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2
A BAHD acyltransferase catalyzing 19-O-acetylation of tabersonine derivatives in roots of Catharanthus roseus enables combinatorial synthesis of monoterpene indole alkaloids.BAHD 酰基转移酶在长春花根中催化 tabersonine 衍生物的 19-O-乙酰化,使单萜吲哚生物碱的组合合成成为可能。
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The assembly of (+)-vincadifformine- and (-)-tabersonine-derived monoterpenoid indole alkaloids in Catharanthus roseus involves separate branch pathways.长春花中(+)-长春碱和(-)-文多灵衍生的单萜吲哚生物碱的组装涉及独立的分支途径。
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A tabersonine 3-reductase Catharanthus roseus mutant accumulates vindoline pathway intermediates.长春花突变体 tabersonine 3-还原酶积累长春碱途径中间体。
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A pair of tabersonine 16-hydroxylases initiates the synthesis of vindoline in an organ-dependent manner in Catharanthus roseus.在长春花中,一对塔巴林 16-羟化酶以组织依赖性的方式启动了文多灵的合成。
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本文引用的文献

1
Missing enzymes in the biosynthesis of the anticancer drug vinblastine in Madagascar periwinkle.在马达加斯加长春花中,抗癌药物长春碱生物合成过程中缺失酶。
Science. 2018 Jun 15;360(6394):1235-1239. doi: 10.1126/science.aat4100. Epub 2018 May 3.
2
Solution of the multistep pathway for assembly of corynanthean, strychnos, iboga, and aspidosperma monoterpenoid indole alkaloids from 19-geissoschizine.从 19-吉斯索嗪中解决可可碱、士的宁、伊波加因和夹竹桃单萜吲哚生物碱的多步途径的组装。
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3
A BAHD acyltransferase catalyzing 19-O-acetylation of tabersonine derivatives in roots of Catharanthus roseus enables combinatorial synthesis of monoterpene indole alkaloids.BAHD 酰基转移酶在长春花根中催化 tabersonine 衍生物的 19-O-乙酰化,使单萜吲哚生物碱的组合合成成为可能。
Plant J. 2018 May;94(3):469-484. doi: 10.1111/tpj.13868. Epub 2018 Mar 27.
4
Expression of tabersonine 16-hydroxylase and 16-hydroxytabersonine-O-methyltransferase in Catharanthus roseus hairy roots.长春花毛状根中育亨宾 16-羟化酶和 16-羟育亨宾-O-甲基转移酶的表达。
Biotechnol Bioeng. 2018 Mar;115(3):673-683. doi: 10.1002/bit.26487. Epub 2017 Nov 22.
5
A three enzyme system to generate the Strychnos alkaloid scaffold from a central biosynthetic intermediate.一种由中央生物合成中间体生成马钱子生物碱骨架的三酶系统。
Nat Commun. 2017 Aug 22;8(1):316. doi: 10.1038/s41467-017-00154-x.
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Salmon provides fast and bias-aware quantification of transcript expression.鲑鱼提供快速且无偏倚的转录本表达定量。
Nat Methods. 2017 Apr;14(4):417-419. doi: 10.1038/nmeth.4197. Epub 2017 Mar 6.
7
Folivory elicits a strong defense reaction in Catharanthus roseus: metabolomic and transcriptomic analyses reveal distinct local and systemic responses.食叶行为会引发长春花(Catharanthus roseus)产生强烈的防御反应:代谢组学和转录组学分析揭示了局部和系统的明显反应。
Sci Rep. 2017 Jan 17;7:40453. doi: 10.1038/srep40453.
8
Still stable after 11 years: A Catharanthus roseus Hairy root line maintains inducible expression of anthranilate synthase.11年后仍保持稳定:长春花毛状根系维持邻氨基苯甲酸合酶的可诱导表达。
Biotechnol Prog. 2017 Jan;33(1):66-69. doi: 10.1002/btpr.2403. Epub 2016 Nov 21.
9
Class II Cytochrome P450 Reductase Governs the Biosynthesis of Alkaloids.II类细胞色素P450还原酶调控生物碱的生物合成。
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10
Prequels to Synthetic Biology: From Candidate Gene Identification and Validation to Enzyme Subcellular Localization in Plant and Yeast Cells.合成生物学前传:从植物和酵母细胞中的候选基因鉴定与验证到酶的亚细胞定位
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两种 Tabersonine 6,7-环氧化酶引发.中 Lochnericine 衍生生物碱的生物合成

Two Tabersonine 6,7-Epoxidases Initiate Lochnericine-Derived Alkaloid Biosynthesis in .

