首页> 外文期刊>Molecular Plant >Induction of the AOX1D Isoform of Alternative Oxidase in A. thaliana T-DNA Insertion Lines Lacking Isoform AOX1A Is Insufficient to Optimize Photosynthesis when Treated with Antimycin A
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Induction of the AOX1D Isoform of Alternative Oxidase in A. thaliana T-DNA Insertion Lines Lacking Isoform AOX1A Is Insufficient to Optimize Photosynthesis when Treated with Antimycin A

机译:缺乏同工型AOX1A的拟南芥T-DNA插入株系中替代氧化酶AOX1D同工型的诱导不足以优化抗霉素A处理的光合作用

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摘要

Plant respiration is characterized by two pathways for electron transfer to O2, namely the cytochrome pathway (CP) that is linked to ATP production, and the alternative pathway (AP), where electrons from ubiquinol are directly transferred to O2 via an alternative oxidase (AOX) without concomitant ATP production. This latter pathway is well suited to dispose of excess electrons in the light, leading to optimized photosynthetic performance. We have characterized T-DNA-insertion mutant lines of Arabidopsis thaliana that do not express the major isoform, AOX1A. In standard growth conditions, these plants did not show any phenotype, but restriction of electron flow through CP by antimycin A, which induces AOX1A expression in the wild-type, led to an increased expression of AOX1D in leaves of the aox1a-knockout mutant. Despite the increased presence of the AOX1D isoform in the mutant, antimycin A caused inhibition of photosynthesis, increased ROS, and ultimately resulted in amplified membrane leakage and necrosis when compared to the wild-type, which was only marginally affected by the inhibitor. It thus appears that AOX1D was unable to fully compensate for the loss of AOX1A when electron flow via the CP is restricted. A combination of inhibition studies, coupled to metabolite profiling and targeted expression analysis of the P-protein of glycine decarboxylase complex (GDC), suggests that the aox1a mutants attempt to increase their capacity for photorespiration. However, given their deficiency, it is intriguing that increase in expression neither of AOX1D nor of GDC could fully compensate for the lack of AOX1A to optimize photosynthesis when treated with antimycin A. We suggest that the aox1a mutants can further be used to substantiate the current models concerning the influence of mitochondrial redox on photosynthetic performance and gene expression.
机译:植物呼吸的特征是电子转移到O 2 的两个途径,即与ATP产生有关的细胞色素途径(CP)和替代途径(AP),来自泛醇的电子被直接转移通过另一种氧化酶(AOX)生成O 2 而不伴随产生ATP。后一种途径非常适合处理光中多余的电子,从而优化光合作用。我们已经表征了不表达主要亚型AOX1A的拟南芥的T-DNA插入突变株。在标准生长条件下,这些植物没有表现出任何表型,但是抗霉素A限制了电子流经CP的流动,从而诱导了AOX1A在野生型中的表达,导致aox1a敲除突变体叶片中AOX1D的表达增加。尽管突变体中AOX1D亚型的存在增加,但与野生型相比,抗霉素A却会抑制光合作用,增加ROS并最终导致放大的膜渗漏和坏死,后者仅受到抑制剂的轻微影响。因此,当通过CP的电子流受到限制时,AOX1D似乎无法完全补偿AOX1A的损失。抑制研究与代谢物谱分析和甘氨酸脱羧酶复合物(GDC)P蛋白的靶向表达分析相结合,表明aox1a突变体试图提高其光呼吸能力。但是,鉴于它们的不足,令人感兴趣的是,用抗霉素A处理时,AOX1D和GDC的表达增加均不能完全弥补AOX1A缺乏以优化光合作用的不足。我们建议aox1a突变体可进一步用于证实目前的线粒体氧化还原对光合性能和基因表达影响的模型。

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