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M Ujihara

Publications and source records attributed to M Ujihara.

53 records · Page 3Linked to original sources

Prostaglandin D2 formation and characterization of its synthetases in various tissues of adult rats.

When the amounts of primary prostaglandins formed from endogenous arachidonic acid were determined in homogenates of various tissues of adult rats, prostaglandin D2 was the major prostaglandin found in most tissues. It was formed actively in the spleen (3100 ng/g tissue/5 min at 25 degrees C), intestine (2600), bone marrow (2400), lung (1100), and stomach (630); moderately in the epididymis, skin, thymus, and brain (140-340); and weakly in other tissues (less than 100). Addition of exogenous arachidonic acid (1 mM) accelerated the formation of prostaglandin D2 in all tissues as follows: spleen (15,000); bone marrow, intestine, thymus, liver, and lung (1600-5200); stomach, adrenal gland, epididymis, brain, salivary gland, skin, spinal cord, and seminal vesicle (380-1000); and other tissues (80-310). The activity of prostaglandin D synthetase (prostaglandin-H2 D-isomerase) was detected in 100,000g supernatants of almost all tissues. As judged by glutathione requirement for the reaction, inhibition of the activity by 1-chloro-2,4-dinitrobenzene, and immunotitration or immunoabsorption analyses with specific antibodies, the enzyme in the epididymis, brain, and spinal cord (1.8-9.2 nmol/min/mg protein) was glutathione-independent prostaglandin D synthetase (Y. Urade, N. Fujimoto, and O. Hayaishi (1985) J. Biol. Chem. 260, 12410-12415). The enzyme in the spleen, thymus, bone marrow, intestine, skin, and stomach (2.0-57.1) was glutathione-requiring prostaglandin D synthetase (Y. Urade, N. Fujimoto, M. Ujihara, and O. Hayaishi (1987) J. Biol. Chem. 262, 3820-3825). The activity in the kidney and testis (3.7-4.5) was catalyzed by glutathione S-transferase. The activity in the liver, lung, adrenal gland, salivary gland, heart, pancreas, and muscle (0.6-5.1) was due to both the glutathione-requiring synthetase and the transferase.

Animals↗

Renotropic activity of lutropin: direct stimulation of DNA synthesis of cultured rat renal cortical cells.

Two differently purified ovine lutropin (LH) preparations were studied to see if they stimulated [3H] thymidine incorporation into cultured rat renal cortical cells. Both preparations showed a dose-dependent (0.11-1 ng/ml), time-dependent (peaking at 18 h), serum-dependent (7.5% of fetal calf serum or 10% castrated-hypo-physectomized rat serum) renotropic effect. Ovine TSH and FSH failed to mimic this specific, renotropic effect. We concluded that LH directly stimulates renal DNA synthesis in cooperation with other serum factor's.

Animals↗

Characterization and distribution of prostaglandin D synthetase in rat skin.

The biochemical properties and immunohistochemical localization of prostaglandin D synthetase were investigated in adult rat skin. The activity of prostaglandin D synthetase, which isomerizes prostaglandin H2 to prostaglandin D2, was detected in the 100,000 g supernatant of the homogenate of adult rat skin. Whole skin showed considerable activity (1.9 nmol/min/mg protein), and prostaglandin D2 was the major prostaglandin among those formed from prostaglandin H2 in the presence of glutathione. The epidermis, which was separated from whole skin by heating (55 degrees C, 30 s), exhibited about three times higher activity (3.5) than the dermis (1.0). The enzymatic properties of both layers were similar; they were absolutely glutathione-dependent, were inhibited only a few percent by 1 mM 1-chloro-2,4-dinitro-benzene, and were completely absorbed by anti-rat spleen prostaglandin D synthetase antibody. Immunohistochemical studies, using anti-rat spleen prostaglandin D synthetase antibody and the immunoperoxidase method, showed that prostaglandin D synthetase was localized in Langerhans cells (not in keratinocytes) in the epidermis, in macrophages or histiocytes, and also in mast cells in the dermis. Immunoelectron microscopy also supported these findings. These results suggest that prostaglandin D2 is one of the most important arachidonic acid metabolites and plays a significant role in immunological function in the skin via Langerhans cells and macrophages.

Animals↗

High serum progesterone in hyperthyroid men with Graves' disease.

We measured serum progesterone in five men with hyperthyroidism due to Graves' disease. All had elevated serum progesterone levels before treatment with an antithyroid drug, and their serum progesterone levels declined concomitantly with their serum thyroid levels during treatment. Progesterone enhances estrogen's stimulation of mammary gland growth, and our findings suggest that progesterone may play a role in the gynecomastia that occurs in men with hyperthyroidism.

