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用于高灵敏度比色法生物传感葡萄糖和苯酚的分隔式多酶反应器的制备

Fabrication of Compartmentalized Multienzyme Reactor for Colorimetric Biosensing of Glucose and Phenol with High Sensitivity.

作者信息

Xu Rentao, Liu Mengmeng, Yao Cheng, Xu Xuan

机构信息

College of Chemistry and Molecular Engineering, Nanjing Tech University, Nanjing 211816, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2025 Jan 22;17(3):5401-5409. doi: 10.1021/acsami.4c21031. Epub 2025 Jan 10.

Abstract

Enzymatic cascade reactions are widely utilized in food security, environmental monitoring, and disease diagnostics, whereas their practical application was hindered due to their limited catalytic efficiency and intrinsic fragility to environmental influences. Herein, a compartmentalized dual-enzyme cascade nanoreactor was constructed in metal-organic frameworks (ZIF-8) by a shell-by-shell growth method. ZIF-8 provided a good microenvironment to maintain the activity of enzymes and protected them against harsh conditions. Importantly, experimental results revealed that the encapsulation order and enzyme ratio affected the cascade catalytic activity. When the cascade enzyme ratio was 1:1 and horseradish peroxidase (HRP) was encapsulated in the inner layer with glucose oxidase (GOx) in the outer layer (H@ZIF-8@G@ZIF-8), the nanoreactor facilitated the mass transfer process of substrates and showed the highest cascade catalytic efficiency. The maximum reaction rate () of H@ZIF-8@G@ZIF-8 was 294.96 nM s, which was 1.6 times greater than G@ZIF-8@H@ZIF-8 (182.84 nM s). Therefore, H@ZIF-8@G@ZIF-8 was effectively applied in glucose monitoring and phenol sensing. The glucose biosensor showed a low detection limit of 0.76 μM and a broad linear range of 5-300 μM. The phenol biosensor demonstrated a wide linear range (20-300 μM) with a detection limit of 0.60 μM. In addition, the spiked recovery experiments for glucose and phenol were carried out in serum (recovery: 95.26-100.04%) and tap water (recovery: 97.05-106.50%), respectively. The high accuracy demonstrated potential applications of the cascade system in biosensing and environmental detection.

摘要

酶促级联反应在食品安全、环境监测和疾病诊断中得到了广泛应用,然而,由于其催化效率有限以及对环境影响的固有脆弱性,其实际应用受到了阻碍。在此,通过逐层生长法在金属有机框架(ZIF-8)中构建了一种分隔的双酶级联纳米反应器。ZIF-8提供了一个良好的微环境来维持酶的活性,并保护它们免受恶劣条件的影响。重要的是,实验结果表明,包封顺序和酶比例会影响级联催化活性。当级联酶比例为1:1且辣根过氧化物酶(HRP)被包封在内层,葡萄糖氧化酶(GOx)被包封在外层(H@ZIF-8@G@ZIF-8)时,该纳米反应器促进了底物的传质过程,并显示出最高的级联催化效率。H@ZIF-8@G@ZIF-8的最大反应速率()为294.96 nM s,比G@ZIF-8@H@ZIF-8(182.84 nM s)高1.6倍。因此,H@ZIF-8@G@ZIF-8有效地应用于葡萄糖监测和苯酚传感。葡萄糖生物传感器的检测限低至0.76 μM,线性范围宽达5-300 μM。苯酚生物传感器的线性范围宽(20-300 μM),检测限为0.60 μM。此外,分别在血清(回收率:95.26-100.04%)和自来水中(回收率:97.05-106.50%)进行了葡萄糖和苯酚的加标回收实验。高准确性证明了该级联系统在生物传感和环境检测中的潜在应用。

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