Alves Rui, Herrero Enrique, Sorribas Albert
Departament de Ciencies Mediques Basiques, Universidad de Lleida, Lleida, Spain.
Proteins. 2004 Nov 15;57(3):481-92. doi: 10.1002/prot.20228.
Grx5 is a Saccharomyces cerevisiae glutaredoxin involved in iron-sulfur cluster (FeSC) biogenesis. Previous work suggests that Grx5 is involved in regulating protein cysteine glutathionylation, prompting several questions about the systemic role of Grx5. First, is the regulation of mixed protein-glutathione disulfide bridges in FeSC biosynthetic proteins by Grx5 sufficient to account for the observed phenotypes of the Deltagrx5 mutants? If so, does Grx5 regulate the oxidation state of mixed protein-glutathione disulfide bridges in FeSC biogenesis in general? Alternatively, can the Deltagrx5 mutant phenotypes be explained if Grx5 acts on just one or a few of the FeSC biogenesis proteins?In the first part of this article, we address these questions by building and analyzing a mathematical model of FeSC biosynthesis. We show that, independent of the tested parameter values, the dynamic behavior observed in cells depleted of Grx5 can only be qualitatively reproduced if Grx5 acts by regulating the initial assembly of FeSC in scaffold proteins. This can be achieved by acting on the cysteine desulfurase (Nfs1) activity and/or on scaffold functionality. In the second part of this article, we use structural bioinformatics methods to evaluate the possibility of interaction between Grx5 and proteins involved in FeSC biogenesis. Based on such methods, our results indicate that the proteins with which Grx5 is more likely to interact are consistent with the kinetic modeling results.Thus, our theoretical studies, combined with known Grx5 biochemistry, suggest that Grx5 acts on FeSC biosynthesis by regulating the redox state of important cysteine residues in Nfs1 and/or in the scaffold proteins where FeSC initially assemble.
Grx5是一种参与铁硫簇(FeSC)生物合成的酿酒酵母谷氧还蛋白。先前的研究表明,Grx5参与调节蛋白质半胱氨酸谷胱甘肽化,这引发了几个关于Grx5系统作用的问题。首先,Grx5对FeSC生物合成蛋白中混合蛋白 - 谷胱甘肽二硫键的调节是否足以解释Deltagrx5突变体所观察到的表型?如果是这样,Grx5是否一般调节FeSC生物合成中混合蛋白 - 谷胱甘肽二硫键的氧化状态?或者,如果Grx5仅作用于一种或几种FeSC生物合成蛋白,能否解释Deltagrx5突变体表型?在本文的第一部分,我们通过构建和分析FeSC生物合成的数学模型来解决这些问题。我们表明,与测试的参数值无关,只有当Grx5通过调节支架蛋白中FeSC的初始组装起作用时,才能定性地重现Grx5缺失细胞中观察到的动态行为。这可以通过作用于半胱氨酸脱硫酶(Nfs1)活性和/或支架功能来实现。在本文的第二部分,我们使用结构生物信息学方法来评估Grx5与参与FeSC生物合成的蛋白质之间相互作用的可能性。基于这些方法,我们的结果表明,与Grx5更可能相互作用的蛋白质与动力学建模结果一致。因此,我们的理论研究与已知的Grx5生物化学相结合,表明Grx5通过调节Nfs1和/或FeSC最初组装的支架蛋白中重要半胱氨酸残基的氧化还原状态来作用于FeSC生物合成。