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Metabolite Diversity in Alkaloid Biosynthesis: A Multilane (Diastereomer) Highway for Camptothecin Synthesis in Camptotheca acuminata

机译:生物碱生物合成中的代谢物多样性:喜树碱中喜树碱合成的多道(非对映异构体)高速公路

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摘要

Camptothecin is a monoterpene indole alkaloid (MIA) used to produce semisynthetic antitumor drugs. We investigated camptothecin synthesis in Camptotheca acuminata by combining transcriptome and expression data with reverse genetics, biochemistry, and metabolite profiling. RNAi silencing of enzymes required for the indole and seco-iridoid (monoterpene) components identified transcriptional crosstalk coordinating their synthesis in roots. Metabolite profiling and labeling studies of wild-type and RNAi lines identified plausible intermediates for missing pathway steps and demonstrated nearly all camptothecin pathway intermediates are present as multiple isomers. Unlike previously characterized -producing plants, C. acuminata does not synthesize 3-α(S)-strictosidine as its central intermediate and instead uses an alternative seco-iridoid pathway that produces multiple isomers of strictosidinic acid. NMR analysis demonstrated that the two major strictosidinic acid isomers are (R) and (S) diastereomers at their glucosylated C21 positions. The presence of multiple diastereomers throughout the pathway is consistent with their use in synthesis before finally being resolved to a single camptothecin isomer after deglucosylation, much as a multilane highway allows parallel tracks to converge at a common destination. A model “diastereomer” pathway for camptothecin biosynthesis in C. acuminata is proposed that fundamentally differs from previously studied pathways.
机译:喜树碱是用于生产半合成抗肿瘤药物的单萜吲哚生物碱(MIA)。我们通过结合转录组和表达数据与反向遗传学,生物化学和代谢物谱分析研究了喜树中喜树碱的合成。吲哚和癸二酮(单萜)成分所需的酶的RNAi沉默可以识别转录串扰,从而协调它们在根中的合成。野生型和RNAi品系的代谢物谱分析和标记研究确定了缺少途径步骤的合理中间体,并证明几乎所有喜树碱途径中间体均以多种异构体形式存在。与先前表征的生产植物不同,尖孢梭菌不合成3-α(S)-strictosidine作为其中心中间体,而是使用另一种可产生类固醇-己二酸异构体的癸二醛-艾类化合物途径。 NMR分析表明,两个主要的严格的芥子酸异构体在其糖基化的C21位置是(R)和(S)非对映异构体。整个途径中存在多个非对映异构体,与它们在合成中的应用相一致,最终在脱糖基化后最终被分解为单个喜树碱异构体,就像一条多车道高速公路允许平行轨道在一个公共目的地汇聚一样。提出了一种在喜树生物中喜树碱生物合成的模型“非对映异构体”途径,该途径与先前研究的途径根本不同。

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