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本文引用的文献

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Terpenoid biosynthesis off the beaten track: unconventional cyclases and their impact on biomimetic synthesis.萜类化合物生物合成的非传统途径:非常规环化酶及其对生物模拟合成的影响。
Angew Chem Int Ed Engl. 2015 Feb 23;54(9):2604-26. doi: 10.1002/anie.201407883. Epub 2014 Dec 8.
2
Conversion of substrate analogs suggests a Michael cyclization in iridoid biosynthesis.底物类似物的转化表明环烯醚萜生物合成中存在迈克尔环化反应。
Chem Biol. 2014 Nov 20;21(11):1452-6. doi: 10.1016/j.chembiol.2014.09.010. Epub 2014 Oct 23.
3
(R,S)-tetrahydropapaveroline production by stepwise fermentation using engineered Escherichia coli.利用工程化大肠杆菌通过分步发酵生产(R,S)-四氢罂粟碱
Sci Rep. 2014 Oct 21;4:6695. doi: 10.1038/srep06695.
4
A microbial biomanufacturing platform for natural and semisynthetic opioids.用于天然和半合成阿片类药物的微生物生物制造平台。
Nat Chem Biol. 2014 Oct;10(10):837-44. doi: 10.1038/nchembio.1613. Epub 2014 Aug 24.
5
Engineering monoterpene production in yeast using a synthetic dominant negative geranyl diphosphate synthase.利用合成的显性负性香叶基二磷酸合酶在酵母中构建单萜烯生产体系。
ACS Synth Biol. 2014 May 16;3(5):298-306. doi: 10.1021/sb400115e. Epub 2014 Jan 3.
6
A look inside an alkaloid multisite plant: the Catharanthus logistics.深入了解一种生物碱多部位植物:长春花的物流情况。
Curr Opin Plant Biol. 2014 Jun;19:43-50. doi: 10.1016/j.pbi.2014.03.010. Epub 2014 Apr 13.
7
The seco-iridoid pathway from Catharanthus roseus.长春花中的裂环烯醚萜途径。
Nat Commun. 2014 Apr 7;5:3606. doi: 10.1038/ncomms4606.
8
Making iridoids/secoiridoids and monoterpenoid indole alkaloids: progress on pathway elucidation.合成环烯醚萜类/裂环环烯醚萜类和单萜吲哚生物碱:途径阐明的进展
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9
7-deoxyloganetic acid synthase catalyzes a key 3 step oxidation to form 7-deoxyloganetic acid in Catharanthus roseus iridoid biosynthesis.7-脱氧马钱子酸合酶在长春花环烯醚萜生物合成中催化关键的三步氧化反应以形成7-脱氧马钱子酸。
Phytochemistry. 2014 May;101:23-31. doi: 10.1016/j.phytochem.2014.02.009. Epub 2014 Mar 1.
10
Reconstitution of a 10-gene pathway for synthesis of the plant alkaloid dihydrosanguinarine in Saccharomyces cerevisiae.在酿酒酵母中重建植物生物碱二氢血根碱合成的 10 基因途径。
Nat Commun. 2014;5:3283. doi: 10.1038/ncomms4283.

酵母中植物源生物碱士的宁苷的从头合成。

De novo production of the plant-derived alkaloid strictosidine in yeast.

作者信息

Brown Stephanie, Clastre Marc, Courdavault Vincent, O'Connor Sarah E

机构信息

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

Équipe d'Accueil EA2106, "Biomolécules et Biotechnologies Végétales," Université François-Rabelais de Tours, 37200 Tours, France.

出版信息

Proc Natl Acad Sci U S A. 2015 Mar 17;112(11):3205-10. doi: 10.1073/pnas.1423555112. Epub 2015 Feb 9.

DOI:10.1073/pnas.1423555112
PMID:25675512
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4371906/
Abstract

The monoterpene indole alkaloids are a large group of plant-derived specialized metabolites, many of which have valuable pharmaceutical or biological activity. There are ∼3,000 monoterpene indole alkaloids produced by thousands of plant species in numerous families. The diverse chemical structures found in this metabolite class originate from strictosidine, which is the last common biosynthetic intermediate for all monoterpene indole alkaloid enzymatic pathways. Reconstitution of biosynthetic pathways in a heterologous host is a promising strategy for rapid and inexpensive production of complex molecules that are found in plants. Here, we demonstrate how strictosidine can be produced de novo in a Saccharomyces cerevisiae host from 14 known monoterpene indole alkaloid pathway genes, along with an additional seven genes and three gene deletions that enhance secondary metabolism. This system provides an important resource for developing the production of more complex plant-derived alkaloids, engineering of nonnatural derivatives, identification of bottlenecks in monoterpene indole alkaloid biosynthesis, and discovery of new pathway genes in a convenient yeast host.

摘要

单萜吲哚生物碱是一大类源自植物的特殊代谢产物,其中许多具有重要的药用或生物活性。众多科属的数千种植物能产生约3000种单萜吲哚生物碱。该代谢产物类群中多样的化学结构源自 strictosidine,它是所有单萜吲哚生物碱酶促途径的最后一个共同生物合成中间体。在异源宿主中重建生物合成途径是快速且廉价地生产植物中复杂分子的一种有前景的策略。在此,我们展示了如何利用14个已知的单萜吲哚生物碱途径基因,以及另外7个增强次级代谢的基因和3个基因缺失,在酿酒酵母宿主中从头合成 strictosidine。该系统为开发更复杂的植物源生物碱的生产、非天然衍生物的工程改造、单萜吲哚生物碱生物合成瓶颈的鉴定以及在便捷的酵母宿主中发现新的途径基因提供了重要资源。