Adult↗

Biochemical and immunological characterization of rat spleen prostaglandin D synthetase.

Rat spleen prostaglandin D synthetase (Christ-Hazelhof, E., and Nugteren, D. H. (1979) Biochim. Biophys. Acta 572, 43-51) is very similar to rat brain prostaglandin D synthetase (Urade, Y., Fujimoto, N., and Hayaishi O. (1985) J. Biol. Chem. 260, 12410-12415) as judged by their pI (4.7-5.2), Mr (26,000-27,000), and self-inactivation during the isomerase reaction from prostaglandin H2 to prostaglandin D2. However, the amino acid compositions of these two enzymes were quite different. Furthermore, the spleen enzyme was associated with the glutathione S-transferase activity, differing from the brain enzyme. The synthetase and transferase activities of the spleen enzyme showed almost identical pH and glutathione dependencies, the optimum pH = 8.0 and Km for glutathione = 300 microM. The Km values for prostaglandin H2 and 1-chloro-2,4-dinitrobenzene (a substrate for the transferase) were about 200 microM and 5 mM, respectively. The synthetase activity was dose-dependently inhibited by 1-chloro-2,4-dinitrobenzene (IC50: approximately 5 mM) and more strongly by nonsubstrate ligands, such as bilirubin and indocyanine green (IC50: 150 and 2 microM, respectively). Both the synthetase and transferase activities of the purified enzyme dose-dependently decreased and showed identical immunotitration curves by incubation with antibody against this enzyme, but remained unchanged when treated with antibody against the brain enzyme. The antibody specific for the spleen enzyme absorbed almost all of the synthetase activity and about 10% of the transferase activity in the spleen, but not the transferase activity in the liver, heart, and testis. These results show that the two types of prostaglandin D synthetase are similar but different enzymes and that the spleen enzyme is a unique glutathione S-transferase differing from other isozymes and their subunits reported previously.

Amino Acids↗

Inhibition of the proliferation of transformed epidermal cells in culture by various prostaglandins.

Cytotoxic action of various prostaglandins (PGs) was examined on the PAM 212 transformed mouse epidermal cell line, and delta 7-PGA1 was found most active. delta 7-PGA1 exerted a dose-dependent inhibition of PAM 212 cell growth over 0.1 microgram/ml (0.3 microM). At 1.6 microgram/ml (4.6 microM) growth was completely inhibited, and the number of viable cells decreased remarkably during culture. The concentration needed for 50% growth inhibition (IC50) value of delta 7-PGA1 on PAM 212 cell growth was calculated as 0.4 microgram/ml (1.1 microM). At this concentration, the DNA synthesis in 24- and 48-h cultured cells was decreased to a half of the level in the control cells, and microscopically, remaining cells showed degenerative changes with many vacuoles in their cytoplasm. Prostaglandin D2, a major PG in mast cells, also showed potent cytotoxic activity. However, this action was expressed as 9-deoxy-delta 9,12-13,14-dihydro-PGD2 (delta 12-PGJ2), which was converted from PGD2 in plasma, and had a 3-fold stronger growth inhibitory activity than PGD2; the IC50 values of PGD2 and delta 12-PGJ2 were 2 micrograms/ml (5.7 microM) and 0.75 microgram/ml (2.1 microM), respectively. Among other PGs tested, PGA2 showed a comparable growth inhibitory activity, and PGB2, PGE1, and PGE2 less but significant activity. Prostaglandin F2 alpha and PGI2 however, had no such effect on cell proliferation at 5 micrograms/ml (14.3 microM) concentration, suggesting that cyclopentenone structure is an essential moiety of PG derivatives for cell growth inhibition. This cytotoxic action of delta 7-PGA1 and delta 12-PGJ2 appears to be independent of cyclic-AMP, since these PGs were virtually inactive in raising intracellular cyclic-AMP levels in PAM 212 cells.

Animals↗

Purification and properties of prostaglandin H-E isomerase from the cytosol of human brain: identification as anionic forms of glutathione S-transferase.

