Key Laboratory of Carbohydrate Chemistry and Biotechnology, Ministry of Education, School of Biotechnology, Jiangnan University, Wuxi, 214122, PR China.
School of Life Sciences and Health Engineering, Jiangnan University, Wuxi, 214122, PR China.
Nat Commun. 2024 Jan 2;15(1):30. doi: 10.1038/s41467-023-44420-7.
Plant-derived alkaloids are an important class of pharmaceuticals. However, they still rely on phytoextraction to meet their diverse market demands. Since multistep biocatalytic cascades have begun to revolutionize the manufacture of natural or unnatural products, to address the synthetic challenges of alkaloids, herein we establish an artificially concise four-enzyme biocatalytic cascade with avoiding plant-derived P450 modification for synthesizing phenethylisoquinoline alkaloids (PEIAs) after enzyme discovery and enzyme engineering. Efficient biosynthesis of diverse natural and unnatural PEIAs is realized from readily available substrates. Most importantly, the scale-up preparation of the colchicine precursor (S)-autumnaline with a high titer is achieved after replacing the rate-limiting O-methylation by the plug-and-play strategy. This study not only streamlines future engineering endeavors for colchicine biosynthesis, but also provides a paradigm for constructing more artificial biocatalytic cascades for the manufacture of diverse alkaloids through synthetic biology.
植物源生物碱是一类重要的药物。然而,它们仍然依赖于植物提取来满足多样化的市场需求。由于多步生物催化级联反应已经开始彻底改变天然或非天然产物的制造,为了解决生物碱的合成挑战,在此,我们建立了一个人工简洁的四酶生物催化级联反应,避免了植物来源的 P450 修饰,用于合成苯乙基异喹啉生物碱(PEIAs),这是在酶发现和酶工程之后进行的。从易得的底物中高效合成了多种天然和非天然的 PEIAs。最重要的是,通过插入即用策略取代限速的 O-甲基化,实现了高浓度的秋水仙碱前体(S)-秋水仙素的规模化制备。本研究不仅简化了未来秋水仙碱生物合成的工程努力,而且为通过合成生物学构建更多用于制造各种生物碱的人工生物催化级联反应提供了范例。