School of Chemical Engineering and Australian Centre for NanoMedicine, The University of New South Wales, Sydney, NSW 2052, Australia.
Electron Microscope Unit, Mark Wainwright Analytical Centre, The, University of New South Wales, Sydney, NSW 2052, Australia.
Angew Chem Int Ed Engl. 2023 Jun 5;62(23):e202303001. doi: 10.1002/anie.202303001. Epub 2023 May 3.
Selecting a suitable support material for enzyme immobilization with excellent biocatalytic activity and stability is a critical aspect in the development of functional biosystems. The highly stable and metal-free properties of covalent-organic frameworks (COFs) make them ideal supports for enzyme immobilization. Herein, we constructed three kinds of COFs via a biofriendly and one-pot synthetic strategy at room temperature in aqueous solution. Among the three developed COFs (COF-LZU1, RT-COF-1 and ACOF-1), the horseradish peroxidase (HRP)-incorporated COF-LZU1 is found to retain the highest activity. Structural analysis reveals that a weakest interaction between the hydrated enzyme and COF-LZU1, an easiest accessibility by the COF-LZU1 to the substrate, as well as an optimal conformation of enzyme together promote the bioactivity of HRP-COF-LZU1. Furthermore, the COF-LZU1 is revealed to be a versatile nanoplatform for encapsulating multiple enzymes. The COF-LZU1 also offers superior protection for the immobilized enzymes under harsh conditions and during recycling. The comprehensive understanding of interfacial interactions of COF host and enzyme guest, the substrate diffusion, as well as the enzyme conformation alteration within COF matrices represents an opportunity to design the ideal biocatalysts and opens a broad range of applications of these nanosystems.
选择具有优异生物催化活性和稳定性的合适支持材料用于酶固定化是功能生物系统发展的关键方面。共价有机框架(COFs)具有高度稳定和无金属的特性,使其成为酶固定化的理想载体。本文在室温下、水溶液中通过一种生物友好的一锅合成策略构建了三种 COFs。在这三种开发的 COFs(COF-LZU1、RT-COF-1 和 ACOF-1)中,发现固定化辣根过氧化物酶(HRP)的 COF-LZU1 保留了最高的活性。结构分析表明,水合酶与 COF-LZU1 之间的相互作用最弱,COF-LZU1 对底物的可及性最高,以及酶的最佳构象共同促进了 HRP-COF-LZU1 的生物活性。此外,COF-LZU1 被揭示为封装多种酶的通用纳米平台。COF-LZU1 还为固定化酶在恶劣条件下和回收过程中提供了更好的保护。全面了解 COF 主体和酶客体之间的界面相互作用、底物扩散以及 COF 基质中酶构象的改变,为设计理想的生物催化剂提供了机会,并为这些纳米系统开辟了广泛的应用前景。