生物传感器
动力学
葡萄糖氧化酶
氧气
化学动力学
反应速率
纳米颗粒
化学
材料科学
化学工程
生物分子
电极
催化作用
电化学
化学反应
纳米技术
反应速率常数
克拉克电极
分子氧
溶解度
氧化酶试验
极限氧浓度
酶催化
组合化学
氧还原反应
有机化学
固定化酶
氧化还原
作者
Ling Li,Weihai Ni,Yifan Zhou,Xiyue Liu,Wenjing Fan,Xinjian Feng
出处
期刊:Small
[Wiley]
日期:2026-02-10
卷期号:: e12615-e12615
标识
DOI:10.1002/smll.202512615
摘要
Electrochemical bioassays based on oxidase reactions are widely used in biological sciences and medical industries. However, the enzymatic reaction kinetics are significantly restricted by the poor solubility and slow diffusion rate of oxygen in conventional solid-liquid diphase reaction system. This limitation compromises the detection accuracy, linearity and reliability of oxidase-based bioassays. In this study, an effective solid‒liquid‒air triphase bioassay system is provided that uses ZIF-7 nanoparticles (ZIF-7 NPs) as oxygen nanocarriers. We constructed a solid-liquid-air triphase enzyme electrode by encapsulating ZIF-7 NPs within an oxidase network. The hydrophobic nature of ZIF-7 NPs provides localized oxygen supply by releasing pre-stored oxygen from its hydrophobic pores, thereby enhancing the kinetics of oxidase-catalyzed reactions. Consequently, compared to the conventional diphase system, the triphase system significantly improves the enzymatic reaction kinetics with a 21-fold higher maximum reaction rate (Vmax) and expands the linear detection range for glucose from 2 mM to 20 mM, a 10-fold improvement. Furthermore, this triphase technique can be applied to the detection of other biomolecules, and the design strategy offers a new route to addressing the gas deficiency problem in catalytic reactions that involve gas consumption.
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