein. When cefD and cefE were placed in an expression vector, concomitant synthesis of both epimerase and expandase occurred in E. coli.

Amino Acid Isomerases

The lethal lambda S gene encodes its own inhibitor.

The 107 codon reading frame of the lambda lysis gene S begins with the codon sequence Met1-Lys2-Met3..., and it has been demonstrated in vitro that both Met codons are used for translational starts. Furthermore, the partition of initiation events at the two start codons strongly affects the scheduling of lysis. We have presented a model in which the longer product, S107, acts as an inhibitor of the shorter product, S105, the lethal lysis effector, despite the fact that the two molecules differ only in the Met-Lys residues at the amino terminus of S107. Using immunological and biochemical methods, we show in this report that the two predicted protein products, S105 and S107, are detectable in vivo as stable, membrane-bound molecules. We show that S107 acts as an inhibitor in trans, and that its inhibitory function is entirely defined by the positively charged Lys2 residue. Moreover, our data show that energy poisons abolish the inhibitory function of S107 and simultaneously convert S107 into a lysis effector. We propose a two step model for the lethal action of gene S: first, induction of the S gene results in the accumulation of S105 and S107 molecules in mixed oligomeric patches in the cytoplasmic membrane; second, S monomers rearrange by lateral diffusion within the patch to form an aqueous pore. The R gene product, a transglycosylase, is released through the pore to the periplasm, resulting in destruction of the peptidoglycan and bursting of the cell. According to this model, the lateral diffusion step is inhibited by the energized state of the membrane.(ABSTRACT TRUNCATED AT 250 WORDS)

Alleles

Cloning and characterization of the aldA gene of Aspergillus nidulans.

We have cloned and sequenced the aldA (encoding aldehyde dehydrogenase) gene of Aspergillus nidulans. The gene contains two introns which are similar in size and structure to other fungal introns. The amino acid sequence of aldehyde dehydrogenase (497 residues) shows a significant level of homology with analogous sequences in other organisms. Comparison of the primary structure of the active sites of the mammalian cytosolic and mitochondrial enzymes shows that the Aspergillus enzyme closely resembles the mammalian mitochondrial enzyme. Analysis of the 5' non-coding region of the aldA gene shows a TATA-like sequence located 90 bp upstream from the initiation codon. Two messenger-RNA start points are located 36 and 42 bp upstream from the start codon.

Aldehyde Dehydrogenase

Molecular characterization of a host-range-determining locus from Agrobacterium tumefaciens.

The virulence loci play an essential role in tumor formation by Agrobacterium tumefaciens. This study focused on the virC locus, which affects the host range Agrobacterium species. virC mutants display an attenuated or avirulent phenotype on certain host plants, but remain fully virulent on other plant hosts. The nucleotide sequence revealed that the virC locus of pTiA6NC is an operon consisting of two open reading frames. These two open reading frames, designated virC1 and virC2, encode protein products of 25,713 and 22,710 daltons, respectively, which were visualized by polyacrylamide gel electrophoresis. Only two nucleotides separated the stop codon for virC1 from the start codon for virC2, indicating that these genes may be translationally coupled.

Arginine

Yeast translation initiation suppressor sui2 encodes the alpha subunit of eukaryotic initiation factor 2 and shares sequence identity with the human alpha subunit.

Genetic reversion of HIS4 initiator codon mutations in yeast has identified three unlinked genes, sui1, sui2, and SUI3 (suppressors of initiator codon mutations), which when mutated confer the ability to initiate translation at HIS4 despite the absence of an AUG start codon. We have previously demonstrated that the SUI3 gene encodes the beta subunit of the eukaryotic initiation factor 2 (eIF-2) and that mutations at a Zn(II) finger motif of SUI3 alter the start site selection process in yeast. In this report, molecular and biochemical characterizations show that the sui2 suppressor gene encodes the alpha subunit of eIF-2. The amino acid sequence of sui2 is 58% homologous to that encoded by the cDNA of the human eIF-2 alpha. Mutations in the sui2 suppressor alleles occur in the amino-terminal portion of the protein and change amino acids that are identical at the same relative position in the yeast and human proteins. Protein sequence analysis shows that a sui2 mutant yeast strain allows initiation at a UUG codon in the absence of an AUG codon at HIS4. These data further suggest that eIF-2 is an important component of the preinitiation complex that mediates ribosomal recognition of a start codon during the scanning process.

Amino Acid Sequence

Structures of the promoter and operator of the glpD gene encoding aerobic sn-glycerol-3-phosphate dehydrogenase of Escherichia coli K-12.

