Search Results - "Ikenaga, Hiroshi"

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  1. 1

    Asymmetric Total Synthesis of (−)‐Stemonamine and Its Stereochemical Stability by Fujita, Satoshi, Nishikawa, Keisuke, Iwata, Takayuki, Tomiyama, Taishi, Ikenaga, Hiroshi, Matsumoto, Kenji, Shindo, Mitsuru

    Published in Chemistry : a European journal (01-02-2018)
    “…The first asymmetric total synthesis of (−)‐stemonamine is described. The key reactions included intramolecular acylation to construct the seven‐membered ring…”
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  2. 2

    Reconstruction and Regulation of the Central Catabolic Pathway in the Thermophilic Propionate-Oxidizing Syntroph Pelotomaculum thermopropionicum by KOSAKA, Tomoyuki, UCHIYAMA, Taku, ISHII, Shun-Ichi, ENOKI, Miho, IMACHI, Hiroyuki, KAMAGATA, Yoichi, OHASHI, Akiyoshi, HARADA, Hideki, IKENAGA, Hiroshi, WATANABE, Kazuya

    Published in Journal of Bacteriology (01-01-2006)
    “…Article Usage Stats Services JB Citing Articles Google Scholar PubMed Related Content Social Bookmarking CiteULike Delicious Digg Facebook Google+ Mendeley…”
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  3. 3

    Characterization of cyanobacterial carotenoid ketolase CrtW and hydroxylase CrtR by complementation analysis in Escherichia coli by Makino, T.(Kitasato Univ., Ofunato, Iwate (Japan). School of Fisheries Sciences), Harada, H, Ikenaga, H, Matsuda, S, Takaichi, S, Shindo, K, Sandmann, G, Ogata, T, Misawa, N

    Published in Plant and cell physiology (01-12-2008)
    “…The pathway from beta-carotene to astaxanthin is a crucial step in the synthesis of astaxanthin, a red antioxidative ketocarotenoid that confers beneficial…”
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  4. 4

    Comparison of two vectors for functional expression of a bacterial cytochrome P450 gene in Escherichia coli using CYP153 genes by Fujita, N.(Marine Biotechnology Inst., Kamaishi, Iwate (Japan)), Sumisa, F, Shindo, K, Kabumoto, H, Arisawa, A, Ikenaga, H, Misawa, N

    “…Two vectors, pT7NScamAB and pRED, have been used for the functional expression of bacterial class I cytochrome P450 (P450) genes in Escherichia coli, which…”
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  5. 5

    Production of Human Compatible High Mannose-type (Man5GlcNAc2) Sugar Chains in Saccharomyces cerevisiae by Chiba, Yasunori, Suzuki, Misa, Yoshida, Satoshi, Yoshida, Aruto, Ikenaga, Hiroshi, Takeuchi, Makoto, Jigami, Yoshifumi, Ichishima, Eiji

    Published in The Journal of biological chemistry (09-10-1998)
    “…A yeast mutant capable of producing Man5GlcNAc2 human compatible sugar chains on glycoproteins was constructed. An expression vector for α-1,2-mannosidase with…”
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  6. 6

    Discovery of the Shortest Sequence Motif for High Level Mucin-type O-Glycosylation by Yoshida, Aruto, Suzuki, Misa, Ikenaga, Hiroshi, Takeuchi, Makoto

    Published in The Journal of biological chemistry (04-07-1997)
    “…The consensus primary amino acid sequence for mucin-type O-glycosylation sites has not been identified. To determine the shortest motif sequence required for…”
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  7. 7

    Effect of “soft-electron” (low-energy electron) treatment on three stored-product insect pests by Imamura, Taro, Todoriki, Setsuko, Sota, Nahoko, Nakakita, Hiroshi, Ikenaga, Hiroshi, Hayashi, Toru

    “…Developmental stages of three stored-product insect pests viz. Tribolium castaneum (Herbst), Plodia interpunctella (Hübner) and Callosobruchus chinensis (L.)…”
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  8. 8

    Purification and Characterization of UDP-N-Acetylglucosamine: α1,3-d-Mannoside β1,4-N-Acetylglucosaminyltransferase (N-Acetylglucosaminyltransferase-IV) from Bovine Small Intestine by Oguri, Suguru, Minowa, Mari Toba, Ihara, Yoshito, Taniguchi, Naoyuki, Ikenaga, Hiroshi, Takeuchi, Makoto

    Published in The Journal of biological chemistry (05-09-1997)
    “…A new β1,4-N-acetylglucosaminyltransferase (GnT) which involves in branch formation of Asn-linked complex-type sugar chains has been purified 224,000-fold from…”
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  9. 9

    Enzymatic synthesis of novel antioxidant flavonoids by Escherichia coli cells expressing modified metabolic genes involved in biphenyl catabolism by Shindo, Kazutoshi, Kagiyama, Yukiko, Nakamura, Ryoko, Hara, Akihiro, Ikenaga, Hiroshi, Furukawa, Kensuke, Misawa, Norihiko

