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具有酶样特性的纳米材料(纳米酶):下一代人工酶。

Nanomaterials with enzyme-like characteristics (nanozymes): next-generation artificial enzymes.

机构信息

State Key Laboratory of Electroanalytical Chemistry, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun, Jilin 130022, China.

出版信息

Chem Soc Rev. 2013 Jul 21;42(14):6060-93. doi: 10.1039/c3cs35486e.

Abstract

Over the past few decades, researchers have established artificial enzymes as highly stable and low-cost alternatives to natural enzymes in a wide range of applications. A variety of materials including cyclodextrins, metal complexes, porphyrins, polymers, dendrimers and biomolecules have been extensively explored to mimic the structures and functions of naturally occurring enzymes. Recently, some nanomaterials have been found to exhibit unexpected enzyme-like activities, and great advances have been made in this area due to the tremendous progress in nano-research and the unique characteristics of nanomaterials. To highlight the progress in the field of nanomaterial-based artificial enzymes (nanozymes), this review discusses various nanomaterials that have been explored to mimic different kinds of enzymes. We cover their kinetics, mechanisms and applications in numerous fields, from biosensing and immunoassays, to stem cell growth and pollutant removal. We also summarize several approaches to tune the activities of nanozymes. Finally, we make comparisons between nanozymes and other catalytic materials (other artificial enzymes, natural enzymes, organic catalysts and nanomaterial-based catalysts) and address the current challenges and future directions (302 references).

摘要

在过去几十年中,研究人员已经将人工酶确立为在广泛的应用中替代天然酶的高度稳定且低成本的替代品。各种材料,包括环糊精、金属配合物、卟啉、聚合物、树枝状大分子和生物分子,已被广泛探索以模拟天然酶的结构和功能。最近,一些纳米材料被发现具有出人意料的酶样活性,由于纳米研究的巨大进展和纳米材料的独特特性,该领域取得了重大进展。为了突出基于纳米材料的人工酶(纳米酶)领域的进展,本综述讨论了已被探索以模拟不同种类酶的各种纳米材料。我们涵盖了它们在生物传感和免疫分析、干细胞生长和污染物去除等众多领域中的动力学、机制和应用。我们还总结了几种调节纳米酶活性的方法。最后,我们对纳米酶与其他催化材料(其他人工酶、天然酶、有机催化剂和基于纳米材料的催化剂)进行了比较,并讨论了当前的挑战和未来的方向(302 篇参考文献)。

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