Floyd Brendan J, Wilkerson Emily M, Veling Mike T, Minogue Catie E, Xia Chuanwu, Beebe Emily T, Wrobel Russell L, Cho Holly, Kremer Laura S, Alston Charlotte L, Gromek Katarzyna A, Dolan Brendan K, Ulbrich Arne, Stefely Jonathan A, Bohl Sarah L, Werner Kelly M, Jochem Adam, Westphall Michael S, Rensvold Jarred W, Taylor Robert W, Prokisch Holger, Kim Jung-Ja P, 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 Chemistry, University of Wisconsin-Madison, Madison, WI 53706, USA.
Mol Cell. 2016 Aug 18;63(4):621-632. doi: 10.1016/j.molcel.2016.06.033. Epub 2016 Aug 4.
Mitochondria are essential for numerous cellular processes, yet hundreds of their proteins lack robust functional annotation. To reveal functions for these proteins (termed MXPs), we assessed condition-specific protein-protein interactions for 50 select MXPs using affinity enrichment mass spectrometry. Our data connect MXPs to diverse mitochondrial processes, including multiple aspects of respiratory chain function. Building upon these observations, we validated C17orf89 as a complex I (CI) assembly factor. Disruption of C17orf89 markedly reduced CI activity, and its depletion is found in an unresolved case of CI deficiency. We likewise discovered that LYRM5 interacts with and deflavinates the electron-transferring flavoprotein that shuttles electrons to coenzyme Q (CoQ). Finally, we identified a dynamic human CoQ biosynthetic complex involving multiple MXPs whose topology we map using purified components. Collectively, our data lend mechanistic insight into respiratory chain-related activities and prioritize hundreds of additional interactions for further exploration of mitochondrial protein function.
线粒体对众多细胞过程至关重要,但其数百种蛋白质缺乏有力的功能注释。为了揭示这些蛋白质(称为MXPs)的功能,我们使用亲和富集质谱法评估了50种选定MXPs的条件特异性蛋白质-蛋白质相互作用。我们的数据将MXPs与多种线粒体过程联系起来,包括呼吸链功能的多个方面。基于这些观察结果,我们验证了C17orf89作为复合体I(CI)组装因子。C17orf89的破坏显著降低了CI活性,并且在一例未解决的CI缺乏病例中发现了其缺失。我们同样发现LYRM5与将电子穿梭至辅酶Q(CoQ)的电子传递黄素蛋白相互作用并使其脱辅基化。最后,我们鉴定出一个涉及多个MXPs的动态人类CoQ生物合成复合体,并使用纯化的组分绘制了其拓扑结构。总体而言,我们的数据为呼吸链相关活动提供了机制性见解,并确定了数百种其他相互作用,以便进一步探索线粒体蛋白质功能。