Tatsis Evangelos C, Carqueijeiro Inês, Dugé de Bernonville Thomas, Franke Jakob, Dang Thu-Thuy T, Oudin Audrey, Lanoue Arnaud, Lafontaine Florent, Stavrinides Anna K, Clastre Marc, Courdavault Vincent, O'Connor Sarah E
John Innes Centre, Department of Biological Chemistry, Norwich Research Park, Norwich, NR4 7UH, UK.
Université François-Rabelais de Tours, EA2106 Biomolécules et Biotechnologies Végétales, Parc de Grandmont, 37200, Tours, France.
Nat Commun. 2017 Aug 22;8(1):316. doi: 10.1038/s41467-017-00154-x.
Monoterpene indole alkaloids comprise a diverse family of over 2000 plant-produced natural products. This pathway provides an outstanding example of how nature creates chemical diversity from a single precursor, in this case from the intermediate strictosidine. The enzymes that elicit these seemingly disparate products from strictosidine have hitherto been elusive. Here we show that the concerted action of two enzymes commonly involved in natural product metabolism-an alcohol dehydrogenase and a cytochrome P450-produces unexpected rearrangements in strictosidine when assayed simultaneously. The tetrahydro-β-carboline of strictosidine aglycone is converted into akuammicine, a Strychnos alkaloid, an elusive biosynthetic transformation that has been investigated for decades. Importantly, akuammicine arises from deformylation of preakuammicine, which is the central biosynthetic precursor for the anti-cancer agents vinblastine and vincristine, as well as other biologically active compounds. This discovery of how these enzymes can function in combination opens a gateway into a rich family of natural products.The biosynthetic pathway of preakuammicine, a monoterpene precursor of the anti-cancer agent vinblastine, has remained largely unexplored. Here, the authors provide transcriptomic and biochemical data to identify two enzymes that, in tandem, convert strictosidine to akuammicine, the stable shunt product of preakuammicine.
单萜吲哚生物碱是一个由2000多种植物产生的天然产物组成的多样化家族。这条途径为自然界如何从单一前体(在这种情况下是中间产物士的宁定)创造化学多样性提供了一个突出的例子。迄今为止,从士的宁定产生这些看似不同产物的酶一直难以捉摸。在这里,我们表明,天然产物代谢中常见的两种酶——一种醇脱氢酶和一种细胞色素P450——的协同作用在同时检测时会使士的宁定产生意想不到的重排。士的宁定苷元的四氢-β-咔啉转化为阿枯米辛,一种马钱子属生物碱,这是一种几十年来一直被研究的难以捉摸的生物合成转化。重要的是,阿枯米辛源自前阿枯米辛的脱甲酰化,前阿枯米辛是抗癌药物长春碱和长春新碱以及其他生物活性化合物的核心生物合成前体。这些酶如何协同发挥作用的这一发现为一个丰富的天然产物家族打开了一扇大门。前阿枯米辛是抗癌药物长春碱的单萜前体,其生物合成途径在很大程度上仍未被探索。在这里,作者提供了转录组学和生化数据,以鉴定两种酶,它们串联起来可将士的宁定转化为阿枯米辛,阿枯米辛是前阿枯米辛的稳定分流产物。