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首页> 外文期刊>Biochimica et biophysica acta. Molecular cell research >Depletion of thiol reducing capacity impairs cytosolic but not mitochondrial iron-sulfur protein assembly machineries
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Depletion of thiol reducing capacity impairs cytosolic but not mitochondrial iron-sulfur protein assembly machineries

机译:减少硫醇还原能力损害细胞溶质但不是线粒体铁 - 硫蛋白组装机械

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摘要

Iron-sulfur (Fe/S) clusters are versatile inorganic cofactors that play central roles in essential cellular functions, from respiration to genome stability. 30 proteins involved in Fe/S protein biogenesis in eukaryotes are known, many of which bind clusters via cysteine residues. This opens up the possibility that the thiol-reducing glutaredoxin and thioredoxin systems are required at both the Fe/S biogenesis and target protein level to counteract thiol oxidation. To address the possible interplay of thiol redox chemistry and Fe/S protein biogenesis, we have characterized the status of the mitochondrial (ISC) and cytosolic (CIA) Fe/S protein assembly machineries in Saccharomyces cerevisiae mutants in which the three partially redundant glutathione (Gir1) and thioredoxin (Trr1 and Trr2) oxidoreductases have been inactivated in either mitochondria, cytosol, or both compartments. Cells devoid of mitochondrial oxidoreductases maintained a functional mitochondrial ISC machinery and showed no altered iron homeostasis despite a non-functional complex II of the respiratory chain due to redox-specific defects. In cells that lack either cytosolic or total cellular thiol reducing capacity, both the ISC system and iron homeostasis were normal, yet cytosolic and nuclear Fe/S target proteins were not matured. This dysfunction could be attributed to a failure in the assembly of [4Fe-4S] clusters in the CIA factor Nar1, even though Nar1 maintained robust protein levels and stable interactions with later-acting CIA components. Overall, our analysis has uncovered a hitherto unknown thiol-dependence of the CIA machinery and has demonstrated the surprisingly varying sensitivity of Fe/S proteins to thiol oxidation.
机译:铁硫(Fe / s)簇是多功能的无机辅助因子,可在基因组稳定性的呼吸中起到基本蜂窝功能中的中心作用。 &涉及在真核生物中的Fe / S蛋白生物发生的30种蛋白质是已知的,其中许多其中许多通过半胱氨酸残基结合簇。这使得在Fe / s生物发生和靶蛋白水平中需要硫醇还原戊二糖胺毒素和硫氧化肽系统以抵消硫醇氧化。为了满足硫醇氧化铈化学和Fe / S蛋白生物发生的可能相互作用,我们表征了线粒体(ISC)和细胞溶质(CIA)Fe / S蛋白组装机的状态在酿酒酵母中的酿酒酶突变体中的状态,其中三个部分冗余的谷胱甘肽( GiR1)和硫蛋白(TRR1和TRR2)氧化还原酶已在线粒体,细胞溶质或两个隔室中灭活。缺乏线粒体氧化还原酶的细胞维持功能性线粒体ISC机械,并且尽管由于氧化还原特异性缺陷,呼吸链的非功能性复杂II也没有改变的铁稳态。在缺乏细胞溶质或总细胞硫醇还原能力的细胞中,ISC系统和铁稳态都是正常的,但细胞溶质和核Fe / S靶蛋白未成熟。这种功能障碍可归因于CIA因子NAR1中的[4FE-4S]簇的组装失败,尽管NAR1保持稳健的蛋白质水平和与后代代理CIA组分的稳定相互作用。总体而言,我们的分析已经发现了CIA机械的迄今未知的硫醇依赖性,并证明了Fe / S蛋白对硫醇氧化的惊人敏感性。

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