ArticleApplied biochemistry and biotechnology2026
Inorganic Hybrid Nanoflower Patterns of Transglycosylating α-glucosidase for Production of Isomaltooligosaccharides.
Article in Applied biochemistry and biotechnology, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.
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Abstract
In this study, divalent metal ions (Zn²⁺, Cu²⁺, and Mn²⁺) were employed for the in situ synthesis of highly stable hybrid nanoflowers (tAG-NFs) to immobilize transglycosylating α-glucosidase (tAG) for isomaltooligosaccharide (IMO) production. Characterization via SEM, FTIR, and XRD confirmed the successful formation of these distinct nanostructures and increased crystallinity. Optimization revealed that the Mn-tAG-NF system achieved the highest immobilization efficiency (~ 46%). This architecture demonstrated superior enzyme stability, retaining 41.61% activity at 64 °C and exhibiting high storage stability and reusability (~ 50% activity after five cycles), significantly outperforming the free enzyme. Kinetic analysis showed that immobilization generally enhanced substrate affinity (reduced K
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