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Biomedical subjects

K Sakaguchi

Publications and source records attributed to K Sakaguchi.

At least 487 records · Page 27Linked to original sources

Studies on the cutaneous sensitization reaction of guinea pigs to purified aromatic chemicals.

The sensitization reactions to purified cinnamic aldehyde and its chemically related substances were investigated using the maximization test on guinea pigs. Mutual cross-sensitivities were also examined. Cinnamic aldehyde was found to be the most potent sensitizer in this series, and a strong cross-sensitizer. From the chemical structures of these substances, the following speculations were made. There was a tendency that as the number of hydrocarbons of alkyl groups replacing the alpha-hydrogen in the molecule increased, the rate of sensitization reaction declined. The conjugated system of double bonds was suspected to be a determinant factor in relation to the sensitization ability of the substances in this series.

Aldehydes↗

Thermophilic polynucleotide phosphorylase from Thermus thermophilus. Purification and properties of an altered form of enzyme which lacks phosphorolytic activity to polynycleotide.

A thermophilic polynucleotide phosphorylase lacking polynucleotide phosphoryltic activity was purified from Thermus thermophilus HB-8 strain. The enzyme is an altered form of the native polynucleotide phosphorylase, probably attacked by the proteinase(s) of this extreme thermophile during the purification process. This modified enzyme lacks phosphorolytic activity to poly(A) while retaining weak activity to phosphorolyse tetranucleotides or hexanucleotides. The purified enzyme was shown to be homogenous by electrophoretic analysis in polyacrylamide gel. This enzyme had a molecular weight of 190 000 as calculated both from electrophoresis on polyacrylamide gel and from the Stoke's radius derived from the gel filtration pattern and the sedimentation coefficient. The enzyme was separated into three polypeptide chains by polyacrylamide gel electrophoresis in the presence of sodium dodecylsulphate; their molecular weights were calculated to be 92000, 73000 and 35000. The enzyme was thermophilic and thermotolerant, exhibiting its maximal activity at 70 degrees C. The four ribonucleoside diphosphates (ADP, GDP, UDP and CDP) were polymerized to the extent of 7-S size.

Drug Stability↗

An efficient synthesis of polyguanylic acid by a thermophilic polynucleotide phosphorylase.

Polyguanylic acid (poly(G)) was synthesized from GDP in a yield of 60-75% by Thermus thermophilus polynucleotide phosphorylase (polyribonucleotide: orthophosphate nucleotidyltransferase, EC 2.7.7.8) at 70 degrees C, pH 8.5 in the presence of Mg2+. The yield was dependent on the ratio of GDP to Mg2+, but was independent of the concentrations of enzyme or substrate. The maximal rate of GDP polymerization was obtained when the ratio of GDP to Mg2+ was 3:1. However, by prolonged incubation, the higher initial ratio of over 4:1 was preferred because of the rapid consumption of GDP in the reaction mixture. Poly(G) prepared by 1 h incubation was heterogeneous in size from 5 S to over 23 S, but by prolonged incubation of 19 h the size of product converged to 9 S as judged by sucrose density gradient centrifugation. Its chain length was determined by terminal nucleoside analysis to be 200 nucleotides long.

Bacteria↗

Control of tryptophan synthetase amplified by varying the numbers of composite plasmids in Escherichia coli cells.

Using pSC101, RSF1010, RSF2124 and RP4 plasmids as vectors and bacteriophage lambdatrpD-A60-3 DNA as a source of the Escherichia coli whole tryptophan operon, composite plasmids of pSC101-trp, RSF1010-trp, RSF2124-trp and RP4-trp were constructed in vitro with EcoRI restriction endonuclease and DNA ligase. Each composite plasmid could be maintained stably in E. coli cells. The copy number of pSC101-trp, RSF1010-trp, RSF2124-trp and RP4-trp were 4.2, 11.2, 11.9 and 1.6 per chromosome respectively. The tryptophan synthetase activities in cells containing pSC101-trp, RSF1010-trp, RSF2124-trp aand RP4-trp plasmid were found to be 2.1, 6.0, 5.0 and 2.5 times compared with the level in chromosomal trp+ cells when they were grown in a minimal medium. By partial derepression with indolylacrylic acid, the enzyme levels were elevated to 10.1, 16.3, 15.3, 12.3 times, respectively, that of the control cells. The tryptophan synthetase activities did not increase in proportion to the copy number of the plasmids, but were strongly affected by the repression system of host cells.

