Geng Xiaoyu, Xue Ruisong, Liang Feng, Liu Yanmei, Wang Yuanyuan, Li Jinshuo, Huang Zhenzhen
College of Chemistry, Jilin University, Changchun, 130012, China.
China-Japan Union Hospital, Jilin University, Changchun, 130021, China.
Talanta. 2023 Jul 1;259:124565. doi: 10.1016/j.talanta.2023.124565. Epub 2023 Apr 17.
The high cost and low reusability of natural enzymes greatly limit their application in biosensing. In this work, a sustainable nanozyme with light-driven oxidase-like activity was fabricated by integrating protein-capped silver nanoclusters (AgNCs) with graphene oxide (GO) through multiple non-covalent interactions. The prepared AgNCs/GO nanozyme could effectively catalyze the oxidation of various chromogenic substrates by activating dissolved O to reactive oxygen species under visible light irradiation. Moreover, the oxidase-like activity of AgNCs/GO could be well controlled by switching on and off the visible light source. Compared with natural peroxidase and most of other oxidase-mimicking nanozymes, AgNCs/GO possessed improved catalytic activity owing to the synergistic effect between AgNCs and GO. More importantly, AgNCs/GO showed outstanding stability against precipitation, pH (2.0-8.0), temperature (10-80 °C), and storage and could be reused at least 6 cycles without obvious loss in catalytic activity. On this basis, AgNCs/GO nanozyme was used to develop a colorimetric assay for the determination of total antioxidant capacity in human serum, which had the merits of high sensitivity, low cost, and good safety. This work holds a promising prospect in developing sustainable nanozymes for biosensing and clinical diagnosis.
天然酶的高成本和低可重复使用性极大地限制了它们在生物传感中的应用。在这项工作中,通过多种非共价相互作用将蛋白质包覆的银纳米簇(AgNCs)与氧化石墨烯(GO)整合,制备了一种具有光驱动类氧化酶活性的可持续纳米酶。制备的AgNCs/GO纳米酶在可见光照射下可通过将溶解的O激活为活性氧物种,有效催化各种显色底物的氧化。此外,通过打开和关闭可见光源,可以很好地控制AgNCs/GO的类氧化酶活性。与天然过氧化物酶和大多数其他模拟氧化酶的纳米酶相比,由于AgNCs和GO之间的协同作用,AgNCs/GO具有更高的催化活性。更重要的是,AgNCs/GO在抗沉淀、pH(2.0-8.0)、温度(10-80°C)和储存方面表现出出色的稳定性,并且可以重复使用至少6个循环而催化活性无明显损失。在此基础上,利用AgNCs/GO纳米酶建立了一种比色法测定人血清中的总抗氧化能力,该方法具有灵敏度高、成本低、安全性好等优点。这项工作在开发用于生物传感和临床诊断的可持续纳米酶方面具有广阔的前景。