A biosynthetic network for protoberberine production in Coptis chinensis.

IF 7.6 Q1 GENETICS & HEREDITY 园艺研究(英文) Pub Date : 2023-12-13 eCollection Date: 2024-01-01 DOI:10.1093/hr/uhad259
Linrui Wu, Binxin Zhao, Zixin Deng, Bin Wang, Yi Yu
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Abstract

Protoberberine alkaloids are a group of tetracyclic isoquinoline compounds known for their well-established antimicrobial and anti-inflammatory properties. The richness and diversity of protoberberine alkaloids accumulated in the Coptis genus necessitate a comprehensive examination of the biosynthetic machinery to understand their ecological significance. Here, from Coptis chinensis we identified CcCYP719A1, which could install a methylenedioxy bridge on either ring A or ring D of the protoberberine backbone, thus diverging metabolite flux towards the biosynthesis of various protoberberine components. We also obtained CcCYP719A2 and CcCYP719A3, which underwent positive selection after diverging from CcCYP719A1 and maintained specific catalytic activity on ring D. Further, we resolved the biosynthetic pathway of jatrorrhizine by identifying two demethylases, which could also modulate protoberberine composition by removing the C-3 methyl group and methylenedioxy bridge of ring D, allowing demethylated metabolites to be redirected into different routes. Moreover, we characterized 2-O-methyltransferase CcOMT1 and flavin-dependent oxidase CcTHBO, respectively responsible for the commonly observed 2-O-methylation and aromatic ring-C assembly in protoberberine alkaloids. Overall, this study reveals an interconnected metabolite network from which diverse protoberberine alkaloids originate. It provides valuable insights into the existence of undiscovered protoberberine components, and paves the way for the targeted production of desired protoberberine components for potential therapeutic development.

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黄连生产原小檗碱的生物合成网络。
原小檗碱是一组四环异喹啉化合物,具有公认的抗菌和消炎特性。由于黄连属积累了丰富多样的原小檗碱生物碱,因此有必要对其生物合成机制进行全面研究,以了解其生态学意义。在这里,我们从黄连中鉴定出了 CcCYP719A1,它可以在原小檗碱骨架的 A 环或 D 环上安装亚甲基二氧桥,从而使各种原小檗碱成分的生物合成代谢通量发生分化。我们还获得了 CcCYP719A2 和 CcCYP719A3,它们在与 CcCYP719A1 分歧后进行了正向选择,并保持了对 D 环的特异性催化活性。此外,我们还通过鉴定两种去甲基酶解决了药根碱的生物合成途径问题,这两种酶也可以通过去除 D 环上的 C-3 甲基和亚甲二氧基桥来调节原小檗碱的组成,从而使去甲基代谢物转向不同的途径。此外,我们还鉴定了 2-O-甲基转移酶 CcOMT1 和黄素依赖性氧化酶 CcTHBO,它们分别负责原小檗碱中常见的 2-O-甲基化和芳香环-C 组装。总之,这项研究揭示了一个相互关联的代谢物网络,各种原小檗碱生物碱就来源于这个网络。它为了解尚未发现的原小檗碱成分的存在提供了有价值的见解,并为有针对性地生产所需的原小檗碱成分以进行潜在的治疗开发铺平了道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
12.90
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