Preparation of GOx@ZIF-7/PDA in aqueous phase and its enzymatic properties

  • LIU Siyuan ,
  • LIU Jingxing ,
  • WANG Zefen ,
  • ZHU Xiaolu ,
  • LI Yanxue ,
  • LAN Xiongdiao ,
  • LIU Pengru ,
  • LAN Ping
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  • 1(School of Chemistry and Chemical Engineering, Guangxi Minzu University, Key Laboratory of Polysaccharide Materials and Modification, New Technology Laboratory of Chemical and Biological Transformation Process, Nanning 530006, China)
    2(School of Chemistry and Chemical Engineering, Guangxi University, Nanning 530000, China)
    3(Institute of Biological Manufacturing Technology Co.Ltd., Guangxi Institute of Industrial Technology, Nanning 530000, China)

Received date: 2022-10-27

  Revised date: 2022-11-22

  Online published: 2023-10-25

Abstract

Due to the mild preparation conditions and simple operation, in situ embedding strategy was widely used in the preparation of enzyme-metal organic frameworks (enzyme-MOFs) biocomposites. However, only part of MOFs was successfully employed to synthesize enzyme-MOFs through in situ embedding in aqueous phase. In this study, glucose oxidase (GOx) was encapsulated in zeolitic imidazolate framework-7 (ZIF-7) via in situ embedding in aqueous phase for the first time. A hydrophilic polydopamine (PDA) layer was synthesized on the GOx@ZIF-7 to obtained GOx@ZIF-7/PDA. The preparation conditions of GOx@ZIF-7/PDA were optimized by single factor experiments. The optimized immobilization conditions for GOx@ZIF-7/PDA were showed as follows: immobilization pH 7.0, enzyme 5 g/L, Bim 50 mmol/L, molar ratio of Zn2+ to Bim 1∶9, immobilization temperature 35 ℃, immobilization time 40 min, dopamine 2 g/L. The enzyme activity recovery of GOx@ZIF-7/PDA reached up to (43.34±2.00)% under the optimal condition. Compared with free enzyme, GOx@ZIF-7/PDA achieved better thermal stability, pH stability, storage stability and excellent reuse performance. After 10 times of reuse, the catalytic activity of GOx@ZIF-7/PDA still maintained (96.53±2.26)% of its initial activity. These results indicated the strategy of preparing immobilized enzyme GOx@ZIF-7/PDA via in situ embedding in aqueous phase was efficient and feasible, and it was expected to achieve low cost and long-term stable application of enzyme catalysis.

Cite this article

LIU Siyuan , LIU Jingxing , WANG Zefen , ZHU Xiaolu , LI Yanxue , LAN Xiongdiao , LIU Pengru , LAN Ping . Preparation of GOx@ZIF-7/PDA in aqueous phase and its enzymatic properties[J]. Food and Fermentation Industries, 2023 , 49(18) : 157 -164 . DOI: 10.13995/j.cnki.11-1802/ts.034120

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