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通过分子印迹技术设计人工酶的最新进展。

Recent development in the design of artificial enzymes through molecular imprinting technology.

机构信息

State Key Laboratory of Supramolecular Structure and Materials, College of Chemistry, Jilin University, Changchun, China.

College of Material, Chemistry and Chemical Engineering, Hangzhou Normal University, Hangzhou, China.

出版信息

J Mater Chem B. 2022 Sep 15;10(35):6590-6606. doi: 10.1039/d2tb00276k.

Abstract

Enzymes, a class of proteins or RNA with high catalytic efficiency and specificity, have inspired generations of scientists to develop enzyme mimics with similar capabilities. Many enzyme mimics have been developed in the past few decades based on small molecules, DNA, and nanomaterials. These artificial enzymes are of great interest because of their low cost and high stability. However, most of these enzyme mimics do not have the desired substrate selectivity. The substrate selectivity of natural enzymes usually stems from a specific binding pocket. A powerful method to create substrate binding cavities is molecular imprinting technology (MIT). Molecularly imprinted polymers (MIPs) have three main characteristics: structural predictability, identification specificity, and application versatility compared with other identification systems. The MIP-based artificial enzymes have the advantages of simple preparation, low cost, and high stability and can realize excellent catalytic activity and selectivity. The development of MIP-based artificial enzymes has been further promoted by optimization methods such as imprinting transition state molecules, post-imprinting modification, opening cross-linked polymers' internal space, and some special preparation methods. Combining molecular imprinting technology with nanozymes, the synergistic effect of both solved the defect of lack of specificity of nanozymes and improved their catalytic activity. This paper summarizes the recent research progress in preparing high-performance artificial enzymes based on MIPs and molecularly imprinted nanozymes. We hope to provide a reference for the design of artificial enzymes, reduce the gap between artificial enzymes and natural enzymes, and thus broaden the application of artificial enzymes in human life and production.

摘要

酶是一类具有高效催化效率和特异性的蛋白质或 RNA,激发了几代科学家开发具有类似功能的酶模拟物。在过去的几十年中,基于小分子、DNA 和纳米材料开发了许多酶模拟物。这些人工酶因其成本低、稳定性高而备受关注。然而,大多数这些酶模拟物没有所需的底物选择性。天然酶的底物选择性通常源于特定的结合口袋。创建底物结合腔的一种强大方法是分子印迹技术(MIT)。与其他识别系统相比,分子印迹聚合物(MIPs)具有三个主要特征:结构可预测性、识别特异性和应用多功能性。基于 MIP 的人工酶具有制备简单、成本低、稳定性高的优点,并能实现优异的催化活性和选择性。通过印迹过渡态分子、后印迹修饰、打开交联聚合物内部空间等优化方法,进一步推动了 MIP 基人工酶的发展,以及一些特殊的制备方法。将分子印迹技术与纳米酶结合,协同作用解决了纳米酶特异性缺乏的缺陷,并提高了其催化活性。本文总结了基于 MIP 和分子印迹纳米酶制备高性能人工酶的最新研究进展。我们希望为人工酶的设计提供参考,缩小人工酶与天然酶之间的差距,从而拓宽人工酶在人类生活和生产中的应用。

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