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      KCI등재 SCIE SCOPUS

      Characterization of β-Glucosidase Produced by the White Rot Fungus Flammulina velutipes = Characterization of β-Glucosidase Produced by the White Rot Fungus Flammulina velutipes

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      https://www.riss.kr/link?id=A100284083

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      다국어 초록 (Multilingual Abstract)

      β-Glucosidase production by the white rot fungus Flammulina velutipes CFK 3111 was evaluated using different carbon and nitrogen sources under submerged fermentation. Maximal extracellular enzyme production was 1.6 U/ml, corresponding to a culture gr...

      β-Glucosidase production by the white rot fungus Flammulina velutipes CFK 3111 was evaluated using different carbon and nitrogen sources under submerged fermentation. Maximal extracellular enzyme production was 1.6 U/ml, corresponding to a culture grown in sucrose 40 g/l and asparagine 10 g/l. High production yield was also obtained with glucose 10 g/l and asparagine 4 g/l medium (0.5 U/ml). Parameters affecting the enzyme activity were studied using p-nitrophenyl-β-D-glucopyranoside as the substrate. Optimal activity was found at 50°C and pHs 5.0 to 6.0. Under these conditions, β-glucosidase retained 25% of its initial activity after 12 h of incubation and exhibited a half-life of 5 h. The addition of MgCl2, urea, and ethanol enhanced the β-glucosidase activity up to 47%, whereas FeCl2, CuSO4, Cd(NO3)2, and cetyltrimethylammonium bromide inflicted a strong inhibitory effect. Glucose and cellobiose also showed an inhibitory effect on the β-glucosidase activity in a concentration-dependent manner. The enzyme had an estimated molecular mass of 75 kDa. To the best of our knowledge, F. velutipes CFK 3111 β-glucosidase production is amongst the highest reported to date, in a basidiomycetous fungus.

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      참고문헌 (Reference)

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      1 Sørensen A, "β-Glucosidases from a new Aspergillus species can substitute commercial β-glucosidases for saccharification of lignocellulosic biomass" 57 : 638-650, 2011

      2 Cai YJ, "β-Glucosidase components of the cellulolytic system of the edible straw mushroom, Volvariella volvacea" 22 : 122-129, 1998

      3 Zaldívar M, "Trichoderma aureoviride 7-121, a mutant with enhanced production of lytic enzymes: its potential use in waste cellulose degradation and/or biocontrol" 4 : 1-7, 2001

      4 Saha BC, "Thermostable β-glucosidases" 1995

      5 Pemberton JE, "The role of β-glucosidase in the bioconversion of cellulose to ethanol" 58 : 723-729, 1980

      6 Jen W, "Structural and functional analysis of three β-D-glucosidases from bacterium Clostridium cellulovorans, fungus Trichoderma reesei and termite Neotermes koshunensis" 173 : 46-56, 2011

      7 Riou C, "Purification, characterization, and substrate specificity of a novel highly glucose-tolerant beta-glucosidase from Aspergillus oryzae" 64 : 3607-3614, 1998

      8 Schmid G, "Purification and partial characterization of a cellodextrin glucohydrolase (β-glucosidase)from Trichoderma reesei strain QM 9414" 30 : 571-585, 1987

      9 Gueguen Y, "Purification and characterization of an intracellular β-glucosidase from Botrytis cinerea" 78 : 900-906, 1995

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      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 1.59 0.33 1.17
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