Basu Somsuvro, Leonard Joanne C, Desai Nishal, Mavridou Despoina A I, Tang Kong Ho, Goddard Alan D, Ginger Michael L, Lukeš Julius, Allen James W A
Biology Centre, Institute of Parasitology, Czech Academy of Sciences and Faculty of Sciences, University of South Bohemia, České Budějovice (Budweis), Czech Republic.
Eukaryot Cell. 2013 Feb;12(2):343-55. doi: 10.1128/EC.00304-12. Epub 2012 Dec 21.
In yeast (Saccharomyces cerevisiae) and animals, the sulfhydryl oxidase Erv1 functions with Mia40 in the import and oxidative folding of numerous cysteine-rich proteins in the mitochondrial intermembrane space (IMS). Erv1 is also required for Fe-S cluster assembly in the cytosol, which uses at least one mitochondrially derived precursor. Here, we characterize an essential Erv1 orthologue from the protist Trypanosoma brucei (TbERV1), which naturally lacks a Mia40 homolog. We report kinetic parameters for physiologically relevant oxidants cytochrome c and O(2), unexpectedly find O(2) and cytochrome c are reduced simultaneously, and demonstrate that efficient reduction of O(2) by TbERV1 is not dependent upon a simple O(2) channel defined by conserved histidine and tyrosine residues. Massive mitochondrial swelling following TbERV1 RNA interference (RNAi) provides evidence that trypanosome Erv1 functions in IMS protein import despite the natural absence of the key player in the yeast and animal import pathways, Mia40. This suggests significant evolutionary divergence from a recently established paradigm in mitochondrial cell biology. Phylogenomic profiling of genes also points to a conserved role for TbERV1 in cytosolic Fe-S cluster assembly. Conversely, loss of genes implicated in precursor delivery for cytosolic Fe-S assembly in Entamoeba, Trichomonas, and Giardia suggests fundamental differences in intracellular trafficking pathways for activated iron or sulfur species in anaerobic versus aerobic eukaryotes.
在酵母(酿酒酵母)和动物中,巯基氧化酶Erv1与Mia40共同作用,参与线粒体外膜间隙(IMS)中众多富含半胱氨酸蛋白的导入和氧化折叠过程。Erv1对于胞质中Fe-S簇的组装也是必需的,该过程至少使用一种源自线粒体的前体。在此,我们鉴定了原生动物布氏锥虫(TbERV1)中一种必需的Erv1直系同源物,其天然缺乏Mia40同源物。我们报告了与生理相关的氧化剂细胞色素c和O₂的动力学参数,意外地发现O₂和细胞色素c会同时被还原,并证明TbERV1对O₂的有效还原不依赖于由保守组氨酸和酪氨酸残基定义的简单O₂通道。TbERV1 RNA干扰(RNAi)后线粒体大量肿胀,这表明尽管在酵母和动物导入途径中的关键因子Mia40天然缺失,但锥虫Erv1仍在IMS蛋白导入中发挥作用。这表明与线粒体细胞生物学中最近确立的范式存在显著的进化差异。对基因的系统基因组分析也表明TbERV1在胞质Fe-S簇组装中具有保守作用。相反,在Entamoeba、Trichomonas和Giardia中,参与胞质Fe-S组装的前体传递相关基因的缺失表明,厌氧与需氧真核生物中活性铁或硫物种的细胞内运输途径存在根本差异。