Literature DB >> 29051100

Co-immobilization of glucose oxidase and catalase in silica inverse opals for glucose removal from commercial isomaltooligosaccharide.

Bin Zhao1, Liya Zhou2, Li Ma1, Ying He1, Jing Gao1, Dan Li1, Yanjun Jiang3.   

Abstract

In this work, glucose oxidase (GOD) and catalase (CAT) were co-immobilized on novel silica inverse opals (IO-SiO2) through sol-gel process. The immobilized bi-enzyme system named GOD/CAT@IO-SiO2 was successfully fabricated and characterized. Morphology characterization indicated that GOD/CAT@IO-SiO2 had hierarchical porous structure, and the pore diameter of macroporous and mesoporous were 500±50nm and 6.8nm, respectively. The macrospores were connected through windows of 100±30nm. The results of stability tests indicated that both acid (or base) resistance and thermal tolerance of GOD/CAT@IO-SiO2 were improved. When GOD/CAT@IO-SiO2 was used to remove glucose from commercial isomaltooligosaccharide (IMO), the immobilized bi-enzyme system exhibited the good performance. The removal efficiency of glucose reached up to 98.97% under the conditions of GOD/CAT activity ratio of 1:30, the amount of enzyme of 68.8mg, reaction time of 9.39h, reaction temperature of 35.2°C and pH of 7.05. After reused 6 times, 79.19% of removal efficiency could be still retained. The present work demonstrates that the immobilized bi-enzyme (GOD/CAT@IO-SiO2) is not only a very promising system for glucose removal but also has great potential for applications in production of gluconic acid, preparation of biosensors, enzyme bioreactors, etc.
Copyright © 2017 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  Catalase; Glucose oxidase; Immobilized enzyme; Isomaltooligosaccharide; Silica inverse opals; Sol-gel

Mesh:

Substances:

Year:  2017        PMID: 29051100     DOI: 10.1016/j.ijbiomac.2017.10.074

Source DB:  PubMed          Journal:  Int J Biol Macromol        ISSN: 0141-8130            Impact factor:   6.953


  2 in total

1.  Efficient Multi-Enzymes Immobilized on Porous Microspheres for Producing Inositol From Starch.

Authors:  Pingping Han; Xigui Zhou; Chun You
Journal:  Front Bioeng Biotechnol       Date:  2020-05-05

2.  Glucose Oxidase Immobilized on Magnetic Zirconia: Controlling Catalytic Performance and Stability.

Authors:  Angela K Haskell; Aleksandrina M Sulman; Ekaterina P Golikova; Barry D Stein; Maren Pink; David Gene Morgan; Natalya V Lakina; Alexey Yu Karpenkov; Olga P Tkachenko; Esther M Sulman; Valentina G Matveeva; Lyudmila M Bronstein
Journal:  ACS Omega       Date:  2020-05-20
  2 in total

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