获得enzyme@porous基于机械化学合成的有机框架生物复合材料

Qing Chen, Zhi-Wei Li, Siming Huang, Guosheng Chen and Gangfeng Ouyang
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引用次数: 0

摘要

酶是一种高效、选择性的生物催化剂,在工业、医药、生物技术等各个领域都是必不可少的,并且由于其在环境温度下的功效,对绿色化学至关重要。然而,酶对环境条件很敏感,这限制了它们的稳定性和可重用性,限制了它们更广泛的实际应用。包括金属有机框架、共价有机框架和氢键有机框架在内的多孔有机框架已成为酶固定化的强大平台,它们具有高孔隙率、定制孔结构和强化学稳定性来保护被封装的酶。传统的表面固定化方法可以稳定酶,但经常遇到负载效率低和酶浸出的问题。原位包埋方法解决了这些挑战,但通常依赖于溶剂密集型,高温液相合成,损害酶的功能。这篇综述集中在机械化学合成作为一种新的,绿色的方法来创建酶嵌入的多孔有机框架,称为enzyme@porous有机框架。机械化学合成通过使用温和的机械力,在没有(或几乎没有)溶剂的环境条件下促进酶的包封,在保持酶稳定性的同时确保前体-酶的有效整合。我们探讨了机械化学合成的原理、影响参数以及相对于液相技术的优势,强调了其生产多功能生物复合材料的潜力。本综述旨在为具有增强稳定性和性能的可扩展生物催化系统铺平道路,推进生物催化在工业应用中的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Access to enzyme@porous organic framework biocomposites based on mechanochemical synthesis

Enzymes serve as highly efficient and selective biological catalysts, essential across diverse fields such as industry, medicine, and biotechnology, and are vital to green chemistry due to their efficacy at ambient temperatures. However, enzymes are sensitive to environmental conditions, which restricts their stability and reusability, limiting their broader practical applications. Porous organic frameworks encompassing metal–organic frameworks, covalent organic frameworks, and hydrogen-bonded organic frameworks have emerged as robust platforms for enzyme immobilization, offering high porosity, tailored pore structures, and strong chemical stability to safeguard encapsulated enzymes. Traditional surface immobilization methods can stabilize enzymes but often encounter low loading efficiency and enzyme leaching issues. In situ embedding methods address these challenges but typically rely on solvent-intensive, high-temperature liquid-phase syntheses that compromise enzyme functionality. This review centers on mechanochemical synthesis as a novel, green approach to creating enzyme-embedded porous organic frameworks, referred to as enzyme@porous organic frameworks. By employing mild mechanical forces, mechanochemical synthesis facilitates enzyme encapsulation under ambient conditions in the absence (or near-absence) of solvents, maintaining enzyme stability while ensuring efficient precursor-enzyme integration. We explore the mechanochemical synthesis principles, influential parameters, and advantages over liquid-phase techniques, underscoring its potential to produce multifunctional biocomposites. This review aspires to pave the way for scalable biocatalytic systems with enhanced stability and performance, advancing biocatalysis in industrial applications.

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