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首页> 外文期刊>BMC Plant Biology >The characterisation of AOP2 : a gene associated with the biosynthesis of aliphatic alkenyl glucosinolates in Arabidopsis thaliana
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The characterisation of AOP2 : a gene associated with the biosynthesis of aliphatic alkenyl glucosinolates in Arabidopsis thaliana

机译:AOP2的表征:与拟南芥中脂肪族烯基芥子油苷生物合成相关的基因

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Background Glucosinolates, a group of nitrogen and sulfur containing compounds associated with plant-insect interactions, are produced by a number of important Brassicaceae crop species. In Arabidopsis the AOP2 gene plays a role in the secondary modification of aliphatic (methionine-derived) glucosinolates, namely the conversion of methylsulfinylalkyl glucosinolates to form alkenyl glucosinolates, and also influences aliphatic glucosinolate accumulation. Results This study characterises the primary structural variation in the coding sequences of the AOP2 gene and identifies three different AOP2 alleles based on polymorphisms in exon two. To help determine the regulatory mechanisms mediating AOP2 expression amongst accessions, AOP2 5' regulatory regions were also examined however no major differences were identified. Expression of the AOP2 gene was found to be most abundant in leaf and stem tissue and was also found to be light dependent, with a number of light regulatory elements identified in the promoter region of the gene. In addition, a study was undertaken to demonstrate that the Arabidopsis AOP2 gene product is functional in planta . The over-expression of a functional AOP2 allele was found to successfully convert the precursor methylsulfinyl alkyl glucosinolate into the alkenyl form. Conclusions The expression of the AOP2 gene has been found to be influenced by light and is most highly expressed in the photosynthetic parts of the Arabidopsis plant. The level of AOP2 transcript decreases rapidly in the absence of light. AOP2 exists as at least three alleles in different Arabidopsis accessions and we have demonstrated that one of these, AOP2-2 , is functionally able to convert methylsulfinyl glucosinolates into the alkenyl form. The demonstration of the in planta functionality of the Arabisopsis AOP2 gene is an important step in determining the feasibility of engineering glucosinolate profiles in food plants.
机译:背景芥子油苷是一组与植物-昆虫相互作用相关的含氮和硫的化合物,是由许多重要的十字花科植物产生的。在拟南芥中,AOP2基因在脂肪族(蛋氨酸衍生的)芥子油苷的二次修饰中起作用,即甲基亚硫酰基烷基芥子油苷的转化形成链烯基芥子油苷,并且还影响脂肪族芥子油苷的积累。结果本研究表征了AOP2基因编码序列的主要结构变异,并基于两个外显子的多态性鉴定了三个不同的AOP2等位基因。为帮助确定在种质之间介导AOP2表达的调控机制,还检查了AOP2 5'调控区,但未发现主要差异。发现AOP2基因的表达在叶和茎组织中最丰富,并且还发现其是光依赖性的,在该基因的启动子区域中鉴定出许多光调节元件。此外,进行了一项研究以证明拟南芥AOP2基因产物在植物中具有功能。发现功能性AOP2等位基因的过表达成功地将前体甲基亚硫酰基烷基芥子油苷转化为烯基形式。结论已发现AOP2基因的表达受光影响,并且在拟南芥植物的光合部分中表达最高。在没有光照的情况下,AOP2转录物的水平迅速降低。 AOP2在不同的拟南芥种质中至少以三个等位基因形式存在,我们已经证明其中之一AOP2-2在功能上能够将亚甲基硫磺酰基硫代葡萄糖苷转化为烯基形式。拟南芥AOP2基因在植物体内功能的证明是确定在食品植物中设计芥子油苷轮廓的可行性的重要步骤。

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