DNA Replication↗

Isolation and characterization of four plasmids from Bacillus subtilis.

Nineteen Bacillus subtilis isolates obtained from type culture collections were examined for the presence of covalently closed circular duplex deoxyribonucleic acid molecules by the technique of cesium chloride-ethidium bromide density gradient centrifugation. Four of the 19 strains tested carried covalently closed circular molecules. Two of these strains (IFO3022, IFO3215) harbored a similar plasmid with a molecular weight of 5.4 X 10(6). The other two strains (IAM1232, IAM1261) carried 4.9 C 10(6)-and 5.3 X 10(6)-dalton plasmids, respectively. These plasmid-harboring strains did not show phenotypic traits such as antibiotic resistance orbacteriocin production. The plasmid deoxyribonucleic acids were digested by three restriction endonucleases, EcoRI, HindIII, and BamNI, and were classified into three different types from their electrophoretic patterns in agarose gels.

Anti-Bacterial Agents↗

Chemical and physical properties of peptidoglutaminase I and II from Bacillus circulans.

Some chemical and physical properties of Peptidoglutaminase I and II have been determined. For example, molecular weight, isoelectric point, intrinsic viscosity, partial specific volume, sedimentation and diffusion coefficient were 89 000 and 105 000, pH = 4.1 and 4.0, 0.042 and 0.065 dl/g, 0.733 and 0.728 ml/g, 5.85 and 5.3 S, 5.32 and 4.57-10(-7) cm2-s-1, respectively. Their amino acid compositions were also determined. Between them, peptidoglutaminanse II was a glycoprotein containing 2 mol of galactose and 11 mol of glucosamine per mol of enzyme. Both enzyme molecules were composed of two subunits with an equal molecular weight. N-terminal amino acids for peptidoglutaminase I were phenylalanine and valine, and leucine for peptidoglutaminase II. Both proteins were immunologically different from each other.

Amidohydrolases↗

Enzymatic synthesis of oligonucleotides of defined sequence. The "single addition" of 2(3)-O-dihydrocinnamoyl-nucleoside 5'-diphosphate to a primer oligonucleotide catalyzed by a thermophilic polynucleotide phosphorylase.

Several oligonucleotides of defined sequence were synthesized using 2'(3')-O-dihydrocinnamoyl-nucleoside 5'-diphosphates (DHC-NDP) as substrates for polynucleotide phosphorylase [EC 2.7.7.8] from Thermus thermophilus. The enzyme catalyzed the transfer of one nucleotidyl residue from each of the 2'(3')-O-dihydrocinnamoyl esters of CDP, UDP, and GDP to the 3'-terminus of the primer triadenosine diphosphate, (Ap)2A. The products were shown to be (Ap)3C, (Ap)3U, and (Ap)3G by enzymatic analysis.

Adenine Nucleotides↗

Classification of micrococci on the basis of deoxyribonucleic acid homology.

The DNA homology relationships of 25 micrococci (15 strains of Micrococcus, eight strains of Sarcina and two strains of Staphylococcus) were studied by the deoxyribonucleic acid hybridization method using nuclease S1, an endonuclease specific for single-stranded DNA molecules. Nineteen of the strains were classified into three groups. Group I contained Micrococcus lysodeikticus IAMI056, M. luteus IAMI1010, M. flavus IAMI2005 and IAMI2006, Sarcina flava IAMI2007 and IAMI1006. S. subflava IAMI2009, S. lutea ATCC381, and ATCC382, and M. luteus IAMI1006. Group II contained M. roseus IAMI315, ATCC412, ATCC185 and IAMI295. Group III contained S. lutea IAMI099, IFO3232 and ATCC383, M. varians ATCC399 and Staphylococcus lactis ATCC15306. Micrococcus luteus IAMI097, M. varians ATCC19099 and ATCC19100, M. conglomeratus IAMI459 and IAMI470, and St. aureus IAMI011 could not be assigned to any of the three groups. The grouping corresponds to that derived from the results of differential lysis by lysozyme, 'lytic enzyme 2' from Cytophaga sp., or Streptomyces albus G enzyme; and to types of peptidoglycan in the cell walls and genetic transformation. The usefulness of classification based on sensitivity to various lytic enzymes was demonstrated. Group I probably coincides with M. luteus of Bergey's Manual of Determinative Bacteriology (1974), and groups II and III with M. roseus and M. varians respectively.

