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S Udaka

Publications and source records attributed to S Udaka.

At least 91 records · Page 5Linked to original sources

Multiple and tandemly arranged promoters of the cell wall protein gene operon in Bacillus brevis 47.

The genes encoding the major cell wall proteins, middle wall protein and outer wall protein, of Bacillus brevis 47 constitute a cotranscriptional unit (cwp [cell wall protein gene] operon). Primer extension assay of cwp operon transcripts showed the existence of six different 5' ends. This confirmed the results of the previous S1 nuclease protection assay and suggested the existence of several tandemly arranged promoters in the 5' region of the cwp operon. Promoter probe vectors carrying the Bacillus licheniformis alpha-amylase gene were constructed and used for deletion analysis of the 5' region. Three (P1, P2, and P3) of the six suggested promoters were shown to be located within three distinct fragments derived from the 5' region. The -35 and -10 regions of the P1 and P3 promoters resemble the consensus sequence recognized by the sigma-43-type RNA polymerase of Bacillus subtilis. The P2 promoter resembles only the consensus sequence in the -10 region. The P1 and P3 promoters were used to the same extents in Bacillus subtilis as in B. brevis, whereas the P2 promoter was used much less frequently in B. subtilis than in B. brevis. The P2 promoter is used constitutively in B. brevis 47 at all stages of growth, whereas P3 is used only at the exponential phase of growth. P2 could be a promoter of an unknown type that is preferentially used in B. brevis and might be responsible for the constitutive synthesis and secretion of the cell wall proteins into the medium at the stationary phase of growth.

Amino Acid Sequence↗

Molecular cloning of a cDNA for alpha-subunit of rat liver electron transfer flavoprotein.

Two cDNA clones for the alpha-subunit of rat liver electron transfer flavoprotein were isolated and their nucleotide sequences were determined. The longer cDNA contained a protein-coding region of 900 nucleotides and 3'-noncoding region of 335 nucleotides. The identity of the clone was confirmed by matching the amino acid sequence predicted from the cDNA with the sequence of one of the lysyl endopeptidase-digested peptides from the purified alpha-subunit. The molecular weight of the protein calculated from the protein-coding nucleotides was approx. 3,000 daltons smaller than that of the precursor, suggesting that the cDNA was not of full length. The derived amino acid composition fairly agreed with the chemically determined amino acid composition of the purified alpha-subunit, indicating that the protein-coding region contains most of the mature alpha-subunit.

Amino Acid Sequence↗

Nucleotide sequence and expression in Escherichia coli of the gene coding for sphingomyelinase of Bacillus cereus.

Bacillus cereus secretes phospholipases C, which hydrolyze phosphatidylcholine, sphingomyelin and phosphatidylinositol. A 7.5-kb HindIII fragment of B. cereus DNA cloned into Escherichia coli, with pUC18 as a vector, directed the synthesis of the sphingomyelin-hydrolyzing phospholipase C, sphingomyelinase. Nucleotide sequence analysis of the subfragment revealed that it contained two open reading frames in tandem. The upstream truncated open reading frame corresponds to the carboxy-terminal portion of the phosphatidylcholine-hydrolyzing phospholipase C, and the downstream open reading frame to the entire translational portion of the sphingomyelinase. The two phospholipase C genes form a gene cluster. As inferred from the DNA sequence, the B. cereus sphingomyelinase has a signal peptide of 27 amino acid residues and the mature enzyme comprises 306 amino acid residues, with a molecular mass of 34233 Da. The signal peptide of the enzyme was found to be functional in protein transport across the membrane of E. coli. The enzymatic properties of the sphingomyelinase synthesized in E. coli resemble those of the donor strain sphingomyelinase. The enzymatic activity toward sphingomyelin was enhanced 20-30-fold in the presence of MgCl2, and the adsorption of the enzyme onto erythrocyte membranes was accelerated in the presence of CaCl2.

Amino Acid Sequence↗

Nucleotide sequence and expression in Escherichia coli of cDNA of swine pepsinogen: involvement of the amino-terminal portion of the activation peptide segment in restoration of the functional protein.

