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Dive into the research topics where Hideo Mochizuki is active.

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Featured researches published by Hideo Mochizuki.


Journal of Biological Chemistry | 2003

Differential Roles of TwoN-Acetylgalactosaminyltransferases, CSGalNAcT-1, and a Novel Enzyme, CSGalNAcT-2 INITIATION AND ELONGATION IN SYNTHESIS OF CHONDROITIN SULFATE

Takashi Sato; Masanori Gotoh; Katsue Kiyohara; Tomohiro Akashima; Hiroko Iwasaki; Akihiko Kameyama; Hideo Mochizuki; Toshikazu Yada; Niro Inaba; Akira Togayachi; Takashi Kudo; Masahiro Asada; Hideto Watanabe; Toru Imamura; Koji Kimata; Hisashi Narimatsu

By a tblastn search with β1,4-galactosyltransferases as query sequences, we found an expressed sequence tag that showed similarity in β1,4-glycosyltransferase motifs. The full-length complementary DNA was obtained by a method of 5′-rapid amplification of complementary DNA ends. The predicted open reading frame encodes a typical type II membrane protein comprising 543 amino acids, the sequence of which was highly homologous to chondroitin sulfate N-acetylgalactosaminyltransferase (CSGalNAcT-1), and we designated this novel enzyme CSGalNAcT-2. CSGalNAcT-2 showed much strongerN-acetylgalactosaminyltransferase activity toward glucuronic acid of chondroitin poly- and oligosaccharides, and chondroitin sulfate poly- and oligosaccharides with a β1–4 linkage,i.e. elongation activity for chondroitin and chondroitin sulfate, but showed much weaker activity toward a tetrasaccharide of the glycosaminoglycan linkage structure (GlcA-Gal-Gal-Xyl-O-methoxyphenyl), i.e.initiation activity, than CSGalNAcT-1. Transfection of theCSGalNAcT-1 gene into Chinese hamster ovary cells yielded a change of glycosaminoglycan composition, i.e. the replacement of heparan sulfate on a syndecan-4/fibroblast growth factor-1 chimera protein by chondroitin sulfate, however, transfection of the CSGalNAcT-2 gene did not. The above results indicated that CSGalNAcT-1 is involved in the initiation of chondroitin sulfate synthesis, whereas CSGalNAcT-2 participates mainly in the elongation, not initiation. Quantitative real-time PCR analysis revealed that CSGalNAcT-2 transcripts were highly expressed in the small intestine, leukocytes, and spleen, however, both CSGalNAcTs were ubiquitously expressed in various tissues.


Journal of Biological Chemistry | 2008

Tetrasulfated Disaccharide Unit in Heparan Sulfate ENZYMATIC FORMATION AND TISSUE DISTRIBUTION

Hideo Mochizuki; Keiichi Yoshida; Yuniko Shibata; Koji Kimata

We previously reported that the heparan sulfate 3-O-sulfotransferase (3OST)-5 produces a novel component of heparan sulfate, i.e. the tetrasulfated disaccharide (Di-tetraS) unit ( Mochizuki, H., Yoshida, K., Gotoh, M., Sugioka, S., Kikuchi, N., Kwon, Y.-D., Tawada, A., Maeyama, K., Inaba, N., Hiruma, T., Kimata, K., and Narimatsu, H. (2003) J. Biol. Chem. 278, 26780-26787 ). In the present study, we investigated the potential of other 3OST isoforms to produce Di-tetraS with heparan sulfate and heparin as acceptor substrates. 3OST-2, 3OST-3, and 3OST-4 produce Di-tetraS units as a major product from both substrates. 3OST-5 showed the same specificity for heparin, but the production from heparan sulfate was very low. Di-tetraS production by 3OST-1 was negligible. We then investigated the presence of Di-tetraS units in heparan sulfates from various rat tissues. Di-tetraS was detected in all of the tissues analyzed. Liver and spleen contain relatively high levels of Di-tetraS, 1.6 and 0.95%, respectively. However, the content of this unit in heart, large intestine, ileum, and lung is low, less than 0.2%. We further determined the expression levels of 3OST transcripts by quantitative real time PCR. The 3OST-3 transcripts are highly expressed in spleen and liver. The 3OST-2 and -4 are specifically expressed in brain. These results indicate that the Di-tetraS unit is widely distributed throughout the body as a rare and unique component of heparan sulfate and is synthesized by tissue-specific 3OST isoforms specific for Di-tetraS production.


Carbohydrate Research | 2003

Modification of di- and tetrasaccharides from shark cartilage keratan sulphate by refined anhydromethanolic hydrochloric acid-treatments and evaluation of their specific desulphation.

Yutaka Kariya; Shugo Watabe; Hideo Mochizuki; Kyoko Imai; Hiroshi Kikuchi; Kiyoshi Suzuki; Mamoru Kyogashima; Tadashi Ishii

Highly sulphated keratan di- and tetrasaccharides were prepared from keratan sulphate (KS) of shark cartilage by enzymatic digestion with keratanase II and subsequent chromatography. The tetrasaccharide fraction carrying four sulphate groups was completely desulphated by 100 mM anhydromethanolic hydrochloric acid (MeOH-HCl) treatment at room temperature for 16 h. The conditions for the desulphation reaction by MeOH-HCl treatment were examined using sulphated keratan di- and tetrasaccharides as substrates by means of reversed phase high performance liquid chromatography (HPLC) and/or capillary electrophoresis, followed by the preparation of partially desulphated keratan oligosaccharides. Sulphate substitution patterns of monosulphated keratan disaccharide and trisulphated keratan tetrasaccharide were evaluated by methylation analysis. The results suggested that 6-O-sulphate groups of Gal moieties are cleaved faster than those of GlcNAc moieties under the present conditions adopted for the MeOH-HCl treatment of KS-derived oligosaccharides.


