Veling Mike T, Reidenbach Andrew G, Freiberger Elyse C, Kwiecien Nicholas W, Hutchins Paul D, Drahnak Michael J, Jochem Adam, Ulbrich Arne, Rush Matthew J P, Russell Jason D, Coon Joshua J, Pagliarini David J
Morgridge Institute for Research, Madison, WI 53715, USA; Department of Biochemistry, University of Wisconsin-Madison, Madison, WI 53706, USA.
Department of Biochemistry, University of Wisconsin-Madison, Madison, WI 53706, USA.
Mol Cell. 2017 Dec 7;68(5):970-977.e11. doi: 10.1016/j.molcel.2017.11.023.
Mitoproteases are becoming recognized as key regulators of diverse mitochondrial functions, although their direct substrates are often difficult to discern. Through multi-omic profiling of diverse Saccharomyces cerevisiae mitoprotease deletion strains, we predicted numerous associations between mitoproteases and distinct mitochondrial processes. These include a strong association between the mitochondrial matrix octapeptidase Oct1p and coenzyme Q (CoQ) biosynthesis-a pathway essential for mitochondrial respiration. Through Edman sequencing and in vitro and in vivo biochemistry, we demonstrated that Oct1p directly processes the N terminus of the CoQ-related methyltransferase, Coq5p, which markedly improves its stability. A single mutation to the Oct1p recognition motif in Coq5p disrupted its processing in vivo, leading to CoQ deficiency and respiratory incompetence. This work defines the Oct1p processing of Coq5p as an essential post-translational event for proper CoQ production. Additionally, our data visualization tool enables efficient exploration of mitoprotease profiles that can serve as the basis for future mechanistic investigations.
线粒体蛋白酶正逐渐被认为是多种线粒体功能的关键调节因子,尽管它们的直接底物往往难以识别。通过对多种酿酒酵母线粒体蛋白酶缺失菌株进行多组学分析,我们预测了线粒体蛋白酶与不同线粒体过程之间的众多关联。其中包括线粒体基质八肽酶Oct1p与辅酶Q(CoQ)生物合成之间的紧密关联——CoQ生物合成是线粒体呼吸所必需的途径。通过埃德曼测序以及体外和体内生化实验,我们证明Oct1p直接加工CoQ相关甲基转移酶Coq5p的N端,这显著提高了其稳定性。Coq5p中Oct1p识别基序的单个突变破坏了其在体内的加工过程,导致CoQ缺乏和呼吸功能不全。这项工作将Coq5p的Oct1p加工定义为正确产生CoQ的必需翻译后事件。此外,我们的数据可视化工具能够高效探索线粒体蛋白酶谱,可为未来的机制研究提供基础。