A clone, pSPcA2, which carries the full-length swine pepsinogen cDNA was isolated. The coding sequence comprised the signal peptide [15 amino acids (aa)], the activation peptide segment (44 aa) and mature pepsin (327 aa). The deduced amino acid sequence agrees with the published sequence with two exceptions. Asparagine instead of aspartate is present at aa positions 19 and 308. Two types of plasmids, pAS and pUCtacSPc series, were constructed for expressing swine pepsinogen cDNA. These plasmids directed the synthesis of polypeptides which were detected by employing an antibody to swine pepsinogen. However, all the polypeptides formed aggregates and showed no acid protease activity. Only the protein directed by pAS5 regained the acid protease activity after renaturation procedures. The activity was completely inhibited by pepstatin. Furthermore, the renatured pAS5 protein was spontaneously converted to pepsin under acidic conditions. The presence of Arg-8 in the activation peptide segment appears important for the stabilization of the pepsinogen molecule.

Amino Acid Sequence↗

Cloning and sequencing of the gene encoding thermophilic beta-amylase of Clostridium thermosulfurogenes.

A gene coding for thermophilic beta-amylase of Clostridium thermosulfurogenes was cloned into Bacillus subtilis, and its nucleotide sequence was determined. The nucleotide sequence suggested that the thermophilic beta-amylase is translated from monocistronic mRNA as a secretory precursor with a signal peptide of 32 amino acid residues. The deduced amino acid sequence of the mature beta-amylase contained 519 residues with a molecular weight of 57,167. The amino acid sequence of the C. thermosulfurogenes beta-amylase showed 54, 32, and 32% homology with those of the Bacillus polymyxa, soybean, and barley beta-amylases, respectively. Twelve well-conserved regions were found among the amino acid sequences of the four beta-amylases. To elucidate the mechanism rendering the C. thermosulfurogenes beta-amylase thermophilic, its amino acid sequence was compared with that of the B. polymyxa beta-amylase. The C. thermosulfurogenes beta-amyulase contained more Cys residues and fewer hydrophilic amino acid residues than the B. polymyxa beta-amylase did. Several regions were found in the amino acid sequence of the C. thermosulfurogenes beta-amylase, where the hydrophobicity was remarkably high as compared with that of the corresponding regions of the B. polymyxa beta-amylase.

Amino Acid Sequence↗

Characterization of the genes for the hexagonally arranged surface layer proteins in protein-producing Bacillus brevis 47: complete nucleotide sequence of the middle wall protein gene.

Bacillus brevis 47 contains two surface (S)-layer proteins, termed the outer wall protein (OWP) and the middle wall protein (MWP), which form a hexagonal array in the cell wall. The MWP and OWP genes are contained in the 9-kilobase-pair (kbp) BclI fragment and constitute an operon under coordinate control of their expression. The nucleotide sequence of a 3.8-kbp EcoRI-SacI fragment containing the entire MWP gene has been determined in this study. Together with the DNA sequence of the promoter region for the MWP-OWP gene operon (H. Yamagata, T. Adachi, A. Tsuboi, M. Takao, T. Sasaki, N. Tsukagoshi, and S. Udaka, J. Bacteriol. 169:1239-1245, 1987) and that of the OWP gene (A. Tsuboi, R. Uchihi, R. Tabata, Y. Takahashi, H. Hashiba, T. Sasaki, H. Yamagata, N. Tsukagoshi, and S. Udaka, J. Bacteriol. 168:365-373, 1986), the complete nucleotide sequence of the MWP-OWP gene operon has been determined. The MWP gene encodes a secretory precursor of the MWP, consisting of a total of 1,053 amino acid residues with a signal peptide of 23 amino acid residues at its amino-terminal end. Bacillus subtilis harboring the MWP gene synthesized an immunoreactive polypeptide with almost the same molecular weight as the authentic MWP, as judged by sodium dodecyl sulfate-polyacrylamide gel electrophoresis. The amino acid compositions deduced from the MWP and OWP genes were similar to the chemical amino acid compositions of other S-layer proteins in the predominance of acidic amino acids compared with basic amino acids and in the very low content of sulfur-containing amino acids. The acidic nature of the MWP and OWP was confirmed by isoelectric focusing on polyacrylamide gels. In addition, circular dichroism spectra indicated that the S-layer proteins in B. brevis 47 were composed of approximately 30% beta-sheet and 5% alpha-helical structures, with the remainder of the polypeptide backbone being aperiodic in nature.

