Ran Lu, Lu Yuan, Chen Li, He Mengru, Deng Zhangshuang
Hubei Key Laboratory of Natural Products Research and Development, College of Biological and Pharmaceutical Sciences, China Three Gorges University, Yichang, 443002, China.
Adv Sci (Weinh). 2025 May;12(20):e2500345. doi: 10.1002/advs.202500345. Epub 2025 Apr 30.
Enzymes have been recognized as highly efficient biocatalysts, whereas characteristics such as poor stability and single reaction type greatly significantly limit their wide application. Hence, the exploitation of suitable carriers for immobilized enzymes enables the provision of a protective layer for the enzyme, with the capability of chemical and biological cascade catalysis. Among the various immobilization carriers, metal-organic frameworks (MOFs), covalent organic frameworks (COFs) and hydrogen-bonded organic frameworks (HOFs) have been emerging as a promising strategy to surpass the inherent instability and other limitations of free enzymes. Specifically, the integration of such artificial porous materials as carriers improves the stability and reusability of enzymes, while simultaneously affording a platform for multifunctional applications. Herein, this review systematically discusses the various preparation strategies and advantages of artificial porous materials, while elucidating the effects of different immobilization methods on enzyme activity. Furthermore, the innovative applications of artificial porous materials as multifunctional carriers in the field of enzyme immobilization fields such as enzyme carriers, photocatalysts, chemical catalysts and sensing are also comprehensively summarized here, thus demonstrating their multifunctional characteristics and promising applications in addressing complex biotransformation challenges.
酶已被公认为是高效的生物催化剂,然而,稳定性差和单一反应类型等特性极大地限制了它们的广泛应用。因此,开发合适的固定化酶载体能够为酶提供一个保护层,并具备化学和生物级联催化的能力。在各种固定化载体中,金属有机框架(MOF)、共价有机框架(COF)和氢键有机框架(HOF)已成为一种有前景的策略,以克服游离酶固有的不稳定性和其他局限性。具体而言,将此类人工多孔材料作为载体进行整合,可提高酶的稳定性和可重复使用性,同时为多功能应用提供一个平台。在此,本综述系统地讨论了人工多孔材料的各种制备策略和优势,同时阐明了不同固定化方法对酶活性的影响。此外,本文还全面总结了人工多孔材料作为多功能载体在酶固定化领域(如酶载体、光催化剂、化学催化剂和传感)的创新应用,从而展示了它们的多功能特性以及在应对复杂生物转化挑战方面的广阔应用前景。