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Induction and analysis of gibberellin sensitive mutants in Arabidopsis thaliana (L.) heynh.拟南芥(L.)heynh 中赤霉素敏感突变体的诱导与分析
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Accumulation of C19-gibberellins in the gibberellin-insensitive dwarf mutantgai ofArabidopsis thaliana (L.) Heynh.拟南芥(L.)Heynh 中赤霉素不敏感矮化突变体 gai 中 C19-赤霉素的积累
Planta. 1990 Nov;182(4):501-5. doi: 10.1007/BF02341024.
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The Expression Pattern of the Tonoplast Intrinsic Protein gamma-TIP in Arabidopsis thaliana Is Correlated with Cell Enlargement.液泡膜内在蛋白γ-TIP在拟南芥中的表达模式与细胞膨大相关。
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GIBBERELLIN BIOSYNTHESIS: Enzymes, Genes and Their Regulation.赤霉素生物合成:酶、基因及其调控
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GIBBERELLIC ACID. 28. SOME DERIVATIVES OF GIBBERELLINS A4 AND A7.赤霉素。28. 赤霉素A4和A7的一些衍生物。
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Derivative Alleles of the Arabidopsis Gibberellin-Insensitive (gai) Mutation Confer a Wild-Type Phenotype.拟南芥赤霉素不敏感(gai)突变的衍生等位基因赋予野生型表型。
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Phenotypic Suppression of the Gibberellin-Insensitive Mutant (gai) of Arabidopsis.拟南芥赤霉素不敏感突变体(gai)的表型抑制
Plant Physiol. 1995 Jun;108(2):495-502. doi: 10.1104/pp.108.2.495.
8
Genetic Analysis of Gibberellin Signal Transduction.赤霉素信号转导的遗传分析
Plant Physiol. 1996 Sep;112(1):11-17. doi: 10.1104/pp.112.1.11.
9
The dwarf-1 (dt) Mutant of Zea mays blocks three steps in the gibberellin-biosynthetic pathway.玉米的矮化-1(dt)突变体阻断了赤霉素生物合成途径中的三个步骤。
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10
Characterization of new gibberellin-responsive semidwarf mutants of arabidopsis.拟南芥新的赤霉素响应型半矮化突变体的特征分析
Plant Physiol. 1997 Nov;115(3):1009-20. doi: 10.1104/pp.115.3.1009.

拟南芥中赤霉素对GA4基因转录水平的剂量反应调控

Gibberellin dose-response regulation of GA4 gene transcript levels in Arabidopsis.

作者信息

Cowling R J, Kamiya Y, Seto H, Harberd N P

机构信息

Department of Molecular Genetics, John Innes Centre, Colney Lane, Norwich NR4 7UJ, United Kingdom.

出版信息

Plant Physiol. 1998 Aug;117(4):1195-203. doi: 10.1104/pp.117.4.1195.

DOI:10.1104/pp.117.4.1195
PMID:9701576
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC34884/
Abstract

The gibberellins (GAs) are a complex family of diterpenoid compounds, some of which are potent endogenous regulators of plant growth. As part of a feedback control of endogenous GA levels, active GAs negatively regulate the abundance of mRNA transcripts encoding GA biosynthesis enzymes. For example, Arabidopsis GA4 gene transcripts encode GA 3beta-hydroxylase, an enzyme that catalyzes the conversion of inactive to active GAs. Here we show that active GAs regulate GA4 transcript abundance in a dose-dependent manner, and that down-regulation of GA4 transcript abundance is effected by GA4 (the product of 3beta-hydroxylation) but not by its immediate precursor GA9 (the substrate). Comparison of several different GA structures showed that GAs active in promoting hypocotyl elongation were also active in regulating GA4 transcript abundance, suggesting that similar GA:receptor and subsequent signal transduction processes control these two responses. It is interesting that these activities were not restricted to 3beta-hydroxylated GAs, being also exhibited by structures that were not 3beta-hydroxylated but that had another electronegative group at C-3. We also show that GA-mediated control of GA4 transcript abundance is disrupted in the GA-response mutants gai and spy-5. These observations define a sensitive homeostatic mechanism whereby plants may regulate their endogenous GA levels.

摘要

赤霉素(GAs)是一类复杂的二萜类化合物,其中一些是植物生长的强效内源性调节剂。作为内源性GA水平反馈控制的一部分,活性GA对编码GA生物合成酶的mRNA转录本丰度起负调节作用。例如,拟南芥GA4基因转录本编码GA 3β-羟化酶,该酶催化无活性GA向活性GA的转化。我们在此表明,活性GA以剂量依赖方式调节GA4转录本丰度,且GA4转录本丰度的下调是由GA4(3β-羟基化产物)而非其直接前体GA9(底物)实现的。对几种不同GA结构的比较表明,在促进下胚轴伸长方面有活性的GA在调节GA4转录本丰度方面也有活性,这表明类似的GA:受体及后续信号转导过程控制这两种反应。有趣的是,这些活性并不局限于3β-羟基化的GA,未进行3β-羟基化但在C-3位有另一个电负性基团的结构也表现出这些活性。我们还表明,在GA反应突变体gai和spy-5中,GA介导的对GA4转录本丰度的控制被破坏。这些观察结果定义了一种敏感的稳态机制,植物可借此调节其内源GA水平。