Amino Acid Sequence↗

Cloning and characterization of the 5' region of the cell wall protein gene operon in Bacillus brevis 47.

Bacillus brevis 47 secretes vast amounts of proteins derived from both middle wall protein (MWP) and outer wall protein into the medium. The 5' region of the cell wall protein gene operon was cloned into Bacillus subtilis and subsequently into B. brevis 47. On the basis of the nucleotide sequence analysis, an open reading frame coding for MWP was identified on the cloned DNA fragment. Two potential translation initiation sites for the MWP gene are located tandemly in the same reading frame. Each of the sites contains a sequence highly homologous to the 3' end of B. brevis rRNA and an initiation codon. The translational fusion of the 5' region of the MWP gene with the Bacillus licheniformis alpha-amylase gene resulted in the efficient expression of the alpha-amylase gene in B. brevis 47. Of the two potential translation initiation sites, the one located upstream could be eliminated without affecting the expression of the MWP-alpha-amylase fusion gene, suggesting that MWP is synthesized in a precursor form with a signal peptide of 23 amino acid residues. S1 nuclease mapping of the cell wall protein gene transcripts suggested the possibility of the existence of several promoters in the 5' region within 300 base pairs from the translation initiation sites; one promoter was definitely localized within this part of the 5' region, and it was capable of expressing a heterologous gene fusion at a high level. The roles of the apparent structural complexity of the 5' region of the cell wall protein gene operon are discussed in connection with the efficient gene expression.

Amino Acid Sequence↗

Cloning and nucleotide sequence of the gene coding for enzymatically active fragments of the Bacillus polymyxa beta-amylase.

The gene encoding beta-amylase was cloned from Bacillus polymyxa 72 into Escherichia coli HB101 by inserting HindIII-generated DNA fragments into the HindIII site of pBR322. The 4.8-kilobase insert was shown to direct the synthesis of beta-amylase. A 1.8-kilobase AccI-AccI fragment of the donor strain DNA was sufficient for the beta-amylase synthesis. Homologous DNA was found by Southern blot analysis to be present only in B. polymyxa 72 and not in other bacteria such as E. coli or B. subtilis. B. polymyxa, as well as E. coli harboring the cloned DNA, was found to produce enzymatically active fragments of beta-amylases (70,000, 56,000, or 58,000, and 42,000 daltons), which were detected in situ by sodium dodecyl sulfate-polyacrylamide gel electrophoresis. Nucleotide sequence analysis of the cloned 3.1-kilobase DNA revealed that it contains one open reading frame of 2,808 nucleotides without a translational stop codon. The deduced amino acid sequence for these 2,808 nucleotides encoding a secretory precursor of the beta-amylase protein is 936 amino acids including a signal peptide of 33 or 35 residues at its amino-terminal end. The existence of a beta-amylase of larger than 100,000 daltons, which was predicted on the basis of the results of nucleotide sequence analysis of the gene, was confirmed by examining culture supernatants after various cultivation periods. It existed only transiently during cultivation, but the multiform beta-amylases described above existed for a long time. The large beta-amylase (approximately 160,000 daltons) existed for longer in the presence of a protease inhibitor such as chymostatin, suggesting that proteolytic cleavage is the cause of the formation of multiform beta-amylases.

Amino Acid Sequence↗

New streptothricin-group antibiotics, AN-201 I, II and III. II. Chemical structures.

The new, belonging to the streptothricin-group antibiotics AN-201 I, II and III were found to be produced by a soil actinomycete identified as Streptomyces nojiriensis C-13. The chemical structures and the physical and spectroscopic properties of these compounds are reported here. On the basis of NMR and fast atom bombardment mass spectrometry (FAB-MS) spectra the antibiotics were identified as N beta-acetylated derivatives of streptothricins E, D and F.

Aminoglycosides↗

Molecular cloning of cDNA for rat liver general acyl CoA dehydrogenase and homology between the rat liver and pig kidney enzymes.

cDNA clone for general acyl CoA dehydrogenase (GAD) was isolated from a rat liver cDNA expression library in lambda gt11 using anti-pig kidney GAD antibody. Size of the isolated cDNA was estimated to be 1.5-1.6 kb. By immunological analysis of fusion protein and epitope selection, the cDNA clone was identified as that containing the GAD gene. Partial amino acid sequence deduced from nucleotide sequence of the cDNA coincided with that of the pig kidney enzyme. The antibody cross-reacted with rat liver enzyme and molecular weights of these enzyme proteins were shown to be almost the same. All these results indicate that rat liver GAD shares a common structure with pig kidney enzyme.

