Beijing Key Laboratory of Photoelectronic/Electrophotonic Conversion Materials, Key Laboratory of Cluster Science, Ministry of Education, Advanced Technology Research Institute (Jinan), Frontiers Science Center for High Energy Material, Advanced Research Institute of Multidisciplinary Science, School of Chemistry and Chemical Engineering, School of Medical Technology, Beijing Institute of Technology, Beijing 100081, P. R. China.
J Am Chem Soc. 2023 Jun 21;145(24):13469-13475. doi: 10.1021/jacs.3c04183. Epub 2023 Jun 7.
Immobilization of fragile enzymes in crystalline porous materials offers new opportunities to expand the applications of biocatalysts. However, limited by the pore size and/or harsh synthesis conditions of the porous hosts, enzymes often suffer from dimension limitation or denaturation during the immobilization process. Taking advantage of the dynamic covalent chemistry feature of covalent organic frameworks (COFs), herein, we report a preprotection strategy to encapsulate enzymes in COFs during the self-repairing and crystallization process. Enzymes were first loaded in the low-crystalline polymer networks with mesopores formed at the initial growth stage, which could offer effective protection for enzymes from the harsh reaction conditions, and subsequently the encapsulation proceeded during the self-repairing and crystallization of the disordered polymer into the crystalline framework. Impressively, the biological activity of the enzymes can be well-maintained after encapsulation, and the obtained enzyme@COFs also show superior stability. Furthermore, the preprotection strategy circumvents the size limitation for enzymes, and its versatility was verified by enzymes with different sizes and surface charges, as well as a two-enzyme cascade system. This study offers a universal design idea to encapsulate enzymes in robust porous supports and holds promise for developing high-performance immobilized biocatalysts.
将脆弱的酶固定在结晶多孔材料中为扩大生物催化剂的应用提供了新的机会。然而,受多孔宿主的孔径和/或苛刻的合成条件的限制,酶在固定化过程中常常受到尺寸限制或变性。利用共价有机框架(COFs)的动态共价化学特性,本文报道了一种预保护策略,即在自修复和结晶过程中将酶封装在 COFs 中。首先,酶被加载到具有介孔的低结晶聚合物网络中,这些介孔在初始生长阶段形成,这可以为酶提供有效的保护,使其免受苛刻反应条件的影响,随后,在无序聚合物自修复和结晶为结晶骨架的过程中进行封装。令人印象深刻的是,酶的生物活性在封装后可以得到很好的保持,并且所得的酶@COFs 也表现出优异的稳定性。此外,该预保护策略规避了酶的尺寸限制,并通过不同大小和表面电荷的酶以及双酶级联系统验证了其通用性。该研究为将酶封装在坚固的多孔载体中提供了一种通用的设计思路,有望开发出高性能的固定化生物催化剂。