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Original Articles

Molecular Cloning of Acid-Stable Glucose Isomerase Gene from Streptomyces olivaceoviridis E-86 by a Simple Two-Step PCR Method, and Its Expression in Escherichia coli

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Pages 1054-1062 | Received 25 Sep 2000, Accepted 17 Jan 2001, Published online: 22 May 2014

  • 1) Buke, C., Enzymes in fructose manufacture. In “Enzymes and food processing”, eds. Birch, G.G., Blackebrough, N., and Parker, J.K., Applied Science Publishers, London, pp. 51-72 (1980).
  • 2) Crueger, W. and Crueger, A., Enzymes. In “Biotechnology: a textbook of industrial microbiology”, eds. Crueger, W. and Crueger, A., Science Tech. Inc., Madison, Wis., pp. 161-174 (1982).
  • 3) Appendix. In “A mylase” (in Japanese), eds. Nakamura, M., Onish, M., Sakano, Y., and Taniguchi, H., Gakkaisyuppan-center, Tokyo, pp. 347-359 (1986).
  • 4) Appendix. In “Handbook of amylases and related enzymes”, edited by The Amylase Research Society of Japan, Pergamon Press, Great Britain, pp. 250-264 (1988).
  • 5) Appendix. In “Denpun kanren-toushitu kouso jik-kenhou” (in Japanese) eds Nakamura, M. and Kainuma, K., Gakkaisyuppan-center, Tokyo, pp. 362-371 (1989).
  • 6) Appendix. In “Kougyouyou-toushitu-kouso-handobukku” (in Japanese), eds. Okada, S. and Kitahata, S., Kodansya, Tokyo, pp. 183-189 (1999).
  • 7) Takasaki, Y., Glucose-isomerizing enzyme. In “Handbook of amylases and related enzymes”, edited by The Amylase Research Society of Japan, Pergamon Press, Great Britain, pp. 172-177 (1988).
  • 8) Kaneko, T., Takahashi, S., and Saito, K., Characterization of Acid-Stable Glucose Isomerase from Streptomyces sp. and Development of Single-Step Processes for High-Fructose Corn Sweetener (HFCS) Production. Biosci. Biotechnol. Biochem., 64, 940-947 (2000).
  • 9) Kusakabe, I., Yasui, T., and Kobayashi, T., Studies on xylanase system of Streptomyces Part I. Some properties of extracellular xylanase from Streptomyces. Nippon Nogeikagaku Kaishi (in Japanese), 43, 145-153 (1969).
  • 10) Kasumi, T., Hayashi, K., and Tsumura, N., Purification and enzymatic properties of glucose isomerase from Streptomyces griseofuscus, S-41. Agric. Biol. Chem., 45, 619-627 (1981).
  • 11) Basuki, W., Iizuka, M., Ito, K., Furuichi, K., and Minamiura, N., Evidence for the existence of isozyme of glucose isomerase from Streptomyces phaeochromogenes. Biosci. Biotechnol. Biochem., 56, 180-185 (1992).
  • 12) Inyang, C.U., Gebhart, U., Obi, S.K.C., and Bisswanger, H., Isolation and characterization of a D-glucose isomerase from a new thermophilic strain Streptomyces sp. (PLC) Appl. Mcrobiol. Biotechnol., 43, 632-638 (1995).
  • 13) Kikuchi, T., Itoh, Y., Kasumi, T., and Fukazawa, C., Molecular cloning of the xylA gene encoding xylose isomerase from Streptomyces griseofuscus S-41. Agric. Biol. Chem., 54, 2469-2472 (1990).
  • 14) Drocourt, D., Bejar, S., Calmels, T., Reynes, J.P., and Tiraby, G., Nucleotide sequence of the xylose isomerase gene from Streptomyces violaceoniger. Nucleic Acids Res., 16, 9377 (1988).
  • 15) Wong, H.C., Ting, Y., Lin, H.C., Reichert, F., Myambo, K., Watt, K., Toy, P.L., and Drummond, R.J., Genetic organization and regulation of the xylose degradation genes in Streptomyces rubiginosus. J. Bacteriol., 173, 6849-6858 (1991).
  • 16) Wang, Y., Huang, Z., Dai, X., Liu, J., Cui, T., Niu, L., Wang, C., and Xu, X., The sequence of xylose isomerase gene from Streptomyces diastaticus No. 7M1033. Chin. J. Biotechnol., 10, 97-103 (1994).
  • 17) Takasaki, Y., Studies on sugar-isomerizing enzyme. Production and utilization of glucose isomerase from Streptomyces sp. Agric. Biol. Chem., 30, 1247-1253 (1966).
  • 18) Oda, K., Ito, M., Uchida, K., Shibano, Y., Fukuhara, K., and Takahashi, S., Cloning and expression of an isovaleryl pepstatin-insensitive carboxyl proteinase gene from Xanthomonas sp. T-22. J. Biochem., 120, 564-572 (1996).
  • 19) Saito, H. and Miura, K., Preparation of transforming DNA by phenol treatment. Biochem. Biophys. Acta, 72, 619-629 (1963).
  • 20) Birnboim, H.C. and Doly, J., A rapid alkaline extraction procedure for screening recombinant plasmid DNA. Nucleic Acids Res., 7, 1513 (1979).
  • 21) Holmes, D.S. and Quigley, M., A rapid boiling method for the preparation of bacterial plasmids. Anal. Biochem., 114, 193 (1981).
  • 22) Sanger, F., Nicklen, S., and Coulson, A.R., DNA sequencing with chain-terminating inhibitors. Proc. Natl. Acad. Sci. USA, 74, 5463-5467 (1977).
  • 23) Takasaki, Y., Kosugi, Y., and Kanbayashi, A., Studies on sugar-isomerizing enzyme. Purification, crystallization and some properties of glucose isomerase from Streptomyces sp. Agric. Biol. Chem., 33, 1527-1534 (1969).