Acyl-CoA Dehydrogenases↗

In vitro synthesis of pig kidney general acyl CoA dehydrogenase.

In vitro synthesis of general acyl CoA dehydrogenase [EC 1.3.99.3], one of the mitochondrial flavoenzymes, was carried out to elucidate its biosynthetic mechanism. Poly(A)+ RNA isolated from pig kidney was translated in vitro using wheat germ lysate system and the synthesized enzyme was immunoprecipitated by the antibody against purified pig kidney general acyl CoA dehydrogenase. The apparent molecular weight of the synthesized protein was estimated to be approximately 1,000 daltons larger than that of the mature enzyme, indicating that general acyl CoA dehydrogenase in pig kidney is synthesized as a precursor with a larger molecular weight.

Acyl-CoA Dehydrogenase↗

Characterization of the genes coding for two major cell wall proteins from protein-producing Bacillus brevis 47: complete nucleotide sequence of the outer wall protein gene.

Bacillus brevis 47 contains two cell wall proteins termed the outer wall protein (OWP) and middle wall protein (MWP), each of which forms hexagonal arrays in the cell wall. A 6-kilobase BglII-BclI fragment of B. brevis 47 DNA cloned into Bacillus subtilis with a derivative of pHW1 as a vector directed the synthesis of a polypeptide, with almost the same molecular weight as the authentic OWP, as judged by sodium dodecyl sulfate-polyacrylamide gel electrophoresis, which was specifically recognized by the anti-OWP antibody. Nucleotide sequence analysis of the subfragment revealed that it contains two open reading frames in tandem. The upstream truncated open reading frame corresponds to the carboxy-terminal portion of the MWP, and the downstream open reading frame corresponds to the entire translational portion of the OWP. The latter encodes a secretory precursor of the OWP, consisting of a total of 1,004 amino acid residues with a signal peptide of 24 amino acid residues at its amino-terminal end. Futhermore, analysis of transcripts in B. brevis 47 suggests that the MWP and OWP genes, in that order, constitute a cotranscriptional unit and that the major promoter shared by the two genes is located upstream of the MWP gene.

Amino Acid Sequence↗

Translation of messenger RNA of pig kidney D-amino acid oxidase in a cell-free system.

In vitro synthesis of D-amino acid oxidase [D-amino acid: O2 oxidoreductase (deaminating), EC 1.4.3.3], one of the peroxisomal flavin enzymes, was performed using a rabbit reticulocyte lysate system in order to elucidate the biosynthetic pathway of the enzyme. The apparent molecular weight of the synthesized enzyme protein was the same as that of D-amino acid oxidase purified from pig kidney. On the other hand, the enzyme protein was not detectable when a wheat germ lysate system was used for the translation. Denaturation of pig kidney poly(A)+ RNA with methylmercury hydroxide prior to the translation was found to enhance the synthesis of the enzyme protein. These results suggest a tight conformational structure of the mRNA used.

Animals↗

Complete nucleotide sequence of a thermophilic alpha-amylase gene: homology between prokaryotic and eukaryotic alpha-amylases at the active sites.

The nucleotide sequence of a thermophilic, liquefying alpha-amylase gene cloned from B. stearothermophilus was determined. The NH2-terminal amino acid sequence analysis of the B. stearothermophilus alpha-amylase confirmed that the reading frame of the gene consisted of 1,644 base pairs (548 amino acids). The B. stearothermophilus alpha-amylase had a signal sequence of 34 amino acids, which was cleaved at exactly the same site in E. coli. The mature enzyme contained two cysteine residues, which might play an important role in maintenance of a stable protein conformation. Comparison of the amino acid sequence inferred from the B. stearothermophilus alpha-amylase gene with those inferred from other bacterial liquefying alpha-amylase genes and with the amino acid sequences of eukaryotic alpha-amylases showed three homologous sequences in the enzymatically functional regions.

