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Biomedical subjects

S Hongo

Publications and source records attributed to S Hongo.

32 records · Page 2Linked to original sources

The functions of oligosaccharide chains associated with influenza C viral glycoproteins. II. The role of carbohydrates in the antigenic properties of influenza C viral glycoproteins.

The antigenic properties of influenza C viral glycoprotein gp88 were compared with those of its nonglycosylated counterpart T76 synthesized in infected cells treated with tunicamycin. Radioimmunoprecipitation experiments with three different monoclonal antibodies against gp88 revealed that an antibody designated Q-5 precipitated gp88 but not T76, indicating the requirement for glycosylation for the binding of this antibody to gp88. It is unlikely, however, that the antigenic determinant recognized by Q-5 is carbohydrate moiety since the ability of the antibody to bind to gp88 varied depending on the virus strain, and trypsin-treatment of gp88 eliminated its reactivity with Q-5. Gel electrophoretic analysis under nonreducing conditions showed that T76 underwent the formation of disulfide-linked multimers in the absence of reducing agent while gp88 behaved as monomers, suggesting that glycosylation is required for gp88 molecules to attain an appropriate conformation. These observations, altogether, suggests that glycosylation is important in determining the immunological specificity of gp88 presumably by influencing the folding of this glycoprotein.

Amnion

Identity of rat liver mitochondrial asparagine-pyruvate transaminase with phenylalanine-pyruvate transaminase.

Identification of rat liver mitochondrial asparagine-pyruvate transaminase with phenylalanine-pyruvate transaminase has been done. When a mitochondria extract was subjected to isoelectric focusing, the two enzyme activities were identically focused. This procedure and DEAE-Sepharose chromatography revealed multiple forms of the enzyme, in which the main form was purified. In the various purification steps the two enzyme activities appeared in the same fraction. The enzyme of the final preparation step gave a single band in polyacrylamide gel electrophoresis in the presence and absence of sodium dodecyl sulfate. During the purification, a similar increase of the specific activity and yield were obtained in the two activities. Phenylalanine was found to be a competitive inhibitor of asparagine transaminase. These results suggest the identity of the two enzymes.

Animals

Kinetic studies of asparagine synthetase from rat liver: role of Mg2+ in enzyme catalysis.

The kinetic mechanism of asparagine synthetase from rat liver has been studied. The mechanism of the reaction in the presence of high concentrations of total Mg2+ (50 mM) was suggested to be a uni-uni-bi-ter ping-pong-type without abortive complexes; glutamine binds first followed by glutamate release, and aspartate and ATP bind in order followed by ordered release of PPi, AMP, and asparagine. But, it is indicated that in the presence of 0.5-2.0 mM excess Mg2+ over ATP the binding of substrates after the release of glutamate is in a rapid equilibrium system such as ordered Mg2+ and random aspartate-MgATP. Mg2+ was demonstrated to have two roles in the catalysis; to modify the enzyme and to form a complex of MgATP.

Adenosine Triphosphate

Effects of glycosylation on the conformation and antigenicity of influenza C viral glycoproteins.

The antigenicity of influenza C viral glycoprotein gp88 was compared with that of its non-glycosylated counterpart T76 by immunoprecipitation utilizing monoclonal antibodies against gp88. Of the three monoclonal antibodies tested, an antibody designated Q-5 was found to precipitate gp88 but not T76, indicating the requirement for glycosylation for the binding of Q-5 to gp88. However, the antigenic determination recognized by Q-5 did not appear to be carbohydrates since trypsin-treatment of gp88 eliminated its reactivity with this antibody. These results suggest that glycosylation is important in determining the antigenicity of gp88 presumably by influencing the folding of the glycoproteins.

Antibodies, Monoclonal

The atelectatic ear and its classification.

Atelectasis of the middle ear cavity occurs in advanced chronic otitis media with effusion. Atelectasis with effusion may progress to atelectasis without effusion, and further possible complications include adhesive otitis, ossicular disruption, cholesteatoma, and sensorineural hearing loss. A classification is presented of the various sequelae of otitis media with effusion under the basic concept of the atelectatic ear because most of the sequelae observed had developed through the atelectatic ear. This classification depends on localization of the main pathology, i.e. the tympanic membrane, middle ear or inner ear.

