Engineering living cells with polymers for recyclable photoenzymatic catalysis

IF 42.8 1区 化学 Q1 CHEMISTRY, PHYSICAL Nature Catalysis Pub Date : 2024-12-11 DOI:10.1038/s41929-024-01259-5
Jian Ning, Zhiyong Sun, René Hübner, Henrik Karring, Morten Frendø Ebbesen, Mathias Dimde, Changzhu Wu
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Abstract

Engineering cell membranes for catalysis is challenging due to their inherent complexity. Here we introduce a polymeric strategy to overcome these challenges by chemically modifying cell membranes with catalytic polymers, enabling robust, recyclable and photoenzymatic catalysis. Through a one-step in situ atom transfer radical polymerization on living Escherichia coli cells, polymers are generated to protect the cells from environmental stressors while facilitating chemoenzymatic synthesis by integrating catalytic polymers with intracellular enzymes. As a proof of concept, a photoenzymatic cascade with an anthraquinone-based polymer and benzaldehyde lyase is demonstrated, converting benzyl alcohol into benzoin and achieving bioconversion yields that are 15 times higher than controls. Additionally, cells serve as large biological scaffolds for polymers, enabling recycling of macromolecular catalysts. A recyclable chemoenzymatic system incorporating an organometallic polymer with intracellular enzymes is also presented. Our versatile, straightforward approach offers a technology platform for engineering cell membranes for cascade synthesis, with broad implications for synthetic chemistry, polymer chemistry and biotechnology. Compatibility issues often limit chemoenzymatic systems. Now it is shown that the proximity between catalytic polymers grafted from the membrane of microorganisms and intracellular heterologous enzymes enhances the reaction rates of a photoenzymatic system, while the coating increases the stability.

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工程活细胞的聚合物可回收光酶催化
由于其固有的复杂性,用于催化的细胞膜工程具有挑战性。在这里,我们介绍了一种聚合物策略,通过用催化聚合物对细胞膜进行化学修饰来克服这些挑战,从而实现稳健、可回收和光酶催化。通过在活的大肠杆菌细胞上进行一步原位原子转移自由基聚合,产生的聚合物可以保护细胞免受环境胁迫,同时通过将催化聚合物与细胞内酶结合促进化学酶合成。作为概念验证,展示了以蒽醌为基础的聚合物和苯甲醛裂解酶的光酶级联反应,将苯甲醇转化为安息香,并实现了比对照高15倍的生物转化产量。此外,细胞作为聚合物的大型生物支架,使大分子催化剂的回收成为可能。一个可回收的化学酶系统纳入有机金属聚合物与细胞内酶也提出。我们的多用途、直接的方法为级联合成的工程细胞膜提供了一个技术平台,在合成化学、聚合物化学和生物技术方面具有广泛的意义。
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来源期刊
Nature Catalysis
Nature Catalysis Chemical Engineering-Bioengineering
CiteScore
52.10
自引率
1.10%
发文量
140
期刊介绍: Nature Catalysis serves as a platform for researchers across chemistry and related fields, focusing on homogeneous catalysis, heterogeneous catalysis, and biocatalysts, encompassing both fundamental and applied studies. With a particular emphasis on advancing sustainable industries and processes, the journal provides comprehensive coverage of catalysis research, appealing to scientists, engineers, and researchers in academia and industry. Maintaining the high standards of the Nature brand, Nature Catalysis boasts a dedicated team of professional editors, rigorous peer-review processes, and swift publication times, ensuring editorial independence and quality. The journal publishes work spanning heterogeneous catalysis, homogeneous catalysis, and biocatalysis, covering areas such as catalytic synthesis, mechanisms, characterization, computational studies, nanoparticle catalysis, electrocatalysis, photocatalysis, environmental catalysis, asymmetric catalysis, and various forms of organocatalysis.
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