Amino Acid Sequence↗

Complete nucleotide sequence of a gene coding for heat- and pH-stable alpha-amylase of Bacillus licheniformis: comparison of the amino acid sequences of three bacterial liquefying alpha-amylases deduced from the DNA sequences.

The gene coding for the heat-stable and pH-stable alpha-amylase of Bacillus licheniformis 584 (ATCC 27811) was cloned in Escherichia coli and the nucleotide sequence of a DNA fragment of 1,948 base pairs containing the entire amylase gene was determined. As inferred from the DNA sequence, the B. licheniformis alpha-amylase had a signal peptide of 29 amino acid residues and the mature enzyme comprised 483 amino acid residues, giving a molecular weight of 55,200. The amino acid sequence of B. licheniformis alpha-amylase showed 65.4% and 80.3% homology with those of heat-stable Bacillus stearothermophilus alpha-amylase and relatively heat-unstable Bacillus amyloliquefaciens alpha-amylase, respectively. Nevertheless, several regions of the alpha-amylases appeared to be clearly distinct from one another when their hydropathy profiles were compared.

Amino Acid Sequence↗

A stable plasmid vector and control of its copy number in Bacillus brevis 47, a protein-producing bacterium.

A low-copy-number plasmid vector, pHY481, was constructed by combining a macrolide resistance gene of a Staphylococcus aureus plasmid with a cryptic plasmid found in a Bacillus brevis strain isolated from soil. The plasmid introduced into B. brevis 47, an extensively investigated protein-producing bacterium, was maintained very stably in the absence of selective antibiotics. A Bacillus megaterium alpha-amylase gene subcloned into pHY481 was retained much more stably in B. brevis 47 than one subcloned into a plasmid of S. aureus origin. B. brevis 47 mutants were also isolated in which the copy number of pHY481 was amplified about 10-fold. The copy number of pHY481 with the inserted amylase gene also increased in the mutants. As a result, a severalfold-higher amount of the enzyme was produced in the mutants compared with that produced in wild-type B. brevis 47. Thus, the plasmid vector constructed here and the copy-number mutants of B. brevis 47 are useful for cloning foreign genes and performing genetic engineering in the protein-producing bacterium.

Amylases↗

Efficient synthesis and secretion of a thermophilic alpha-amylase by protein-producing Bacillus brevis 47 carrying the Bacillus stearothermophilus amylase gene.

Bacillus subtilis and Bacillus brevis 47-5, carrying the Bacillus stearothermophilus alpha-amylase gene on pUB110 (pBAM101), synthesized the same alpha-amylase as the donor strain as determined by the enzyme's thermal stability and NH2-terminal amino acid sequence. Regardless of the host, the 34-amino acid signal peptide of the enzyme was processed at exactly the same site between two alanine residues. B. brevis 47-5(pBAM101) secreted the enzyme most efficiently of the hosts examined, 100, 15, and 5 times more than B. stearothermophilus, Escherichia coli HB101(pH1301), and B. subtilis 1A289(pBAM101), respectively. The efficient secretion of the enzyme in B. brevis 47-5(pBAM101) was suggested to be due to the unique properties of the cell wall of this organism.

Amino Acid Sequence↗

Cloning and expression of a thermophilic alpha-amylase gene from Bacillus stearothermophilus in Escherichia coli.

A 6.4 Kb HindIII fragment of Bacillus stearothermophilus DY-5 DNA cloned in Escherichia coli using pBR322 as a vector was shown to direct the synthesis of a thermophilic alpha-amylase. In attempts to reduce the size of the insert, the alpha-amylase gene was shown to be contained in a 3.1 Kb HindIII - BamHI fragment of the donor strain DNA. The alpha-amylase gene was stably maintained and expressed efficiently in E. coli. The enzymic properties of alpha-amylase produced in E. coli closely resembled those of the donor strain alpha-amylase and the temperature range for the maximal activity was from 65 degrees C to 80 degrees C. Nearly 100% of the activity remained after heating at 80 degrees C for 15 min. The alpha-amylase was shown to be accumulated in the periplasmic space. It was purified to a nearly homogenous protein with a molecular weight of 61,000, which was very similar in size to that produced by B. stearothermophilus DY-5.

Cloning, Molecular↗