School of Marine Science and Technology, Tianjin University, Tianjin 300072, PR China.
School of Marine Science and Technology, Tianjin University, Tianjin 300072, PR China.
J Hazard Mater. 2022 May 5;429:128404. doi: 10.1016/j.jhazmat.2022.128404. Epub 2022 Feb 2.
Despite the rapid development of nanozyme, it is still challenging to develop multifunctional nanozyme with high oxidase-like activity. In this work, a novel type of amorphous imidazole-Cu nanozyme (I-Cu) with high laccase- and catecholase-like activity was prepared by the water induced precipitation of Cu and imidazole to mimick the N-Cu coordinated environment in their active site. I-Cu shows similar K but 3.7-fold higher V than laccase at the same mass concentration. The possible catalytic mechanism of I-Cu nanozyme, which is composed of substrate binding, substrate oxidation, oxygen binding and oxygen reduction, is proposed. In addition, it also displays high stability under various pH, temperature, long-term storage and high salinity. The oxidation efficiency of I-Cu nanozyme for environmental phenolic pollutants (2,4-dichlorophenol) is 91.8% at 10 h, which is higher than that of laccase (68.8% at 10 h). Furthermore, the colorimetric and smart phone detection of dopamine by I-Cu nanozyme is developed with the detection limit of 0.412 μM. Therefore, we expect this amorphous nanozyme is promising in the various application of bioremediation and biosensor.
尽管纳米酶发展迅速,但开发具有高氧化酶样活性的多功能纳米酶仍然具有挑战性。在这项工作中,通过水诱导沉淀 Cu 和咪唑来模拟其活性位点中的 N-Cu 配位环境,制备了一种新型的无定形咪唑-Cu 纳米酶(I-Cu),具有高漆酶和儿茶酚酶样活性。在相同质量浓度下,I-Cu 的 K 相似,但 V 比漆酶高 3.7 倍。提出了由底物结合、底物氧化、氧结合和氧还原组成的 I-Cu 纳米酶的可能催化机制。此外,它还在各种 pH 值、温度、长期储存和高盐度下表现出高稳定性。I-Cu 纳米酶对环境酚类污染物(2,4-二氯苯酚)的氧化效率在 10 小时时为 91.8%,高于漆酶(10 小时时为 68.8%)。此外,还开发了基于 I-Cu 纳米酶的多巴胺比色和智能手机检测,检测限为 0.412 μM。因此,我们期望这种无定形纳米酶在生物修复和生物传感器的各种应用中具有广阔的前景。