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Featured researches published by Mikio Hosokawa.


Biochimica et Biophysica Acta | 1987

Purification and some properties of peroxidases of rat bone marrow

Kimio Kariya; Eibai Lee; Masaaki Hirouchi; Mikio Hosokawa; Hiroteru Sayo

Myeloperoxidase and eosinophil peroxidase were separated and purified from rat bone marrow cells using cetyltrimethylammonium bromide as the solubilizer and then with column chromatographies on CM-Sephadex C-50 and Con A-Sepharose. Both purified enzymes were observed to be apparently homogeneous by SDS-polyacrylamide gel electrophoresis. Myeloperoxidase consisted of two subunits of Mr 57,000 and 15,000, and eosinophil peroxidase two of 53,000 and 14,000. On structural analysis of the enzymes, their visual and ESR spectra revealed that the structure surrounding the heme in myeloperoxidase was different from that in eosinophil peroxidase. Moreover, substrate specificity and sensitivity to inhibitors such as azide and cyanide differed between the two enzymes. Rat bone marrow possesses two distinct peroxidases, myeloperoxidase and eosinophil peroxidase, which have different subunits and different heme microenvironments. Therefore, the difference in enzymatic function between the two peroxidases may be due to their structures.


Xenobiotica | 1988

Oxidative metabolism of propylthiouracil by peroxidases from rat bone marrow.

Eibai Lee; Yasuhiro Miki; Mikio Hosokawa; Hiroteru Sayo; Kimio Kariya

1. Propylthiouracil (PTU) was degraded by myeloperoxidase (MPO) or eosinophil peroxidase (EPO), purified from rat bone marrow, in the presence of H2O2 and Cl-. In the absence of either H2O2 or Cl-, MPO and EPO do not degrade PTU. Optimum concentrations of KCl for MPO and EPO were 50 and 250 mM, respectively. 2. The characteristics of PTU degradation by MPO-H2O2-Cl- were similar to those of the chlorinating activity of the peroxidase. 3. Hypochlorous acid as well as MPO-H2O2-Cl- also degraded PTU. Metabolites of PTU degradation by MPO-H2O2-Cl-, which were separated by C18 reversed phase h.p.l.c., were the same as those produced by hypochlorous acid. 4. Of the metabolites of PTU formed by MPO-H2O2-Cl-, one was identified as PTU sulphonic acid (6-propyl-4-hydroxypyrimidine-2-sulphonate) and another seemed to be propyluracil.


Biochimica et Biophysica Acta | 1986

ESR studies on the oxidation of N,N-dimethyl-p-anisidine and its analogues catalyzed by myeloperoxidase

Hiroteru Sayo; Mikio Hosokawa; Eibai Lee; Kimio Kariya; Masahiro Kohno

N,N-Dimethyl-p-anisidine (DMA) was used as a substrate to differentiate between the direct, or chloride-independent, and the indirect, or chloride-dependent, pathways characteristic of myeloperoxidase (donor: hydrogen-peroxide oxidoreductase, EC 1.11.1.7). The chemical oxidation by sodium hypochlorite and the horseradish peroxidase-catalyzed oxidation by H2O2 were also investigated for a comparison. The chemical oxidation of DMA by NaOCl (DMA/NaOCl = 1) gave the p-N,N-dimethylaminophenoxy radical at pH 5 and 7. p-Benzoquinone and formaldehyde were determined as stable end-products. On the other hand, the cation radical of DMA was detected and p-benzoquinone was not obtained in the horseradish peroxidase-H2O2-Cl- system. In the presence of Cl- the myeloperoxidase-catalyzed oxidation at pH 5 gave nearly the same result as did the oxidation by NaOCl, whereas in the absence of Cl- the result of the oxidation was similar to that of the horseradish peroxidase-catalyzed oxidation, except for a low yield of formaldehyde formation, which was ascribed to the decomposition of H2O2 by the catalase activity of myeloperoxidase. Although the myeloperoxidase-catalyzed oxidation of DMA at pH 7 in the presence of Cl- gave only the cation radical of DMA, a fairly large amount of p-benzoquinone was obtained as a product. This result indicates that the indirect chloride-dependent oxidation is also operating at pH 7. The reaction mechanism for the myeloperoxidase-catalyzed oxidation of DMA is proposed.


Journal of Chromatography B: Biomedical Sciences and Applications | 1987

Electrochemical immunoassay combined with column liquid chromatography: determination of phenytoin in human serum

Hiroteru Sayo; Hiromi Hatsumura; Mikio Hosokawa; Takashi Michida

A new electrochemical immunoassay combined with column liquid chromatography has been developed for the determination of phenytoin in human serum. Phenytoin was labelled with the electrochemically active nitroxide, and the separation of the free labelled antigen from other electrochemically active compounds in serum was accomplished by the use of gel chromatography. Serum samples were mixed with the antibody and the labelled antigen, incubated for 90 min, and then a 100-microliter aliquot of the mixture was directly injected to the column, which was equipped with an electrochemical detector. With 10 microliter of serum, the smallest detectable concentration of phenytoin was 2 micrograms/ml.


Biochemical Pharmacology | 1988

Inactivation of peroxidases of rat bone marrow by repeated administration of propylthiouracil is accompanied by a change in the heme structure.

Eibai Lee; Masaaki Hirouchi; Mikio Hosokawa; Hiroteru Sayo; Masahiro Kohno; Kimio Kariya


Yakugaku Zasshi-journal of The Pharmaceutical Society of Japan | 1980

[Spin immunoassay of urinary testosterone (author's transl)].

Hiroteru Sayo; Mikio Hosokawa


Chemical & Pharmaceutical Bulletin | 1985

Results of Spin Immunoassay for Simultaneous Measurement of Phenytoin and Phenobarbital in Serum Compared with Those of Liquid Chromatography

Hiroteru Sayo; Mikio Hosokawa


Chemical & Pharmaceutical Bulletin | 1982

Kinetics of the organic hydroperoxide-supported oxidation of aminopyrine catalyzed by catalase.

Hiroteru Sayo; Mikio Hosokawa


Chemical & Pharmaceutical Bulletin | 1980

Electron Spin Resonance Studies on the Cumene Hydroperoxide-Supported Oxidation of Aminopyrine by Catalase

Hiroteru Sayo; Mikio Hosokawa


Chemical & Pharmaceutical Bulletin | 1985

Cumene Hydroperoxide-Supported N-Demethylation of N, N-Dimethylanilines Catalyzed by Catalase

Hiroteru Sayo; Mikio Hosokawa

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Eibai Lee

Kobe Gakuin University

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