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通过酶的发现与工程实现植物螺环氧化吲哚生物碱的集体生物合成。

Collective Biosynthesis of Plant Spirooxindole Alkaloids through Enzyme Discovery and Engineering.

作者信息

Chu Danni, Wang Hongkui, Nie Zhiwen, Li Kang-Li, Cao Jiaqing, Yang Meijing, Yin Qin, Gu Yang, Jiang Yindi

机构信息

State Key Laboratory of Quantitative Synthetic Biology, Shenzhen Institute of Synthetic Biology, Shenzhen Institutes of Advanced Technology, Chinese Academy of Sciences, Shenzhen 518055, China.

University of Chinese Academy of Sciences, Beijing 100049, China.

出版信息

J Am Chem Soc. 2025 Jun 25;147(25):21600-21609. doi: 10.1021/jacs.5c02990. Epub 2025 Jun 12.

Abstract

Collective synthesis is a well-established strategy to produce natural product collections from common intermediates. Extending this concept to enzymatic systems, collective biosynthesis offers a sustainable approach to diverse molecular collections but faces distinct challenges, including incomplete pathway knowledge and narrow substrate specificity of biosynthetic enzymes. Here, we overcome these limitations through enzyme discovery and protein engineering to achieve collective biosynthesis of spirooxindole alkaloids, an important class of natural products with diverse biological activities. We identified two key enzymes that catalyze enzymatic epimerization, working sequentially with a previously discovered cytochrome P450 enzyme to fully elucidate the biosynthetic pathway of pentacyclic spirooxindole alkaloids. Structure-guided engineering enhanced substrate recognition capability, enabling collective biosynthesis of 12 tetracyclic and pentacyclic spirooxindole natural products. We also generated new-to-nature fluorinated and deuterated derivatives through precursor-directed biosynthesis. This work provides crucial insights into plant spirooxindole alkaloid biosynthesis while establishing a powerful approach for sustainable production of complex natural products.

摘要

集体合成是一种成熟的策略,用于从常见中间体生产天然产物库。将这一概念扩展到酶系统,集体生物合成提供了一种可持续的方法来合成多样化的分子库,但面临着独特的挑战,包括不完整的途径知识和生物合成酶狭窄的底物特异性。在这里,我们通过酶的发现和蛋白质工程克服了这些限制,实现了螺环氧化吲哚生物碱的集体生物合成,这是一类具有多种生物活性的重要天然产物。我们鉴定出两种催化酶促差向异构化的关键酶,它们与先前发现的细胞色素P450酶顺序作用,以充分阐明五环螺环氧化吲哚生物碱的生物合成途径。基于结构的工程改造增强了底物识别能力,实现了12种四环和五环螺环氧化吲哚天然产物的集体生物合成。我们还通过前体导向生物合成产生了新型的氟化和氘代衍生物。这项工作为植物螺环氧化吲哚生物碱的生物合成提供了关键见解,同时建立了一种强大的方法来可持续生产复杂的天然产物。

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