生物催化
微型反应器
南极洲假丝酵母
脂肪酶
离子液体
聚乙二醇
化学
PEG比率
蛋白质工程
动力学分辨率
聚乙二醇化
酶
材料科学
化学工程
催化作用
纳米技术
有机化学
经济
对映选择合成
工程类
财务
作者
Xiaoting Hao,Shuo Wang,Xiaoming Zhang,Zhiqiang Ma,Ming Zhang,Hu Shi,Hengquan Yang
标识
DOI:10.1038/s41467-024-54725-w
摘要
The artificial engineering of an enzyme's structural conformation and dynamic properties to promote its catalytic activity and stability outside cellular environments is highly pursued in industrial biotechnology. Here, we describe an elegant strategy of combining the rationally designed liquid-solid hybrid microreactor with a tailor-made polyethylene glycol functional ionic liquid (PEG-IL) microenvironment to exercise a high level of control over the configuration of enzymes for practical continuous-flow biocatalysis. As exemplified by a lipase driven kinetic resolution reaction, the obtained system exhibits a 2.70 to 30.35-fold activity enhancement compared to their batch or traditional IL-based counterparts. Also, our results demonstrate that the thermal stability of encapsulated lipase can be significantly strengthened in the presence of PEG groups, showcasing a long-term continuous-flow stability even up to 1000 h at evaluated temperature of 60 oC. Through systematic experiment and molecular dynamics simulation studies, the conformational changes of the active site cavity in the modified lipases are correlated with enzymatic properties alteration, and the pronounced effects of PEG-groups in stabilizing enzyme's secondary structures by delaying unfolding at elevated temperatures are identified. We believe that this study will guide the design of high-performance enzymatic systems, promoting their utilization in real-world biocatalysis applications.
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