Wellcome Centre for Integrative Parasitology, University of Glasgow, Glasgow, United Kingdom.
School of Infection and Immunity, University of Glasgow, Glasgow, United Kingdom.
mBio. 2024 Oct 16;15(10):e0087224. doi: 10.1128/mbio.00872-24. Epub 2024 Aug 29.
Iron-sulfur (Fe-S) clusters are ubiquitous inorganic cofactors required for numerous essential cellular pathways. Since they cannot be scavenged from the environment, Fe-S clusters are synthesized in cellular compartments such as the apicoplast, mitochondrion, and cytosol. The cytosolic Fe-S cluster biosynthesis pathway relies on the transport of an intermediate from the mitochondrial pathway. An ATP-binding cassette (ABC) transporter called ABCB7 is responsible for this role in numerous commonly studied organisms, but its role in the medically important apicomplexan parasites has not yet been studied. Here we identify and characterize a ABCB7 homolog, which we name ABCB7-like (ABCB7L). Genetic depletion shows that it is essential for parasite growth and that its disruption triggers partial stage conversion. Characterization of the knock-down line highlights a defect in the biogenesis of cytosolic and nuclear Fe-S proteins leading to defects in protein translation and other pathways including DNA and RNA replication and metabolism. Our work provides support for a broad conservation of the connection between mitochondrial and cytosolic pathways in Fe-S cluster biosynthesis and reveals its importance for parasite survival.
Iron-sulfur (Fe-S) clusters are inorganic cofactors of proteins that play key roles in numerous essential biological processes, for example, respiration and DNA replication. Cells possess dedicated biosynthetic pathways to assemble Fe-S clusters, including a pathway in the mitochondrion and cytosol. A single transporter, called ABCB7, connects these two pathways, allowing an essential intermediate generated by the mitochondrial pathway to be used in the cytosolic pathway. Cytosolic and nuclear Fe-S proteins are dependent on the mitochondrial pathway, mediated by ABCB7, in numerous organisms studied to date. Here, we study the role of a homolog of ABCB7, which we name ABCB7-like (ABCB7L), in the ubiquitous unicellular apicomplexan parasite . We generated a depletion mutant of ABCB7L and showed its importance for parasite fitness. Using comparative quantitative proteomic analysis and experimental validation of the mutants, we show that ABCB7L is required for cytosolic and nuclear, but not mitochondrial, Fe-S protein biogenesis. Our study supports the conservation of a protein homologous to ABCB7 and which has a similar function in apicomplexan parasites and provides insight into an understudied aspect of parasite metabolism.
铁硫 (Fe-S) 簇是细胞内许多必需途径所需的普遍无机辅因子。由于它们不能从环境中回收利用,因此 Fe-S 簇在细胞区室(如类锥体、线粒体和细胞质)中合成。细胞质 Fe-S 簇生物合成途径依赖于从中粒体途径运输中间产物。一种称为 ABCB7 的 ATP 结合盒 (ABC) 转运蛋白负责在许多常见研究的生物体中发挥此作用,但它在医学上重要的顶复门寄生虫中的作用尚未得到研究。在这里,我们鉴定并表征了一种 ABCB7 同源物,我们将其命名为 ABCB7 样 (ABCB7L)。基因耗竭表明它对寄生虫的生长是必不可少的,其破坏会引发部分阶段转换。敲低系的特征强调了细胞质和核 Fe-S 蛋白生物发生的缺陷,导致蛋白质翻译和其他途径(包括 DNA 和 RNA 复制和代谢)的缺陷。我们的工作为线粒体和细胞质途径在 Fe-S 簇生物合成中的连接提供了广泛的支持,并揭示了其对寄生虫生存的重要性。
铁硫 (Fe-S) 簇是蛋白质的无机辅因子,在许多重要的生物过程中发挥关键作用,例如呼吸和 DNA 复制。细胞具有专门的生物合成途径来组装 Fe-S 簇,包括线粒体和细胞质中的途径。一种称为 ABCB7 的单一转运蛋白连接这两个途径,允许线粒体途径产生的一种必需中间产物用于细胞质途径。迄今为止,在研究的许多生物体中,细胞质和核 Fe-S 蛋白依赖于 ABCB7 介导的线粒体途径。在这里,我们研究了一种称为 ABCB7 样 (ABCB7L) 的 ABCB7 同源物在普遍存在的单细胞顶复门寄生虫中的作用。我们生成了 ABCB7L 的缺失突变体,并显示其对寄生虫适应性的重要性。通过比较定量蛋白质组学分析和对突变体的实验验证,我们表明 ABCB7L 是细胞质和核 Fe-S 蛋白生物发生所必需的,但不是线粒体 Fe-S 蛋白生物发生所必需的。我们的研究支持了与 ABCB7 具有同源性的蛋白质在顶复门寄生虫中具有相似功能的保守性,并为寄生虫代谢的一个未被充分研究的方面提供了深入了解。