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酵母氧化应激反应。胞质硫氧还蛋白过氧化物酶I和线粒体功能状态的影响。

Yeast oxidative stress response. Influences of cytosolic thioredoxin peroxidase I and of the mitochondrial functional state.

作者信息

Demasi Ana P D, Pereira Gonçalo A G, Netto Luis E S

机构信息

Departamento de Genética e Evolução - IB - UNICAMP, Campinas, Brazil.

出版信息

FEBS J. 2006 Feb;273(4):805-16. doi: 10.1111/j.1742-4658.2006.05116.x.

Abstract

We investigated the changes in the oxidative stress response of yeast cells suffering mitochondrial dysfunction that could impair their viability. First, we demonstrated that cells with this dysfunction rely exclusively on cytosolic thioredoxin peroxidase I (cTPxI) and its reductant sulfiredoxin, among other antioxidant enzymes tested, to protect them against H2O2-induced death. This cTPxI-dependent protection could be related to its dual functions, as peroxidase and as molecular chaperone, suggested by mixtures of low and high molecular weight oligomeric structures of cTPxI observed in cells challenged with H2O2. We found that cTPxI deficiency leads to increased basal sulfhydryl levels and transcriptional activation of most of the H2O2-responsive genes, interpreted as an attempt by the cells to improve their antioxidant defense. On the other hand, mitochondrial dysfunction, specifically the electron transport blockage, provoked a huge depletion of sulfhydryl groups after H2O2 treatment and reduced the H2O2-mediated activation of some genes otherwise observed, impairing cell defense and viability. The transcription factors Yap1 and Skn7 are crucial for the antioxidant response of cells under inhibited electron flow condition and probably act in the same pathway of cTPxI to protect cells affected by this disorder. Yap1 cellular distribution was not affected by cTpxI deficiency and by mitochondrial dysfunction, in spite of the observed expression alterations of several Yap1-target genes, indicating alternative mechanisms of Yap1 activation/deactivation. Therefore, we propose that cTPxI is specifically important in the protection of yeast with mitochondrial dysfunction due to its functional versatility as an antioxidant, chaperone and modulator of gene expression.

摘要

我们研究了线粒体功能障碍的酵母细胞氧化应激反应的变化,这种功能障碍可能会损害其活力。首先,我们证明,在测试的其他抗氧化酶中,具有这种功能障碍的细胞仅依赖胞质硫氧还蛋白过氧化物酶I(cTPxI)及其还原剂硫化还原蛋白来保护它们免受H2O2诱导的死亡。这种依赖cTPxI的保护可能与其双重功能有关,即过氧化物酶和分子伴侣功能,这是在受到H2O2攻击的细胞中观察到的cTPxI低分子量和高分子量寡聚体结构混合物所表明的。我们发现,cTPxI缺乏会导致基础巯基水平升高以及大多数H2O2反应基因的转录激活,这被解释为细胞试图改善其抗氧化防御。另一方面,线粒体功能障碍,特别是电子传递受阻,在H2O2处理后导致巯基大量消耗,并降低了一些原本观察到的由H2O2介导的基因激活,损害了细胞防御和活力。转录因子Yap1和Skn7对于电子流受抑制条件下细胞的抗氧化反应至关重要,并且可能在cTPxI的同一途径中发挥作用,以保护受这种紊乱影响的细胞。尽管观察到几个Yap1靶基因的表达改变,但Yap1的细胞分布不受cTpxI缺乏和线粒体功能障碍的影响,这表明Yap1激活/失活存在替代机制。因此,我们提出,由于cTPxI作为抗氧化剂、伴侣蛋白和基因表达调节剂的功能多样性,它在保护线粒体功能障碍的酵母中具有特别重要的作用。

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