机构信息

Université de Tours, EA2106 Biomolécules et Biotechnologies Végétales, Tours, F-37200, France.

John Innes Centre, Department of Biological Chemistry, Norwich NR4 7UH, United Kingdom.

出版信息

Plant Physiol. 2018 Aug;177(4):1473-1486. doi: 10.1104/pp.18.00549. Epub 2018 Jun 22.

DOI:10.1104/pp.18.00549
PMID:29934299
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6084683/
Abstract

Lochnericine is a major monoterpene indole alkaloid (MIA) in the roots of Madagascar periwinkle (). Lochnericine is derived from the stereoselective C6,C7-epoxidation of tabersonine and can be metabolized further to generate other complex MIAs. While the enzymes responsible for its downstream modifications have been characterized, those involved in lochnericine biosynthesis remain unknown. By combining gene correlation studies, functional assays, and transient gene inactivation, we identified two highly conserved P450s that efficiently catalyze the epoxidation of tabersonine: tabersonine 6,7-epoxidase isoforms 1 and 2 (TEX1 and TEX2). Both proteins are quite divergent from the previously characterized tabersonine 2,3-epoxidase and are more closely related to tabersonine 16-hydroxylase, involved in vindoline biosynthesis in leaves. Biochemical characterization of TEX1/2 revealed their strict substrate specificity for tabersonine and their inability to epoxidize 19-hydroxytabersonine, indicating that they catalyze the first step in the pathway leading to hörhammericine production. and displayed complementary expression profiles, with expressed mainly in roots and in aerial organs. Our results suggest that and originated from a gene duplication event and later acquired divergent, organ-specific regulatory elements for lochnericine biosynthesis throughout the plant, as supported by the presence of lochnericine in flowers. Finally, through the sequential expression of and up to four other MIA biosynthetic genes in yeast, we reconstituted the 19-acetylhörhammericine biosynthetic pathway and produced tailor-made MIAs by mixing enzymatic modules that are naturally spatially separated in the plant. These results lay the groundwork for the metabolic engineering of tabersonine/lochnericine derivatives of pharmaceutical interest.

摘要

洛柯灵碱是马钱科植物长春花()根中的一种主要单萜吲哚生物碱(MIA)。洛柯灵碱来源于塔柏碱的 C6,C7-立体选择性环氧化,可进一步代谢生成其他复杂的 MIA。虽然已鉴定出负责其下游修饰的酶,但参与洛柯灵碱生物合成的酶仍未知。通过基因相关性研究、功能测定和瞬时基因失活,我们鉴定出两种能够有效催化塔柏碱环氧化的高度保守的 P450:塔柏碱 6,7-环氧化酶同工酶 1 和 2(TEX1 和 TEX2)。这两种蛋白质与先前表征的塔柏碱 2,3-环氧化酶差异很大,与参与叶片中长春碱生物合成的塔柏碱 16-羟化酶更为密切相关。TEX1/2 的生化特征表明其对塔柏碱具有严格的底物特异性,且不能环氧化 19-羟基塔柏碱,表明它们催化导致霍赫马灵碱生成的途径中的第一步。和在表达模式上表现出互补性,主要在根部表达,而在地上器官中表达。我们的结果表明和起源于基因复制事件,随后在整个植物中获得了不同的、器官特异性的调控元件,用于洛柯灵碱生物合成,这得到了花朵中存在洛柯灵碱的支持。最后,通过在酵母中顺序表达和多达另外四个 MIA 生物合成基因,我们重建了 19-乙酰霍赫马灵碱生物合成途径,并通过混合在植物中自然空间分离的酶模块来产生定制的 MIA。这些结果为具有药物应用前景的塔柏碱/洛柯灵碱衍生物的代谢工程奠定了基础。