埃洛石
生物地球科学
材料科学
纳米技术
化学工程
粘土矿物
碳纳米管
矿物学
化学
冶金
作者
Yuqi Yao,Shiyong Sun,Xingyun Yang,Pan Zhou,Haoming Tang,Shanshan Pu
标识
DOI:10.1017/cmn.2026.10030
摘要
Abstract Halloysite nanotubes (HNTs), naturally abundant clay minerals with unique tubular structures and biocompatibility, offer significant potential as an enzyme immobilization matrix. Conventional functionalization methods often involve energy-intensive processes or compromise enzyme activity, however. The study offers an approach to functionalizing HNTs via alkali activation and polydopamine (PDA) coating for efficient immobilization of β-glucosidase (BG). Alkali treatment enhanced surface hydroxyl density and defect sites, while PDA deposition through mild oxidative polymerization provided a reactive interface for covalent enzyme conjugation mediated by N-(3-dimethylaminopropyl)-N′-ethylcarbodiimide hydrochloride (EDC) crosslinking. Structural characterization (XRD, FTIR, SEM-EDS) confirmed successful PDA coating and enzyme binding while preserving the crystalline integrity of HNTs. At an optimal loading of 167 mg g –1 support , the immobilization efficiency was 83% with retained activity. The immobilized BG not only exhibited optimal catalytic performance at pH 6.0 and 60°C but also enhanced stability against pH/temperature fluctuations through immobilization. Kinetic analysis revealed a 39% increase in V max (4.73 vs 3.40 mM L –1 min –1 ) and sustained substrate affinity (K m =10.4 mM L –1 ). The biocatalyst retained ≥84% activity after 30 days of storage at 4°C and 53% activity over six re-use cycles, attributed to the rigid enzyme conformation stabilized by covalent PDA coupling and HNTs confinement. The research results presented are expected to broaden the application scope of halloysite in the field of enzyme catalysis and provide a feasible solution for improving the catalytic stability of β-glucosidase.
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