Department of Chemistry and Institute for Nanotechnology and Advanced Materials, Bar-Ilan University , Ramat Gan 5290002, Israel.
ACS Appl Mater Interfaces. 2016 Aug 31;8(34):22301-8. doi: 10.1021/acsami.6b05354. Epub 2016 Aug 18.
Nanomaterial-based enzyme mimetics (nanozymes) is an emerging field of research that promises to produce alternatives to natural enzymes for a variety of applications. The search for the most cost-effective and efficient inorganic nanomaterials, such as metal oxides, cannot be won by pristine CuO. However, unlike CuO, the Zn-doped CuO (Zn-CuO) nanoparticles reported in this paper reveal superior peroxidase-like enzyme activity. This places Zn-CuO in a good position to participate in a range of activities aimed at developing diverse enzyme applications. The peroxidase-like activity was tested and confirmed against various chromogenic substrates in the presence of H2O2 and obeyed the Michaelis-Menten enzymatic pathway. The mechanism of enhanced enzymatic activity was proved by employing terephthalic acid as a fluorescence probe and by electron spin resonance. The nanozyme, when tested for the detection of glucose, showed a substantial enhancement in the detection selectivity. The limit of detection (LOD) was also decreased reaching a limit as low as 0.27 ppm. Such a low LOD has not been reported so far for the metal oxides without any surface modifications. Moreover, the nanozyme (Zn-CuO) was utilized to detect the three antioxidants tannic acid, tartaric acid, and ascorbic acid and the relative strength of their antioxidant capacity was compared.
基于纳米材料的酶模拟物(纳米酶)是一个新兴的研究领域,有望为各种应用提供替代天然酶的选择。寻找最具成本效益和效率的无机纳米材料,如金属氧化物,不能仅依靠原始的 CuO 来实现。然而,与 CuO 不同的是,本文报道的 Zn 掺杂的 CuO(Zn-CuO)纳米颗粒显示出优异的过氧化物酶样酶活性。这使得 Zn-CuO 能够参与一系列旨在开发各种酶应用的活动。过氧化物酶样活性在 H2O2 存在下通过各种显色底物进行了测试和证实,并遵循 Michaelis-Menten 酶促途径。通过使用对苯二甲酸作为荧光探针和电子自旋共振,证明了增强酶活性的机制。该纳米酶在检测葡萄糖时显示出检测选择性的显著增强。检测限(LOD)也降低了,达到低至 0.27ppm 的水平。到目前为止,对于没有任何表面修饰的金属氧化物,还没有报道过如此低的 LOD。此外,还利用纳米酶(Zn-CuO)来检测三种抗氧化剂单宁酸、酒石酸和抗坏血酸,并比较了它们抗氧化能力的相对强度。