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首页> 外文期刊>The Plant Cell >The Arabidopsis onset of leaf death5 Mutation of Quinolinate Synthase Affects Nicotinamide Adenine Dinucleotide Biosynthesis and Causes Early Ageing
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The Arabidopsis onset of leaf death5 Mutation of Quinolinate Synthase Affects Nicotinamide Adenine Dinucleotide Biosynthesis and Causes Early Ageing

机译:拟南芥叶片死亡的发作5喹啉酸合酶的突变影响烟酰胺腺嘌呤二核苷酸的生物合成并导致早期衰老

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摘要

Leaf senescence in Arabidopsis thaliana is a strict, genetically controlled nutrient recovery program, which typically progresses in an age-dependent manner. Leaves of the Arabidopsis onset of leaf death5 (old5) mutant exhibit early developmental senescence. Here, we show that OLD5 encodes quinolinate synthase (QS), a key enzyme in the de novo synthesis of NAD. The Arabidopsis QS was previously shown to carry a Cys desulfurase domain that stimulates reconstitution of the oxygen-sensitive Fe-S cluster that is required for QS activity. The old5 lesion in this enzyme does not affect QS activity but it decreases its Cys desulfurase activity and thereby the long-term catalytic competence of the enzyme. The old5 mutation causes increased NAD steady state levels that coincide with increased activity of enzymes in the NAD salvage pathway. NAD plays a key role in cellular redox reactions, including those of the tricarboxylic acid cycle. Broad-range metabolite profiling of the old5 mutant revealed that it contains higher levels of tricarboxylic acid cycle intermediates and nitrogen-containing amino acids. The mutant displays a higher respiration rate concomitant with increased expression of oxidative stress markers. We postulate that the alteration in the oxidative state is integrated into the plant developmental program, causing early ageing of the mutant.
机译:拟南芥的叶片衰老是严格的,由基因控制的营养恢复程序,通常以年龄相关的方式进行。拟南芥叶片死亡的叶片死亡5(old5)突变体表现出早期发育衰老。在这里,我们显示OLD5编码喹啉合酶(QS),NAD从头合成中的关键酶。先前已证明拟南芥QS携带一个Cys脱硫酶结构域,该结构域刺激QS活性所需的对氧敏感的Fe-S团簇的重建。此酶中的old5病变不会影响QS活性,但会降低其Cys脱硫酶活性,从而降低该酶的长期催化能力。 old5突变会导致NAD稳态水平增加,这与NAD打捞途径中酶的活性增加相吻合。 NAD在细胞氧化还原反应(包括三羧酸循环的氧化还原反应)中起关键作用。 old5突变体的大范围代谢物分析表明,它含有更高水平的三羧酸循环中间体和含氮氨基酸。该突变体显示出更高的呼吸速率,同时氧化应激标志物的表达增加。我们假设氧化状态的改变已整合到植物发育程序中,导致突变体的早期衰老。

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