Institut für Zytobiologie im Zentrum SYNMIKRO, Philipps-Universität Marburg, Marburg, Germany; Zentrum für Synthetische Mikrobiologie SynMikro, Marburg, Germany.
Institut für Zytobiologie im Zentrum SYNMIKRO, Philipps-Universität Marburg, Marburg, Germany.
J Biol Chem. 2022 Oct;298(10):102465. doi: 10.1016/j.jbc.2022.102465. Epub 2022 Sep 6.
Mitochondria harbor the bacteria-inherited iron-sulfur cluster assembly (ISC) machinery to generate [2Fe-2S; iron-sulfur (Fe-S)] and [4Fe-4S] proteins. In yeast, assembly of [4Fe-4S] proteins specifically involves the ISC proteins Isa1, Isa2, Iba57, Bol3, and Nfu1. Functional defects in their human equivalents cause the multiple mitochondrial dysfunction syndromes, severe disorders with a broad clinical spectrum. The bacterial Iba57 ancestor YgfZ was described to require tetrahydrofolate (THF) for its function in the maturation of selected [4Fe-4S] proteins. Both YgfZ and Iba57 are structurally related to an enzyme family catalyzing THF-dependent one-carbon transfer reactions including GcvT of the glycine cleavage system. On this basis, a universally conserved folate requirement in ISC-dependent [4Fe-4S] protein biogenesis was proposed. To test this idea for mitochondrial Iba57, we performed genetic and biochemical studies in Saccharomyces cerevisiae, and we solved the crystal structure of Iba57 from the thermophilic fungus Chaetomium thermophilum. We provide three lines of evidence for the THF independence of the Iba57-catalyzed [4Fe-4S] protein assembly pathway. First, yeast mutants lacking folate show no defect in mitochondrial [4Fe-4S] protein maturation. Second, the 3D structure of Iba57 lacks many of the side-chain contacts to THF as defined in GcvT, and the THF-binding pocket is constricted. Third, mutations in conserved Iba57 residues that are essential for THF-dependent catalysis in GcvT do not impair Iba57 function in vivo, in contrast to an exchange of the invariant, surface-exposed cysteine residue. We conclude that mitochondrial Iba57, despite structural similarities to both YgfZ and THF-binding proteins, does not utilize folate for its function.
线粒体拥有细菌继承的铁硫簇组装(ISC)机制,用于生成[2Fe-2S;铁硫(Fe-S)]和[4Fe-4S]蛋白。在酵母中,[4Fe-4S]蛋白的组装特别涉及 ISC 蛋白 Isa1、Isa2、Iba57、Bol3 和 Nfu1。其人类对应物的功能缺陷导致多种线粒体功能障碍综合征,这是一种具有广泛临床谱的严重疾病。细菌 Iba57 的祖先 YgfZ 被描述为其在成熟特定[4Fe-4S]蛋白中的功能需要四氢叶酸(THF)。YgfZ 和 Iba57 在结构上都与催化 THF 依赖性一碳转移反应的酶家族有关,包括甘氨酸裂解系统中的 GcvT。在此基础上,提出了 ISC 依赖性[4Fe-4S]蛋白生物发生中普遍保守的叶酸需求。为了在酵母线粒体 Iba57 中验证这一想法,我们在酿酒酵母中进行了遗传和生化研究,并解析了嗜热真菌 Chaetomium thermophilum 的 Iba57 晶体结构。我们提供了三条证据来证明 Iba57 催化的[4Fe-4S]蛋白组装途径不依赖 THF。首先,缺乏叶酸的酵母突变体在线粒体[4Fe-4S]蛋白成熟中没有缺陷。其次,Iba57 的 3D 结构缺乏 GcvT 中定义的许多与 THF 的侧链接触,并且 THF 结合口袋变窄。第三,在 GcvT 中对 THF 依赖性催化至关重要的保守 Iba57 残基的突变不会损害 Iba57 在体内的功能,与不变的表面暴露半胱氨酸残基的交换形成对比。我们得出结论,尽管线粒体 Iba57 与 YgfZ 和 THF 结合蛋白在结构上具有相似性,但它的功能不依赖于叶酸。