  • 24) Nakamura, M., Determination of fructose in the presence of a large excess of glucose. A modified cystein-carbazole reaction. Agric. Biol. Chem., 32, 701-706 (1968).
  • 25) Bradford, M.M., A rapid and sensitive method for the quantitation of microgram quantities of protein using the principles of protein-dye binding. Anal. Biochem., 72, 248-254 (1976).
  • 26) Laemmli, U.K., Cleavage of structural proteins during the assembly of the head of bacteriophage T4. Nature, 227, 680-685 (1970).
  • 27) Towbin, H., Staehelin, T., and Gordon, J., Electrophoretic transfer of proteins from polyacrylamide gels to nitrocellulose sheets. Proc. Natl. Acad. Sci. USA, 76, 4350 (1979).
  • 28) Maniatis, T., Fritsch, E.F., and Sambrook, J., in Molecular cloning: a laboratory manual, 1st edn. Cold Spring Harbor Laboratory, Cold Spring Harbor, N.Y. (1982).
  • 29) Henikoff, S., Unidirectional digestion with exonuclease III creates targeted breakpoints for DNA sequencing. Gene, 28, 351-359 (1984).
  • 30) Bibb, M.J., Bibb, M.J., Ward, J.M., and Cohen, S.N., Nucleotide sequences encoding and promoting expression of three antibiotic resistance gene indigenous to Streptomyces. Mol. Gen. Genet., 199, 26-36 (1985).
  • 31) Kuno, A., Shimizu, D., Kaneko, S., Koyama, Y., Yoshida, S., Kobayashi, H., Hayashi, K., Taira, K., and Kusakabe, I., PCR cloning and expression of the F/10 family xylanase gene from Streptomyces olivaceoviridis E-86. J. Ferment. Bioengin., 86, 434-439 (1998).
  • 32) Dauter, Z., Dauter, M., Hemker, J., Witzel, H., and Wilson, K.S., Crystallisation and preliminary analysis of glucose isomerase from Streptomyces albus. FEBS Lett., 247, 1-8 (1989).
  • 33) Rey, F., Jenkins, J., Janin, J., Lasters, I., Alard, P., Claessens, M., Matthyssens, G., and Wodak, S., Structural analysis of the 2.8Å model of xylose isomerase from Actinoplanes missouriensis. Proteins Struct. Funct. Genet., 4, 165-172 (1988).
  • 34) Henrick, K., Collyer, C.A., and Blow, D.M., Structures of D-xylose isomerase from Arthrobacter strain B3728 containing the inhibitors xylitol and D-sorbitol at 2.5 Å and 2.3 Å resolution, respectively. J. Mol. Biol., 208, 129-157 (1989).
  • 35) Allen. K.N., Lavie, A., Glasfeld, A., Tanada, T.N., Gerrity, D.P., Carlson, S.C., Farber, G.K., Petsko, G.A., and Ringe, D., Role of the divalent metal ion in sugar binding, ring opening, and isomerization by D-xylose isomerase: replacement of a catalytic metal by an amino acid. Biochemistry, 33, 1488-1494 (1994).
  • 36) Glasfeld, A., Farber, G.K., Ringe, D., Marcel, T., Drocourt, D., Tiraby, G., and Petsko, G.A., Characterization of crystals of xylose isomerase from Streptomyces violaceoniger. J. Biol. Chem., 263, 14612-14613 (1988).
  • 37) Whitlow, M., Howard, A.J., Finzel, B.C., Poulos, T.L., Winborne, E., and Gilliland, G.L., A metal-mediated hydride shift mechanism for xylose isomerase based on the 1.6 Å Streptomyces rubiginosus structures with xylitol and D-xylose. Proteins Struct. Funct. Genet., 9, 153-173 (1991).
  • 38) Suekane, M., Tamura, M., and Tomimura, C., Physico-chemical and enzymatic properties of purified glucose isomerases from Streptomyces olivochromogenes and Bacillus stearothermophilus. Agric. Biol. Chem., 42, 909-917 (1978).
  • 39) Dauter, Z., Dauter, M., Hemker, J., Witzel, H., and Wilson, K.S., Crystallisation and preliminary analysis of glucose isomerase from Streptomyces albus. FEBS Lett., 247, 1-8 (1989).
  • 40) Lavie, A., Allen, K.N., Petsko, G.A., and Ringe, D., X-ray crystallographic structure of D-xylose isomerase substrate complexes position the structure and provede evidence for metal movement during catalysis. Biochemistry, 33, 5469-5480 (1994).
  • 41) Bogumil, R., Kappl, R., Huttermann, J., Sudfeldt, C., and Witzel, H., X- and Q-band EPR studies on the two Mn(2+)-substituted metal-binding sites of D-xylose isomerase. Eur. J. Biochem., 213, 1185-1192 (1993).
  • 42) Vieille, C., Hess, J.M., Kelly, R.M., and Zeikus, J.G., XylA cloning and sequencing and biochemical characterization of xylose isomerase from Thermotoga neapolitana. Appl. Environ. Microboil., 61, 1867-1875 (1995).
  • 43) Kristo, P., Saarelainen, R., Fagerstroem, R., Aho, S., and Korhola, M., Protein purification, and cloning and characterization of the cDNA and gene for xylose isomerase of barley. Eur. J. Biochem., 237, 240-246 (1996).
  • 44) Park, B.C., Koh, S., Chang, C., Suh, S.W., Lee, D.S., and Byun, S.M., Cloning and expression of the gene for xylose isomerase from Thermus flavus AT62 in Escherichia coli. Appl. Biochem. Biotechnol., 62, 15-27 (1997).

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