Glycobiology | 2015

Heparosan-glucuronate 5-epimerase: Molecular cloning and characterization of a novel enzyme.

Hideo Mochizuki; Kiwamu Yamagishi; Kiyoshi Suzuki; Yeong Shik Kim; Koji Kimata

Iduronic acid (IdoA) is a critical component of heparan sulfate in its interaction with functional proteins. Heparosan-N-sulfate-glucuronate 5-epimerase (HNSG-5epi) converts d-glucuronic acid (GlcA) residues in N-sulfated heparosan (NS-heparosan), as an intermediate in heparan sulfate biosynthesis, to IdoA. In the present study, the authors discovered a different 5-epimerase, designated HG-5epi (heparosan-glucuronate 5-epimerase), that is involved in acharan sulfate biosynthesis and possesses novel substrate specificity. A candidate cDNA of HG-5epi was cloned from the cDNA library of Achatina fulica. The cloned cDNA contained a whole coding region that predicts a type II transmembrane protein composed of 601 amino acid residues. The amino acid sequence of HG-5epi is homologous to that of HNSG-5epi. Recombinant HG-5epi was expressed in insect cells and its enzymatic properties characterized. As expected, HG-5epi epimerizes GlcA residues in heparosan, but not in NS-heparosan. Conversion of IdoA to GlcA was also catalyzed by HG-5epi when completely desulfated N-acetylated heparin was used as the substrate, indicating a reversible reaction mechanism. At equilibrium of the epimerization, the proportion of IdoA in the reaction product reached up to 30% of total hexuronic acid. To our knowledge, this is the first report to describe an enzyme that catalyzes the epimerization of non-sulfated heparosan. This new enzyme may be applied to the study of synthetic heparan sulfate-related polysaccharides having certain biological and pharmacological activities. In addition, a new method using anion-exchange HPLC connected to a post-column fluorescent labeling system was developed for analyzing hexuronic acid isomers.


Journal of Biological Chemistry | 1997

TWO DISTINCT CHONDROITIN SULFATE ABC LYASES : AN ENDOELIMINASE YIELDING TETRASACCHARIDES AND AN EXOELIMINASE PREFERENTIALLY ACTING ON OLIGOSACCHARIDES

Akio Hamai; Nobukazu Hashimoto; Hideo Mochizuki; Fumikazu Kato; Yoshitaka Makiguchi; Katsuyuki Horie; Sakaru Suzuki


Journal of Biological Chemistry | 2002

Enzymatic Synthesis of Chondroitin with a Novel Chondroitin Sulfate N-Acetylgalactosaminyltransferase That Transfers N-Acetylgalactosamine to Glucuronic Acid in Initiation and Elongation of Chondroitin Sulfate Synthesis

Masanori Gotoh; Takashi Sato; Tomohiro Akashima; Hiroko Iwasaki; Akihiko Kameyama; Hideo Mochizuki; Toshikazu Yada; Niro Inaba; Yan Zhang; Norihiro Kikuchi; Yeon-Dae Kwon; Akira Togayachi; Takashi Kudo; Shoko Nishihara; Hideto Watanabe; Koji Kimata; Hisashi Narimatsu


Journal of Biological Chemistry | 2002

Molecular cloning and characterization of a novel chondroitin sulfate glucuronyltransferase that transfers glucuronic acid to N-acetylgalactosamine.

Masanori Gotoh; Toshikazu Yada; Takashi Sato; Tomohiro Akashima; Hiroko Iwasaki; Hideo Mochizuki; Niro Inaba; Akira Togayachi; Takashi Kudo; Koji Kimata; Hisashi Narimatsu


Archive | 1993

Chondroitinase, process for preparing the same, and pharmaceutical composition comprising the same

Nobukazu Hashimoto; Hideo Mochizuki; Akio Hamai


Journal of Biological Chemistry | 2003

Characterization of a Heparan Sulfate 3-O-Sulfotransferase-5, an Enzyme Synthesizing a Tetrasulfated Disaccharide

Hideo Mochizuki; Keiichi Yoshida; Masanori Gotoh; Shigemi Sugioka; Norihiro Kikuchi; Yeon-Dae Kwon; Akira Tawada; Kennichi Maeyama; Niro Inaba; Toru Hiruma; Koji Kimata; Hisashi Narimatsu


Archive | 1993

Chondroitinase ABC isolated from proteus vulgaris ATCC 6896

Nobukazu Hashimoto; Hideo Mochizuki; Akio Hamai

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Koji Kimata

Aichi Medical University

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Hisashi Narimatsu

National Institute of Advanced Industrial Science and Technology

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Kiyoshi Suzuki

Kyoto Institute of Technology

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Masanori Gotoh

National Institute of Advanced Industrial Science and Technology

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Niro Inaba

National Institute of Advanced Industrial Science and Technology

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Akira Togayachi

National Institute of Advanced Industrial Science and Technology

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