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Dimeric ferrochelatase bridges ABCB7 and ABCB10 homodimers in an architecturally defined molecular complex required for heme biosynthesis

机译:二聚体铁螯合酶桥接血红素生物合成所需的结构定义的分子复合物中的ABCB7和ABCB10同二聚体

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摘要

Loss-of-function mutations in the ATP-binding cassette (ABC) transporter of the inner mitochondrial membrane, ABCB7, cause X-linked sideroblastic anemia with ataxia, a phenotype that remains largely unexplained by the proposed role of ABCB7 in exporting a special sulfur species for use in cytosolic iron-sulfur (Fe-S) cluster biogenesis. Here, we generated inducible ABCB7-knockdown cell lines to examine the time-dependent consequences of loss of ABCB7. We found that knockdown of ABCB7 led to significant loss of mitochondrial Fe-S proteins, which preceded the development of milder defects in cytosolic Fe-S enzymes. In erythroid cells, loss of ABCB7 altered cellular iron distribution and caused mitochondrial iron overload due to activation of iron regulatory proteins 1 and 2 in the cytosol and to upregulation of the mitochondrial iron importer, mitoferrin-1. Despite the exceptionally large amount of iron imported into mitochondria, erythroid cells lacking ABCB7 showed a profound hemoglobinization defect and underwent apoptosis triggered by oxidative stress. In ABCB7-depleted cells, defective heme biosynthesis resulted from translational repression of ALAS2 by iron regulatory proteins and from decreased stability of the terminal enzyme ferrochelatase. By combining chemical crosslinking, tandem mass spectrometry and mutational analyses, we characterized a complex formed of ferrochelatase, ABCB7 and ABCB10, and mapped the interfaces of interactions of its components. A dimeric ferrochelatase physically bridged ABCB7 and ABCB10 homodimers by binding near the nucleotide-binding domains of each ABC transporter. Our studies not only underscore the importance of ABCB7 for mitochondrial Fe-S biogenesis and iron homeostasis, but also provide the biochemical characterization of a multiprotein complex required for heme biosynthesis.
机译:线粒体内膜ABCB7的ATP结合盒(ABC)转运蛋白的功能丧失突变引起共济失调的X连锁铁质贫血,这种表型在ABCB7在输出特殊硫的作用中尚无法解释种用于胞质铁硫(Fe-S)簇生物发生。在这里,我们生成了可诱导的ABCB7敲低细胞系,以检查ABCB7丢失的时间依赖性后果。我们发现,敲低ABCB7会导致线粒体Fe-S蛋白大量损失,这是在胞质Fe-S酶出现较轻缺陷之前。在红系细胞中,由于细胞质中铁调节蛋白1和2的活化以及线粒体铁输入物mitoferrin-1的上调,ABCB7的丢失改变了细胞铁的分布并导致线粒体铁超载。尽管极大量的铁输入线粒体,但缺乏ABCB7的类红细胞显示出严重的血红蛋白缺陷,并经历了氧化应激引发的细胞凋亡。在耗尽ABCB7的细胞中,血红素生物合成的缺陷是由于铁调节蛋白对ALAS2的翻译抑制以及末端酶亚铁螯合酶稳定性的降低。通过结合化学交联,串联质谱和突变分析,我们表征了铁螯合酶,ABCB7和ABCB10形成的复合物,并绘制了其成分相互作用的界面。二聚铁螯合酶通过在每个ABC转运蛋白的核苷酸结合结构域附近结合而物理连接ABCB7和ABCB10同二聚体。我们的研究不仅强调ABCB7对线粒体Fe-S生物发生和铁稳态的重要性,而且还提供了血红素生物合成所需的多蛋白复合物的生化特性。

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