首页> 美国卫生研究院文献>Proceedings of the National Academy of Sciences of the United States of America >CYP76AH1 catalyzes turnover of miltiradiene in tanshinones biosynthesis and enables heterologous production of ferruginol in yeasts
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CYP76AH1 catalyzes turnover of miltiradiene in tanshinones biosynthesis and enables heterologous production of ferruginol in yeasts

机译:CYP76AH1催化丹参酮生物合成中miltiradiene的转换并能在酵母中异源生产ferruginol

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摘要

Cytochrome P450 enzymes (CYPs) play major roles in generating highly functionalized terpenoids, but identifying the exact biotransformation step(s) catalyzed by plant CYP in terpenoid biosynthesis is extremely challenging. Tanshinones are abietane-type norditerpenoid naphthoquinones that are the main lipophilic bioactive components of the Chinese medicinal herb danshen (Salvia miltiorrhiza). Whereas the diterpene synthases responsible for the conversion of (E,E,E)-geranylgeranyl diphosphate into the abietane miltiradiene, a potential precursor to tanshinones, have been recently described, molecular characterization of further transformation of miltiradiene remains unavailable. Here we report stable-isotope labeling results that demonstrate the intermediacy of miltiradiene in tanshinone biosynthesis. We further use a next-generation sequencing approach to identify six candidate CYP genes being coregulated with the diterpene synthase genes in both the rhizome and danshen hairy roots, and demonstrate that one of these, CYP76AH1, catalyzes a unique four-electron oxidation cascade on miltiradiene to produce ferruginol both in vitro and in vivo. We then build upon the previous establishment of miltiradiene production in Saccharomyces cerevisiae, with incorporation of CYP76AH1 and phyto-CYP reductase genes leading to heterologous production of ferruginol at 10.5 mg/L. As ferruginol has been found in many plants including danshen, the results and the approaches that were described here provide a solid foundation to further elucidate the biosynthesis of tanshinones and related diterpenoids. Moreover, these results should facilitate the construction of microbial cell factories for the production of phytoterpenoids.
机译:细胞色素P450酶(CYP)在产生高度功能化的萜类化合物中起主要作用,但是鉴定植物CYP催化的萜类生物合成中确切的生物转化步骤极为困难。丹参酮是abinetane类型的去甲萜类萘醌,是中草药丹参(丹参)的主要亲脂生物活性成分。尽管最近已描述了负责将(E,E,E)-香叶基香叶基二磷酸转化为扁豆酮的潜在前体的壬二基香叶基二磷酸的二萜合酶,但是仍然无法获得进一步的分子表征。在这里我们报告稳定同位素标记的结果,表明丹参酮生物合成中的radi虫中间体。我们进一步使用下一代测序方法来鉴定在根状茎和丹参毛状根中与二萜合酶基因共调节的六个候选CYP基因,并证明其中一个CYP76AH1可以催化miltiradiene上独特的四电子氧化级联反应可以在体内和体外产生铁氨酚。然后,我们以酿酒酵母中先前建立的radi丹生产为基础,并掺入CYP76AH1和植物CYP还原酶基因,导致异源产生10.5 mg / L的异丁香酚。由于在包括丹参在内的许多植物中都发现了铁氨酚,此处所述的结果和方法为进一步阐明丹参酮和相关二萜的生物合成提供了坚实的基础。此外,这些结果应有助于建造用于生产植物萜类化合物的微生物细胞工厂。

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