Center for RNA Research, Institute of Basic Science (IBS) , Seoul 08826, Korea.
School of Biological Sciences, Seoul National University , Seoul 08826, Korea.
J Am Chem Soc. 2017 Mar 15;139(10):3651-3662. doi: 10.1021/jacs.6b10418. Epub 2017 Mar 3.
The inner mitochondrial membrane (IMM) proteome plays a central role in maintaining mitochondrial physiology and cellular metabolism. Various important biochemical reactions such as oxidative phosphorylation, metabolite production, and mitochondrial biogenesis are conducted by the IMM proteome, and mitochondria-targeted therapeutics have been developed for IMM proteins, which is deeply related for various human metabolic diseases including cancer and neurodegenerative diseases. However, the membrane topology of the IMM proteome remains largely unclear because of the lack of methods to evaluate it in live cells in a high-throughput manner. In this article, we reveal the in vivo topological direction of 135 IMM proteins, using an in situ-generated radical probe with genetically targeted peroxidase (APEX). Owing to the short lifetime of phenoxyl radicals generated in situ by submitochondrial targeted APEX and the impermeability of the IMM to small molecules, the solvent-exposed tyrosine residues of both the matrix and intermembrane space (IMS) sides of IMM proteins were exclusively labeled with the radical probe in live cells by Matrix-APEX and IMS-APEX, respectively and identified by mass spectrometry. From this analysis, we confirmed 58 IMM protein topologies and we could determine the topological direction of 77 IMM proteins whose topology at the IMM has not been fully characterized. We also found several IMM proteins (e.g., LETM1 and OXA1) whose topological information should be revised on the basis of our results. Overall, our identification of structural information on the mitochondrial inner-membrane proteome can provide valuable insights for the architecture and connectome of the IMM proteome in live cells.
线粒体内膜(IMM)蛋白质组在维持线粒体生理学和细胞代谢中起着核心作用。各种重要的生化反应,如氧化磷酸化、代谢物生成和线粒体生物发生,都是由 IMM 蛋白质组进行的,并且已经针对 IMM 蛋白质开发了靶向线粒体的治疗方法,这与包括癌症和神经退行性疾病在内的各种人类代谢疾病密切相关。然而,由于缺乏在活细胞中以高通量方式评估 IMM 蛋白质组膜拓扑结构的方法,因此 IMM 蛋白质组的膜拓扑结构在很大程度上仍不清楚。在本文中,我们使用具有基因靶向过氧化物酶(APEX)的原位生成的自由基探针揭示了 135 种 IMM 蛋白质的体内拓扑方向。由于通过亚线粒体靶向 APEX 在原位生成的苯氧自由基的短寿命和 IMM 对小分子的不渗透性,因此只有基质和膜间隙(IMS)侧的 IMM 蛋白质的溶剂暴露的酪氨酸残基分别通过 Matrix-APEX 和 IMS-APEX 在用活细胞中的自由基探针进行标记,并通过质谱法进行鉴定。通过此分析,我们确认了 58 种 IMM 蛋白质的拓扑结构,并且能够确定 77 种 IMM 蛋白质的拓扑方向,这些蛋白质的 IMM 拓扑结构尚未完全表征。我们还发现了几种 IMM 蛋白质(例如 LETM1 和 OXA1),根据我们的结果,其拓扑信息应该进行修订。总体而言,我们对线粒体内膜蛋白质组结构信息的鉴定可为活细胞中 IMM 蛋白质组的结构和连接组学提供有价值的见解。