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通过共价有机框架共固定化全细胞和酶以强化生物催化过程。

Co-immobilization of whole cells and enzymes by covalent organic framework for biocatalysis process intensification.

机构信息

State Key Laboratory of Medicinal Chemical Biology, College of Pharmacy, Nankai University, Tianjin, 300071, China.

College of Chemistry, Nankai University, Tianjin, 300071, China.

出版信息

Nat Commun. 2024 Jun 29;15(1):5510. doi: 10.1038/s41467-024-49831-8.

Abstract

Co-immobilization of cells and enzymes is often essential for the cascade biocatalytic processes of industrial-scale feasibility but remains a vast challenge. Herein, we create a facile co-immobilization platform integrating enzymes and cells in covalent organic frameworks (COFs) to realize the highly efficient cascade of inulinase and E. coli for bioconversion of natural products. Enzymes can be uniformly immobilized in the COF armor, which coats on the cell surface to produce cascade biocatalysts with high efficiency, stability and recyclability. Furthermore, this one-pot in situ synthesis process facilitates a gram-scale fabrication of enzyme-cell biocatalysts, which can generate a continuous-flow device conversing inulin to D-allulose, achieving space-time yield of 161.28 g L d and high stability (remaining >90% initial catalytic efficiency after 7 days of continuous reaction). The created platform is applied for various cells (e.g., E. coli, Yeast) and enzymes, demonstrating excellent universality. This study paves a pathway to break the bottleneck of extra- and intracellular catalysis, creates a high-performance and customizable platform for enzyme-cell cascade biomanufacturing, and expands the scope of biocatalysis process intensification.

摘要

细胞和酶的共固定化对于工业规模可行性的级联生物催化过程通常是必不可少的,但仍然是一个巨大的挑战。在此,我们创建了一个简便的共固定化平台,将酶和细胞整合在共价有机骨架(COFs)中,以实现菊粉酶和大肠杆菌的高效级联,用于天然产物的生物转化。酶可以均匀地固定在 COF 装甲中,该装甲涂覆在细胞表面上,以产生高效、稳定和可回收的级联生物催化剂。此外,这种一锅原位合成工艺有利于酶细胞生物催化剂的克级制造,可以将菊粉转化为 D-阿洛酮糖,时空产率达到 161.28 g L d,且稳定性高(连续反应 7 天后,仍保持初始催化效率的 90%以上)。所创建的平台适用于各种细胞(例如大肠杆菌、酵母)和酶,表现出优异的通用性。该研究为打破细胞内外催化的瓶颈铺平了道路,为酶细胞级联生物制造创建了一个高性能和可定制的平台,并扩展了生物催化过程强化的范围。

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