生物合成
金鸡纳
色胺
化学
烟草
生物化学
酶
生物碱
基因簇
吲哚试验
金鸡纳生物碱
基因
天然产物
吲哚生物碱
催化作用
转录组
立体化学
生物
组合化学
有机化学
核糖核酸
代谢工程
药物发现
作者
Blaise Kimbadi Lombe,Tingan Zhou,Gyumin Kang,Joshua C. Wood,J. R. Hamilton,Klaus Gase,Yoko Nakamura,Ryan M. Alam,Ron P. Dirks,Lorenzo Caputi,C. Robin Buell,Sarah E. O’Connor
出处
期刊:Nature
[Nature Portfolio]
日期:2026-03-18
被引量:2
标识
DOI:10.1038/s41586-026-10227-x
摘要
. Examples of cinchona alkaloids include quinine, a historically important antimalarial drug, and cinchonidine, a chiral catalyst widely used in process chemistry. However, it is still largely unknown how plants synthesize these well-known compounds. Here we report the discovery of genes responsible for the biosynthesis of the distinctive quinoline-quinuclidine scaffold of cinchona alkaloids. A combination of isotopic labelling, gene silencing, single-nucleus RNA sequencing and comparative transcriptomics revealed the involvement of several unexpected biosynthetic transformations. We also describe a previously unreported quaternary amine intermediate that is generated through an unusual enzymatic cyclization. We show that dihydroquini(di)none, dihydrocinchoni(di)none and cinchoni(di)none can be produced when these genes are heterologously expressed in Nicotiana benthamiana. Furthermore, we demonstrate that this N. benthamiana expression platform can convert non-native fluorinated and chlorinated tryptamine substrates into dihydrocinchoni(di)none analogues, which suggests that these biosynthetic enzymes can be leveraged to produce halogenated cinchona alkaloid derivatives. These discoveries uncover the long-standing mystery of how the cinchona alkaloid scaffold is biosynthesized and highlight prospects for access to these compounds through metabolic engineering approaches.
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