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本文引用的文献

1
Multifaceted regulations of gateway enzyme phenylalanine ammonia-lyase in the biosynthesis of phenylpropanoids.多方面调控苯丙氨酸解氨酶在苯丙烷类生物合成中的作用
Mol Plant. 2015 Jan;8(1):17-27. doi: 10.1016/j.molp.2014.11.001. Epub 2014 Dec 11.
2
Arabidopsis gulliver1/SUPERROOT2-7 identifies a metabolic basis for auxin and brassinosteroid synergy.拟南芥 gulliver1/SUPERROOT2-7 确定了生长素和油菜素内酯协同作用的代谢基础。
Plant J. 2014 Dec;80(5):797-808. doi: 10.1111/tpj.12678.
3
The Biosynthetic Pathway of Indole-3-Carbaldehyde and Indole-3-Carboxylic Acid Derivatives in Arabidopsis.拟南芥中吲哚 - 3 - 甲醛和吲哚 - 3 - 羧酸衍生物的生物合成途径
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Disruption of Mediator rescues the stunted growth of a lignin-deficient Arabidopsis mutant.破坏中介体拯救木质素缺陷拟南芥突变体的生长迟缓。
Nature. 2014 May 15;509(7500):376-80. doi: 10.1038/nature13084. Epub 2014 Mar 16.
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MED18 interaction with distinct transcription factors regulates multiple plant functions.MED18 与不同的转录因子相互作用,调节多种植物功能。
Nat Commun. 2014;5:3064. doi: 10.1038/ncomms4064.
6
The Arabidopsis mediator complex subunits MED16, MED14, and MED2 regulate mediator and RNA polymerase II recruitment to CBF-responsive cold-regulated genes.拟南芥中介体复合物亚基 MED16、MED14 和 MED2 调节中介体和 RNA 聚合酶 II 募集到 CBF 响应的冷调节基因。
Plant Cell. 2014 Jan;26(1):465-84. doi: 10.1105/tpc.113.117796. Epub 2014 Jan 10.
7
Arabidopsis Kelch repeat F-box proteins regulate phenylpropanoid biosynthesis via controlling the turnover of phenylalanine ammonia-lyase.拟南芥 Kelch 重复 F 盒蛋白通过控制苯丙氨酸解氨酶的周转来调节苯丙烷类生物合成。
Plant Cell. 2013 Dec;25(12):4994-5010. doi: 10.1105/tpc.113.119644. Epub 2013 Dec 20.
8
Caffeoyl shikimate esterase (CSE) is an enzyme in the lignin biosynthetic pathway in Arabidopsis.咖啡酰莽草酸酯酶(CSE)是拟南芥木质素生物合成途径中的一种酶。
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9
The Arabidopsis Mediator complex subunits MED14/SWP and MED16/SFR6/IEN1 differentially regulate defense gene expression in plant immune responses.拟南芥中介体复合物亚基 MED14/SWP 和 MED16/SFR6/IEN1 分别在植物免疫反应中调节防御基因的表达。
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10
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吲哚硫代葡萄糖苷生物合成限制了拟南芥中苯丙烷类化合物的积累。

Indole Glucosinolate Biosynthesis Limits Phenylpropanoid Accumulation in Arabidopsis thaliana.

作者信息

Kim Jeong Im, Dolan Whitney L, Anderson Nickolas A, Chapple Clint

机构信息

Department of Biochemistry, Purdue University, West Lafayette, Indiana 47907.

Department of Biochemistry, Purdue University, West Lafayette, Indiana 47907

出版信息

Plant Cell. 2015 May;27(5):1529-46. doi: 10.1105/tpc.15.00127. Epub 2015 May 5.

DOI:10.1105/tpc.15.00127
PMID:25944103
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4456644/
Abstract

Plants produce an array of metabolites (including lignin monomers and soluble UV-protective metabolites) from phenylalanine through the phenylpropanoid biosynthetic pathway. A subset of plants, including many related to Arabidopsis thaliana, synthesizes glucosinolates, nitrogen- and sulfur-containing secondary metabolites that serve as components of a plant defense system that deters herbivores and pathogens. Here, we report that the Arabidopsis thaliana reduced epidermal fluorescence5 (ref5-1) mutant, identified in a screen for plants with defects in soluble phenylpropanoid accumulation, has a missense mutation in CYP83B1 and displays defects in glucosinolate biosynthesis and in phenylpropanoid accumulation. CYP79B2 and CYP79B3 are responsible for the production of the CYP83B1 substrate indole-3-acetaldoxime (IAOx), and we found that the phenylpropanoid content of cyp79b2 cyp79b3 and ref5-1 cyp79b2 cyp79b3 plants is increased compared with the wild type. These data suggest that levels of IAOx or a subsequent metabolite negatively influence phenylpropanoid accumulation in ref5 and more importantly that this crosstalk is relevant in the wild type. Additional biochemical and genetic evidence indicates that this inhibition impacts the early steps of the phenylpropanoid biosynthetic pathway and restoration of phenylpropanoid accumulation in a ref5-1 med5a/b triple mutant suggests that the function of the Mediator complex is required for the crosstalk.

摘要

植物通过苯丙烷生物合成途径从苯丙氨酸产生一系列代谢产物(包括木质素单体和可溶性紫外线防护代谢产物)。包括许多与拟南芥相关的植物在内的一部分植物会合成芥子油苷,即含氮和硫的次生代谢产物,它们是植物防御系统的组成部分,可抵御食草动物和病原体。在此,我们报告在筛选可溶性苯丙烷类物质积累存在缺陷的植物时鉴定出的拟南芥减少表皮荧光5(ref5-1)突变体,其CYP83B1存在错义突变,并在芥子油苷生物合成和苯丙烷类物质积累方面表现出缺陷。CYP79B2和CYP79B3负责产生CYP83B1的底物吲哚-3-乙醛肟(IAOx),我们发现与野生型相比,cyp79b2 cyp79b3和ref5-1 cyp79b2 cyp79b3植物的苯丙烷类物质含量有所增加。这些数据表明,IAOx或其后续代谢产物的水平会对ref5中苯丙烷类物质的积累产生负面影响,更重要的是,这种相互作用在野生型中也存在。更多的生化和遗传学证据表明,这种抑制作用影响苯丙烷生物合成途径的早期步骤,并且ref5-1 med5a/b三重突变体中苯丙烷类物质积累的恢复表明,中介复合体的功能对于这种相互作用是必需的。