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分层多孔生物催化 MOF 微反应器作为一种通用平台,可增强多酶和辅因子依赖的生物催化。

Hierarchically Porous Biocatalytic MOF Microreactor as a Versatile Platform towards Enhanced Multienzyme and Cofactor-Dependent Biocatalysis.

机构信息

School of Chemical Engineering, The University of New South Wales, Sydney, NSW, 2052, Australia.

Australian Centre for NanoMedicine, The University of New South Wales, Sydney, NSW, 2052, Australia.

出版信息

Angew Chem Int Ed Engl. 2021 Mar 1;60(10):5421-5428. doi: 10.1002/anie.202014002. Epub 2021 Jan 19.

Abstract

Metal-organic frameworks (MOFs) have recently emerged as excellent hosting matrices for enzyme immobilization, offering superior physical and chemical protection for biocatalytic reactions. However, for multienzyme and cofactor-dependent biocatalysis, the subtle orchestration of enzymes and cofactors is largely disrupted upon immobilizing in the rigid crystalline MOF network, which leads to a much reduced biocatalytic efficiency. Herein, we constructed hierarchically porous MOFs by controlled structural etching to enhance multienzyme and cofactor-dependent enzyme biocatalysis. The expanded size of the pores can provide sufficient space for accommodated enzymes to reorientate and spread within MOFs in their lower surface energy state as well as to decrease the inherent barriers to accelerate the diffusion rate of reactants and intermediates. Moreover, the developed hierarchically porous MOFs demonstrated outstanding tolerance to inhospitable surroundings and recyclability.

摘要

金属-有机骨架(MOFs)最近作为酶固定化的优秀宿主基质出现,为生物催化反应提供了卓越的物理和化学保护。然而,对于多酶和辅因子依赖的生物催化,在刚性结晶 MOF 网络中固定化时,酶和辅因子的微妙协调会被大大破坏,导致生物催化效率大大降低。在此,我们通过控制结构蚀刻构建了分级多孔 MOFs,以增强多酶和辅因子依赖的酶生物催化。扩展的孔尺寸可以为容纳的酶提供足够的空间,使它们在较低表面能状态下在 MOFs 内重新定向和扩散,并降低内在障碍以加速反应物和中间体的扩散速率。此外,开发的分级多孔 MOFs 表现出对恶劣环境和可回收性的出色耐受性。

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