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Special Issue on Reactive Oxygen Species: Maturation of Arabidopsis Seeds Is Dependent on Glutathione Biosynthesis within the Embryo

机译:活性氧物种的特殊问题:拟南芥种子的成熟取决于胚胎中谷胱甘肽的生物合成

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摘要

Glutathione (GSH) has been implicated in maintaining the cell cycle within plant meristems and protecting proteins during seed dehydration. To assess the role of GSH during development of Arabidopsis (Arabidopsis thaliana [L.] Heynh.) embryos, we characterized T-DNA insertion mutants of GSH1, encoding the first enzyme of GSH biosynthesis, γ-glutamyl-cysteine synthetase. These gsh1 mutants confer a recessive embryo-lethal phenotype, in contrast to the previously described GSH1 mutant, root meristemless 1(rml1), which is able to germinate, but is deficient in postembryonic root development. Homozygous mutant embryos show normal morphogenesis until the seed maturation stage. The only visible phenotype in comparison to wild type was progressive bleaching of the mutant embryos from the torpedo stage onward. Confocal imaging of GSH in isolated mutant and wild-type embryos after fluorescent labeling with monochlorobimane detected residual amounts of GSH in rml1 embryos. In contrast, gsh1 T-DNA insertion mutant embryos could not be labeled with monochlorobimane from the torpedo stage onward, indicating the absence of GSH. By using high-performance liquid chromatography, however, GSH was detected in extracts of mutant ovules and imaging of intact ovules revealed a high concentration of GSH in the funiculus, within the phloem unloading zone, and in the outer integument. The observation of high GSH in the funiculus is consistent with a high GSH1-promoter∷β-glucuronidase reporter activity in this tissue. Development of mutant embryos could be partially rescued by exogenous GSH in vitro. These data show that at least a small amount of GSH synthesized autonomously within the developing embryo is essential for embryo development and proper seed maturation.
机译:谷胱甘肽(GSH)参与维持植物分生组织内的细胞周期并在种子脱水过程中保护蛋白质。为了评估GSH在拟南芥(Arabidopsis thaliana [L.] Heynh。)胚胎发育过程中的作用,我们鉴定了GSH1的T-DNA插入突变体,该突变体编码GSH生物合成的第一种酶,γ-谷氨酰-半胱氨酸合成酶。这些gsh1突变体具有隐性的胚胎致死表型,与之前描述的GSH1突变体,根部分生组织1(rml1)能够发芽,但胚后根发育欠缺。纯合突变体胚显示正常的形态发生,直到种子成熟阶段。与野生型相比,唯一可见的表型是从鱼雷阶段开始逐渐突变的胚胎。一氯bimane荧光标记后分离的突变和野生型胚胎中的GSH的共聚焦成像检测到rml1胚胎中残留的GSH量。相比之下,从鱼雷阶段开始,不能用一氯双金刚烷标记gsh1 T-DNA插入突变体胚胎,表明不存在GSH。但是,通过使用高效液相色谱法,在突变胚珠的提取物中检测到了GSH,完整胚珠的成像显示,在小肠,韧皮部卸载区和外被膜中,GSH的浓度很高。在该真菌中观察到高GSH,与该组织中高GSH1启动子∷β-葡萄糖醛酸酶报道基因的活性一致。外源性谷胱甘肽在体外可以部分挽救突变体胚胎的发育。这些数据表明,在发育中的胚胎中自主合成的至少少量GSH对于胚胎发育和适当的种子成熟至关重要。

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