The nucleotide sequence of a 690-base-pair DNA segment containing the control region for the glpD gene encoding aerobic sn-glycerol-3-phosphate dehydrogenase was determined. An ATG translation initiation codon with an adjacent ribosome-binding site was found which preceded an open reading frame continuing 61 codons to the end of the DNA that was sequenced. The start site for transcription, identified by using primer extension analysis, was located 42 base pairs upstream from the proposed Met start codon. The transcription start site was preceded by a region containing typical -10 and -35 sequences found in bacterial promoters. A binding site for the cyclic AMP-cyclic AMP receptor protein complex (identified by comparison with the consensus-binding sequence and verified by using DNase I footprinting) was located just upstream from the -35 sequence, centered at position -63. The interaction site for the glp repressor was identified by using DNase I footprinting. It consisted of a 49-base-pair region which started at the -10 sequence and continued to position +38. This region contained two directly repeated sequences, each possessing hyphenated dyad symmetry, which suggests that the operator is tandemly repeated. The presence of two adjacent operators may explain why expression of the glpD gene is the most sensitive to repressor when compared with expression of the other operons that are members of the glp regulon.

Aerobiosis

The bacteriophage T4 gene for the small subunit of ribonucleotide reductase contains an intron.

The bacteriophage T4 gene nrdB codes for the small subunit of the enzyme ribonucleotide reductase. The T4 nrdB gene was localized between 136.1 kb and 137.8 kb in the T4 genetic map according to the deduced structural homology of the protein to the amino acid sequence of its bacterial counterpart, the B2 subunit of Escherichia coli. This positions the C-terminal end of the T4 nrdB gene approximately 2 kb closer to the T4 gene 63 than earlier anticipated from genetic recombinational analyses. The most surprising feature of the T4 nrdB gene is the presence of an approximately 625 bp intron which divides the structural gene into two parts. This is the second example of a prokaryotic structural gene with an intron. The first prokaryotic intron was reported in the nearby td gene, coding for the bacteriophage T4-specific thymidylate synthase enzyme. The nucleotide sequence at the exon-intron junctions of the T4 nrdB gene is similar to that of the junctions of the T4 td gene: the anticipated exon-intron boundary at the donor site ends with a TAA stop codon and there is an ATG start codon at the putative downstream intron-exon boundary of the acceptor site. In the course of this work the denA gene of T4 (endonuclease II) was also located.

Amino Acid Sequence

Complete sequence of the Drosophila nonmuscle myosin heavy-chain transcript: conserved sequences in the myosin tail and differential splicing in the 5' untranslated sequence.

We have sequenced a cDNA that encodes the nonmuscle myosin heavy chain from Drosophila melanogaster. An alternatively spliced exon at the 5' end generates two distinct heavy-chain transcripts: the longer transcripts inserts an additional start codon upstream of the primary translation start site and encodes a myosin heavy chain with a 45-residue extension at its amino terminus. The remainder of the coding sequence reveals extensive homology with other conventional myosins, especially metazoan nonmuscle and smooth muscle myosin isoforms. Comparisons among available myosin heavy-chain sequences establish that characteristic differences in sequence throughout the length of both the globular myosin head and extended rod-like tail readily distinguish nonmuscle and smooth muscle myosins from striated muscle isoforms and predict a basis for their functional diversity.

Amino Acid Sequence

Nucleotide sequence of sporulation locus spoIIA in Bacillus subtilis.

We have determined a sequence of 2073 bp from two recombinant plasmids carrying the whole spoIIA locus from Bacillus subtilis, the expression of which is required for spore formation. The sequence contains three long open reading frames (ORFs), each of them being preceded by a ribosome binding site. These three putative proteins (mol. wts 13100, 16300 and 22200) are likely to be expressed and are probably encoded on the same mRNA. The stop codon of ORF1 overlaps with the start codon of ORF2 suggesting that there might be translational coupling between the two ORFs. Although some known promoter sequences were found, the only one upstream from the first open reading frame is about 260 bp from it.

Bacillus subtilis

Codon replacement in the PGK1 gene of Saccharomyces cerevisiae: experimental approach to study the role of biased codon usage in gene expression.

The coding sequences of genes in the yeast Saccharomyces cerevisiae show a preference for 25 of the 61 possible coding triplets. The degree of this biased codon usage in each gene is positively correlated to its expression level. Highly expressed genes use these 25 major codons almost exclusively. As an experimental approach to studying biased codon usage and its possible role in modulating gene expression, systematic codon replacements were carried out in the highly expressed PGK1 gene. The expression of phosphoglycerate kinase (PGK) was studied both on a high-copy-number plasmid and as a single copy gene integrated into the chromosome. Replacing an increasing number (up to 39% of all codons) of major codons with synonymous minor ones at the 5' end of the coding sequence caused a dramatic decline of the expression level. The PGK protein levels dropped 10-fold. The steady-state mRNA levels also declined, but to a lesser extent (threefold). Our data indicate that this reduction in mRNA levels was due to destabilization caused by impaired translation elongation at the minor codons. By preventing translation of the PGK mRNAs by the introduction of a stop codon 3' and adjacent to the start codon, the steady-state mRNA levels decreased dramatically. We conclude that efficient mRNA translation is required for maintaining mRNA stability in S. cerevisiae. These findings have important implications for the study of the expression of heterologous genes in yeast cells.

Amino Acid Sequence