DNA, Bacterial↗

Mode of action of bredinin with guanylic acid on L5178Y mouse leukemia cells.

Moderate concentrations of bredinin (1.2 X 10(-5) M) strongly inhibited growth of L5178Y cells, with the effect being reversed by guanylic acid (GMP). However, at higher concentrations of breeding the inhibition was not reversed completely by GMP added in excess. Bredinin was cytocidal at concentrations above 2 X 10(-5) M, but 5 X 10(-5) M bredinin in the presence of excess GMP, bredinin was cytostatic. Bredinin inhibited nucleic acid synthesis of L5178Y cells, but bredinin itself was not incorporated into the nucleic acid. Inhibition of nucleic acid synthesis was clearly reversed by GMP. Similarly chromosomal aberrations in L5178Y cells caused by bredinin were reversed by GMP. In contrast, the effect of ahigh concentration of bredinin on cell multiplication was not reversed by GMP. The modal volume of L5178Y cells increased during incubation in the presence of bredinin and GMP for 24 hours, 5 X 10(-5) M bredinin with GMP causing a 70% increase in cell volume. This increase in cell volume was mainly due to an increase in the protein content of the cells. The cytostatic effect of bredinin with GMP was reversed completely by adenosine-3',5'-cyclic monophosphate (cyclic AMP). Other cyclic nucleotides and nucleotides were ineffective. The reversing effect of cyclic AMP on cell survival depended upon the concentration of GMP, and was not seen in the absence of GMP. It was concluded that cyclic AMP influences the secondary cytostatic effect of bredinin, and not the primary cytotoxic effect reversed by GMP.

Animals↗

Novel monofunctional substrates of polynucleotide phosphorylase. The "single-addition" of 2'(3')-O-dihydrocinnamoyl-nucleoside 5'-diphosphate to a primer oligonucleotide.

A method was developed for stepwise wynthesis of oligonucleotides of difined wequence using 2'(3')-O-dihydrocinnamoyl-nucleoside 5'-diphosphates as substrates for polynucleotide phosphorylase [ED 2.7.7.8]. Polynucleotide phosphorylase from Thermus thermophilus catalyzed the transfer of one 2'(3')-blocked ADP to the 3'-terminus of the primer trinucleoside diphosphate, ApApA. The product was 2'(3')-substituted triadenylyladenosine. The blocking group, dihydrocinnamoyl, could be removed completely from the product without destruction of the phosphodiester bond using alpha-chymotrypsin [ED 3.4.21.1] at neutral pH.

Bacteria↗

Effect of bredinin and its aglycone on L5178Y cells.

The aglycone of the nucleoside antibiotic, bredinin, was as strongly cytotoxic to L5178Y cells as bredinin. The cytotoxic properties of the aglycone were very similar to those of bredinin and the minimum inhibitory concentrations of both were 10(-5)M. The growth inhibitory effects of both agents regardless of their concentrations, were reversed by guanylic acid, guanosine or guanine. However, on increasing the concentrations of these agents, the reversing effect of guanylic acid decreased gradually, the dose-response curves for the two agents being similar. Both agents inhibited the incorporation of thymidine and uridine, but not leucine into macromolecules in L5178Y cells and their inhibitory effects were reversed to similar extents by guanylic acid. On the other hand, the growth inhibitory effect of the aglycone on L5178Y cells was prevented by adenine only, though not be adenosine or adenylic acid while the effect of bredinin was not prevented by adenine. These results suggest that the aglycone itself does not inhibit growth, but that its effect is due to its conversion to bredinin by an enzyme such as adenine phosphoribosyl transferase. For recovery of growth, three moles of adenine were required per mole of the aglycone. When the aglycone was administered orally to rats, bredinin was administered orally to rats, bredinin was recovered in their serum and urine.

Adenine↗