    “…The bpha1(2072)A2A3A4 gene cluster codes for a modified biphenyl dioxygenase holoenzyme with broad substrate specificity. In the previous report, we have shown…”
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  10. 10
  11. 11

    Metabolic engineering for production of beta-carotene and lycopene in Saccharomyces cerevisiae by Yamano, S. (Kirin Brewery Co. Ltd., Yokohama (Japan)), Ishii, T, Nakagawa, M, Ikenaga, H, Misawa, N

    “…We have engineered a conventional yeast, Saccharomyces cerevisiae, to confer a novel biosynthetic pathway for the production of beta-carotene and lycopene by…”
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  12. 12

    Action of low temperature on physiology of Sitophilus zeamais motschulsky and Sitophilus oryzae (L.) (Coleoptera: Curculionidae) in rice storage by Nakakita, Hiroshi, Ikenaga, Hiroshi

    “…Low temperature storage of rice is extensively practised to control insect pests in Japan, and has enabled the use of conventional fumigants to be reduced…”
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  13. 13
  14. 14

    Functional Evidence for UDP-galactose Transporter inSaccharomyces cerevisiae through the in Vivo Galactosylation and in Vitro Transport Assay by Roy, Samir Kumar, Yoko-o, Takehiko, Ikenaga, Hiroshi, Jigami, Yoshifumi

    Published in The Journal of biological chemistry (01-01-1998)
    “…The oligosaccharide profiles in glycoproteins are determined by a series of processing reactions catalyzed by Golgi glycosyltransferases and glycosidases…”
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  15. 15

    Bioconversion of substituted naphthalenes and β-eudesmol with the cytochrome P450 BM3 variant F87V by Misawa, Norihiko, Nodate, Miho, Otomatsu, Toshihiko, Shimizu, Keiko, Kaido, Chie, Kikuta, Miho, Ideno, Akira, Ikenaga, Hiroshi, Ogawa, Jun, Shimizu, Sakayu, Shindo, Kazutoshi

    Published in Applied microbiology and biotechnology (01-04-2011)
    “…Bioconversion of various substituted naphthalenes that contain 1-methoxy- and 1-ethoxy-naphthalenes, methylnaphthalenes, dimethylnaphthalenes, and…”
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  16. 16

    Production of ethanol from maltose by Zymobacter palmae [Gram negative bacteria] fermentation by Okamoto, T. (Kirin Brewery Co. Ltd., Yokohama (Japan)), Taguchi, H, Nakamura, K, Ikenaga, H

    “…The production of ethanol from maltose by Zymobacter palmae T109 in monoculture fermentations, and in co-culture fermentations together with Zymomonas mobilis…”
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  17. 17

    Structural and functional analysis of a lycopene β-monocyclase gene isolated from a unique marine bacterium that produces myxol by Teramoto, Maki, Takaichi, Shinichi, Inomata, Yukie, Ikenaga, Hiroshi, Misawa, Norihiko

    Published in FEBS letters (19-06-2003)
    “…A gene coding for lycopene β-monocyclase, which metabolizes lycopene (ψ,ψ-carotene) to γ-carotene (β,ψ-carotene), was isolated for the first time from a unique…”
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  18. 18

    Bioconversion of substituted naphthalenes and [beta]-eudesmol with the cytochrome P450 BM3 variant F87V by Misawa, Norihiko, Nodate, Miho, Otomatsu, Toshihiko, Shimizu, Keiko, Kaido, Chie, Kikuta, Miho, Ideno, Akira, Ikenaga, Hiroshi, Ogawa, Jun, Shimizu, Sakayu, Shindo, Kazutoshi

    Published in Applied microbiology and biotechnology (01-04-2011)
    “…Bioconversion of various substituted naphthalenes that contain 1-methoxy- and 1-ethoxy-naphthalenes, methylnaphthalenes, dimethylnaphthalenes, and…”
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  19. 19

    Synthesis of vicinal diols from various arenes with a heterocyclic, amino or carboxyl group by using recombinant Escherichia coli cells expressing evolved biphenyl dioxygenase and dihydrodiol dehydrogenase genes by Misawa, Norihiko, Nakamura, Ryoko, Kagiyama, Yukiko, Ikenaga, Hiroshi, Furukawa, Kensuke, Shindo, Kazutoshi

    Published in Tetrahedron (03-01-2005)
    “…Various aromatic molecules, in which heterocycles are linked with a phenyl or benzyl group, were converted to their respective 2,3-diols (catechols) in the…”
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  20. 20

    Molecular cloning and expression in Escherichia coli of a cDNA encoding human pancreatic elastase 2 by Shirasu, Y, Yoshida, H, Matsuki, S, Takemura, K, Ikeda, N, Shimada, Y, Ozawa, T, Mikayama, T, Iijima, H, Ishida, A

    Published in Journal of biochemistry (Tokyo) (01-12-1987)
    “…We have cloned a DNA that is complementary to the messenger RNA that encodes human pancreatic elastase 2 from a human pancreatic cDNA library using a cloned…”
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