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April 18, 2026Bioengineering0 citationsOpen Access

Biomineralization of Glucose Oxidase from Aspergillus niger in ZIF-zni for Enhanced Biocatalytic Performance

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MSMarija StanišićMPMilica Crnoglavac PopovićNKNikola Knežević

Key Points

  • The aim is to investigate the biomineralization of glucose oxidase using ZIF-zni to improve its biocatalytic performance.
  • Biomineralization of glucose oxidase from Aspergillus niger within ZIF-zni framework
  • Optimization of zinc and imidazole concentrations for maximum immobilization performance
  • Assessment of specific activity and stability under various conditions, including temperature and SDS exposure
  • The optimized biocomposite achieved a specific activity of 2051 IU g−1, doubling the performance of GOx@ZIF-8.
  • The GOx@ZIF-zni showed significant resistance to SDS.
  • The biocomposite retained 50% of its activity after one hour at 65 °C.

Abstract

Biomineralization has recently emerged as a highly effective strategy for enzyme immobilization. Zeolitic imidazolate frameworks (ZIFs), a subclass of metal–organic frameworks (MOFs), are particularly attractive carriers due to their structural tunability and chemical stability. While ZIF-8 has been extensively studied, its denser and thermodynamically more stable analog ZIF-zni has received far less attention. In this work, we report the biomineralization of glucose oxidase (GOx) from Aspergillus niger within the ZIF-zni framework and systematically investigate the influence of zinc and imidazole (Im) concentration on immobilization performance. The optimized biocomposite, obtained at 10 mM Zn2+ and a Zn:Im ratio of 1:10, exhibited a specific activity of 2051 IU g−1, which is more than twice the activity obtained for GOx@ZIF-8 in our previous study (874 IU g−1). Furthermore, the GOx@ZIF-zni biocomposite demonstrated remarkable resistance to sodium dodecyl sulfate (SDS) and retained up to 50% of its activity after incubation at 65 °C for one hour. These results demonstrate that ZIF-zni is a highly promising carrier for enzyme immobilization and suggest that framework topology and synthesis conditions play a crucial role in determining the catalytic performance and stability of enzyme@MOF biocomposites.

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Cite This Study

Stanišić et al. (2026) studied this question.

synapsesocial.com/papers/69e3201440886becb653f295https://doi.org/10.3390/bioengineering13040465
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