Adolescent

Inhibition of rat liver asparagine synthetase by Cibacron Blue F3GA.

Cibacron Blue F3GA, a blue chromophore of Blue Dextran, inhibited the activity of rat liver asparagine synthetase uncompetitively with respect to glutamine (Kii = 7.8 mumol/l), competitively with respect to aspartate (Kis = 3.1 mumol/l) and noncompetitively with respect to ATP (Kii and Kis = 5.0 mumol/l). The inhibitions were linear against the dye concentrations. These results are compatible with the postulate that asparagine synthetase reaction proceeds through a ping pong mechanism in which glutamine is bound first, followed by glutamate release, and then aspartate and ATP is bound in order. The experiments demonstrate that the dye could be useful in analyzing the kinetic mechanism of asparagine synthetase.

Adenosine Triphosphate

Some molecular properties of asparagine synthetase from rat liver.

Asparagine synthetase purified from rat liver reveals two species (slower migrating band I and faster migrating band II) when subjected to polyacrylamide gel electrophoresis under nondenaturing conditions (S. Hongo and T. Sato (1981) Anal. Biochem. 114, 163-166). We have investigated some molecular properties of these species. Elution of band I from the gel and re-electrophoresis showed that band I yielded band II similar to that of the initial run. Peptide maps by limited proteolysis were very similar and amino acid compositions were also alike in the two species. L-Lysine was identified as the sole NH2-terminal amino acid in both the species. By cross-linking experiments the enzyme was shown to be a dimeric protein. When the purified enzyme was subjected to isoelectric focusing the enzyme activity and protein focused at pH 6.0 in a single peak. These results demonstrate that rat liver asparagine synthetase is composed of two identical subunits. The enzyme, inactivated by storage at -20 degrees C for about 3 months, showed aggregated forms in polyacrylamide gel electrophoresis, and was reactivated markedly by the addition of dithiothreitol.

Animals

Effect of dietary protein content on the activity of rat liver asparagine synthetase.

The activity of rat liver asparagine synthetase [EC 6.3.1.1]increased when animals maintained on 25% protein diet were placed on 15% or 6% protein diet. The enzyme activity level rose within one day, reached a maximum in 7 or 10 days after switching the diet and thereafter dropped gradually. During the purification of the enzyme from rats on 25% or 6% protein diet, the yield and increase of the specific activity were similar in the two groups. Combination of the liver extracts from two such groups demonstrated that the amount of endogeneous inhibitors of the enzyme did not change on replacing the diet. The elevation of the enzyme activity in rats fed 6% casein diet was suppressed by an injection of cycloheximide or actinomycin D. It is suggested that the change in the enzyme activity was due to alteration of the amount of the enzyme.

Animals

Purification and properties of asparagine synthetase from rat liver.

Asparagine synthetase (L-aspartate:ammonia ligase (AMP-forming, EC 6.3.1.1) activity in rat liver increased when the animals were put on a low casein diet. The enzyme was purified about 280-fold from the supernatant of rat liver homogenate by a procedure comprising ammonium sulfate fractionation. DEAE-Sepharose column chromatography, and Sephadex G-100 gel filtration. The optimal pH of the enzyme was in the range 7.4-7.6 with glutamine as an amide donor. The molecular weight was estimated to be approximately 110,000 by gel filtration. Chloride ion was required for the enzyme activity. The apparent Km values for L-aspartate, L-glutamine, ammonium chloride, ATP, and Cl- were calculated to be 0.76, 4.3, 10, 0.14, and 1.7 mM, respectively. The activity was inhibited by L-asparagine, nucleoside triphosphates except ATP, and sulfhydryl reagents. It has been observed that the properties of asparagine synthetase from rat liver are not so different from those of tumors such as Novikoff hepatoma and RADA 1.

Amino Acids