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阐明药用植物莲(Nelumbo nucifera)中前阿朴啡和双苄基异喹啉生物碱的生物合成途径及其微生物合成。

Pathway elucidation and microbial synthesis of proaporphine and bis-benzylisoquinoline alkaloids from sacred lotus (Nelumbo nucifera).

机构信息

Department of Biology, Concordia University, Montréal, Québec, Canada; Centre for Applied Synthetic Biology, Concordia University, Montréal, Québec, Canada.

Centre for Applied Synthetic Biology, Concordia University, Montréal, Québec, Canada; Concordia Genome Foundry, Concordia University, Montréal, Québec, Canada.

出版信息

Metab Eng. 2023 May;77:162-173. doi: 10.1016/j.ymben.2023.03.010. Epub 2023 Mar 31.

Abstract

Sacred lotus (Nelumbo nucifera) has been utilized as a food, medicine, and spiritual symbol for nearly 3000 years. The medicinal properties of lotus are largely attributed to its unique profile of benzylisoquinoline alkaloids (BIAs), which includes potential anti-cancer, anti-malarial and anti-arrhythmic compounds. BIA biosynthesis in sacred lotus differs markedly from that of opium poppy and other members of the Ranunculales, most notably in an abundance of BIAs possessing the (R)-stereochemical configuration and the absence of reticuline, a major branchpoint intermediate in most BIA producers. Owing to these unique metabolic features and the pharmacological potential of lotus, we set out to elucidate the BIA biosynthesis network in N. nucifera. Here we show that lotus CYP80G (NnCYP80G) and a superior ortholog from Peruvian nutmeg (Laurelia sempervirens; LsCYP80G) stereospecifically convert (R)-N-methylcoclaurine to the proaporphine alkaloid glaziovine, which is subsequently methylated to pronuciferine, the presumed precursor to nuciferine. While sacred lotus employs a dedicated (R)-route to aporphine alkaloids from (R)-norcoclaurine, we implemented an artificial stereochemical inversion approach to flip the stereochemistry of the core BIA pathway. Exploiting the unique substrate specificity of dehydroreticuline synthase from common poppy (Papaver rhoeas) and pairing it with dehydroreticuline reductase enabled de novo synthesis of (R)-N-methylcoclaurine from (S)-norcoclaurine and its subsequent conversion to pronuciferine. We leveraged our stereochemical inversion approach to also elucidate the role of NnCYP80A in sacred lotus metabolism, which we show catalyzes the stereospecific formation of the bis-BIA nelumboferine. Screening our collection of 66 plant O-methyltransferases enabled conversion of nelumboferine to liensinine, a potential anti-cancer bis-BIA from sacred lotus. Our work highlights the unique benzylisoquinoline metabolism of N. nucifera and enables the targeted overproduction of potential lotus pharmaceuticals using engineered microbial systems.

摘要

神圣莲(Nelumbo nucifera)作为食物、药物和精神象征已有近 3000 年的历史。莲的药用特性主要归因于其独特的苄基异喹啉生物碱(BIAs)组成,其中包括具有潜在抗癌、抗疟和抗心律失常作用的化合物。神圣莲中的 BIAs 生物合成与罂粟和其他毛茛目成员明显不同,最显著的是存在大量具有(R)立体化学构型的 BIAs 和缺乏在大多数 BIA 产生者中作为主要分支点中间体的荷叶碱。由于这些独特的代谢特征和莲的药理学潜力,我们着手阐明 N. nucifera 中的 BIA 生物合成网络。在这里,我们表明莲 CYP80G(NnCYP80G)和来自秘鲁肉豆蔻的优良直系同源物(Laurelia sempervirens;LsCYP80G)立体特异性地将(R)-N-甲基荷叶碱转化为原阿朴菲生物碱 glaziovine,随后将其甲基化为 pronuciferine,这是 nuciferine 的假定前体。虽然神圣莲采用专用的(R)途径从(R)-去甲荷叶碱生成阿朴菲生物碱,但我们实施了一种人工立体化学反转方法来翻转核心 BIA 途径的立体化学。利用罂粟中脱氢荷叶碱合酶的独特底物特异性,并将其与脱氢荷叶碱还原酶配对,使(S)-去甲荷叶碱能够从头合成(R)-N-甲基荷叶碱,随后转化为 pronuciferine。我们利用我们的立体化学反转方法来阐明 NnCYP80A 在神圣莲代谢中的作用,我们表明它催化双 BIAs nelumboferine 的立体特异性形成。筛选我们的 66 种植物 O-甲基转移酶的集合使 nelumboferine 能够转化为莲心碱,这是一种来自神圣莲的潜在抗癌双 BIA。我们的工作强调了 N. nucifera 的独特苄基异喹啉代谢,并使使用工程微生物系统靶向过量生产潜在的莲类药物成为可能。

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