羟基化
ATP合酶
化学
催化作用
组合化学
酶
生物化学
计算机科学
生化工程
计算生物学
工程类
生物
作者
Prabhakar Lal Srivastava,Sam T. Johns,Angus Voice,Katharine Morley,Andrés M. Escorcia,David J. Miller,Rudolf K. Allemann,Marc W. van der Kamp
出处
期刊:ACS Catalysis
[American Chemical Society]
日期:2024-07-09
卷期号:14 (14): 11034-11043
被引量:4
标识
DOI:10.1021/acscatal.4c02032
摘要
Engineering sesquiterpene synthases to form predefined alternative products is a major challenge due to their diversity in cyclization mechanisms and our limited understanding of how amino acid changes affect the steering of these mechanisms. Here, we use a combination of atomistic simulation and site-directed mutagenesis to engineer a selina-4(15),7(11)-diene synthase (SdS) such that its final reactive carbocation is quenched by trapped active site water, resulting in the formation of a complex hydroxylated sesquiterpene (selin-7(11)-en-4-ol). Initially, the SdS G305E variant produced 20% selin-7(11)-en-4-ol. As suggested by modeling of the enzyme-carbocation complex, selin-7(11)-en-4-ol production could be further improved by varying the pH, resulting in selin-7(11)-en-4-ol becoming the major product (48%) at pH 6.0. We incorporated the SdS G305E variant along with genes from the mevalonate pathway into bacterial BL21(DE3) cells and demonstrated the production of selin-7(11)-en-4-ol at a scale of 10 mg/L in batch fermentation. These results highlight opportunities for the simulation-guided engineering of terpene synthases to produce predefined complex hydroxylated sesquiterpenes.
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