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Elevated glutathione biosynthetic capacity in the chloroplasts of transgenic tobacco plants paradoxically causes increased oxidative stress

机译:转基因烟草植物叶绿体中谷胱甘肽的生物合成能力升高反常导致氧化应激增加

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摘要

Glutathione (GSH), a major antioxidant in most aerobic organisms, is perceived to be particularly important in plant chloroplasts because it helps to protect the photosynthetic apparatus from oxidative damage. In transgenic tobacco plants overexpressing a chloroplast-targeted gamma-glutamylcysteine synthetase (gamma-ECS), foliar levels of GSH were raised threefold. Paradoxically, increased GSH biosynthetic capacity in the chloroplast resulted in greatly enhanced oxidative stress, which was manifested as light intensity-dependent chlorosis or necrosis. This phenotype was associated with foliar pools of both GSH and gamma-glutamylcysteine (the immediate precursor to GSH) being in a more oxidized state. Further manipulations of both the content and redox state of the foliar thiol pools were achieved using hybrid transgenic plants with enhanced glutathione synthetase or glutathione reductase activity in addition to elevated levels of gamma-ECS. Given the results of these experiments, we suggest that gamma-ECS-transformed plants suffered continuous oxidative damage caused by a failure of the redox-sensing process in the chloroplast.
机译:谷胱甘肽(GSH)是大多数好氧生物中的主要抗氧化剂,被认为在植物叶绿体中特别重要,因为它有助于保护光合装置免受氧化损伤。在过表达叶绿体靶向的γ-谷氨酰半胱氨酸合成酶(γ-ECS)的转基因烟草植物中,GSH的叶面含量提高了三倍。矛盾的是,叶绿体中GSH生物合成能力的提高导致氧化应激大大增强,这表现为光强度依赖性的萎黄或坏死。该表型与GSH和γ-谷氨酰半胱氨酸(GSH的直接前体)都处于更氧化状态的叶面池相关。使用除了具有提高的γ-ECS水平之外还具有增强的谷胱甘肽合成酶或谷胱甘肽还原酶活性的杂种转基因植物,可以进一步操纵叶硫醇池的含量和氧化还原状态。鉴于这些实验的结果,我们建议γ-ECS转化的植物遭受叶绿体中氧化还原感应过程失败所导致的连续氧化损伤。

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