Prostaglandin H-E isomerase (EC 5.3.99.3) was purified from human brain cytosol. Purification was by ammonium sulfate fractionation, diethylaminoethyl-Sepharose chromatography, gel filtration on a BioGel P-100 column, GSH-agarose chromatography, and MonoQ chromatography. The activity was eluted in two peaks from the MonoQ column, which were designated peaks 1 and 2. The molecular weights of peaks 1 and 2, determined by gel filtration, were 42,000 and 44,000, respectively. On sodium dodecyl sulfate-polyacrylamide gel electrophoresis, peak 1 showed two bands at the molecular weights of 24,500 and 25,000, and peak 2 showed a single band at the molecular weight of 25,000, results suggesting that both were dimeric proteins. The pI values of both enzymes were approximately 5.4. The enzymes catalyzed selective conversion of prostaglandin H2 to prostaglandin E2. The Km values for prostaglandin H2 of peaks 1 and 2 were 147 and 308 microM, respectively, and the Vmax values were 380 and 720 nmol/min/mg of protein, respectively. GSH was required for the catalysis of both enzymes, and no other sulfhydryl compounds could support the reaction. A part of glutathione S-transferase (EC 2.5.1.18) was copurified with peaks 1 and 2 of prostaglandin H-E isomerase. Prostaglandin H-E isomerase activity of peak 2 enzyme was competitively inhibited by 1-chloro-2,4-dinitrobenzene, a substrate of glutathione S-transferase. These results suggested that prostaglandin H-E isomerases in human brain cytosol were identical with anionic forms of glutathione S-transferase.

Animals↗

Cloning and sequence analysis of cDNA for rat angiotensinogen.

A mixture of tetradecamer oligodeoxyribonucleotides complementary to the codons specifying the carboxyl-terminal sequence, Ile-His-Pro-Phe-His, of angiotensin was chemically synthesized as two pools and used for the isolation of a cDNA clone specific for angiotensinogen from a cDNA bank of rat liver mRNA sequences. The two pools (oligo 1 and oligo 2), each containing 24 oligodeoxyribonucleotides, were first used as primers to initiate reverse transcription of rat liver mRNA. One of the pools (oligo 1) was found to prime a specific 32P-labeled cDNA of approximately 160 nucleotides that contained the anticoding sequence corresponding exactly to the amino acid sequence of rat angiotensin. This cDNA, in turn, was used to rescreen cDNA clones that were isolated by initially selecting the rat liver cDNA bank by hybridization with the oligo 1 mixture. One clone thus obtained, designated pRag16, was subjected to nucleotide sequence analysis and verified to contain a nearly full-length cDNA sequence coding for rat angiotensinogen precursor. The deduced amino acid sequence indicates that the precursor molecular consists of angiotensinogen of 453 amino acid residues and a putative signal peptide of 24 amino acid residues. The predicted molecular weight and amino acid composition of angiotensinogen agree well with those determined by using the purified protein. An angiotensin moiety is located at the amino-terminal part of angiotensinogen, preceded directly by the signal peptide and followed by a large carboxyl-terminal sequence that contains two internally homologous sequences and three potential glycosylation sites.

Amino Acid Sequence↗

Acantholytic dyskeratosis on both legs.

A 33-year-old woman developed pruritic lesions on both legs. There were brownish-red keratotic papules, whose biopsy specimen showed acantholysis and benign dyskeratosis. The duration was approximately 8 years. We considered her as a case of persistent acantholytic dermatosis with atypical distribution.

Acantholysis↗

Angiotensinogen and kininogen: cloning and sequence analysis of the cDNAs.

The primary structures of the angiotensinogen precursor and the low molecular weight (LMW) kininogen precursors have been deduced by determining the nucleotide sequences of cloned DNAs complementary to their mRNAs. The angiotensinogen precursor consists of a mature angiotensinogen of 453 amino acid residues and a putative signal peptide of 24 amino acid residues. An angiotensin moiety is located at the amino-terminal part of angiotensinogen, preceded directly by the signal peptide and followed by a large carboxyl-terminal sequence that contains two internally homologous sequences and three potential glycosylation sites. The LMW kininogen precursors are encoded by two very similar but distinct mRNAs and composed of 436 and 434 amino acid residues. Both kininogens contain two internally homologous sequences in which all amino acid differences between the two kininogens are located. This suggests that these homologous regions may be biologically significant in relation to the existence of two LMW kininogens.

Amino Acid Sequence↗

Pituitary adenoma results in the empty sella syndrome.

A 69-year-old female was treated for hyperthyroidism and hypertension. In August 1984, she suddenly began suffering from polyuria and polydipsia. In October, she exhibited fever, headache, vertigo, and poor appetite, probably due to pituitary apoplexy. Her endocrine function was normal, except for partial diabetes insipidus. A contrast-enhanced CT brain scan revealed a pituitary adenoma with a ring-enhanced outer edge and a central low-density area. The MRI scan also indicated cystic adenoma. A CT scan examination repeated 6 months later showed an empty sella with a markedly decreased pituitary adenoma. This case report demonstrates that some empty sella are the final result of pituitary adenoma bleeding or infarction.

Adenoma↗