Guarani Virginia, McNeill Elizabeth M, Paulo Joao A, Huttlin Edward L, Fröhlich Florian, Gygi Steven P, Van Vactor David, Harper J Wade
Department of Cell Biology, Harvard Medical School, Boston, United States.
Elife. 2015 May 21;4:e06265. doi: 10.7554/eLife.06265.
The mitochondrial contact site and cristae junction (CJ) organizing system (MICOS) dynamically regulate mitochondrial membrane architecture. Through systematic proteomic analysis of human MICOS, we identified QIL1 (C19orf70) as a novel conserved MICOS subunit. QIL1 depletion disrupted CJ structure in cultured human cells and in Drosophila muscle and neuronal cells in vivo. In human cells, mitochondrial disruption correlated with impaired respiration. Moreover, increased mitochondrial fragmentation was observed upon QIL1 depletion in flies. Using quantitative proteomics, we show that loss of QIL1 resulted in MICOS disassembly with the accumulation of a MIC60-MIC19-MIC25 sub-complex and degradation of MIC10, MIC26, and MIC27. Additionally, we demonstrated that in QIL1-depleted cells, overexpressed MIC10 fails to significantly restore its interaction with other MICOS subunits and SAMM50. Collectively, our work uncovers a previously unrecognized subunit of the MICOS complex, necessary for CJ integrity, cristae morphology, and mitochondrial function and provides a resource for further analysis of MICOS architecture.
线粒体接触位点与嵴连接(CJ)组织系统(MICOS)动态调节线粒体膜结构。通过对人类MICOS进行系统的蛋白质组学分析,我们鉴定出QIL1(C19orf70)为一种新型的保守MICOS亚基。在培养的人类细胞以及果蝇体内的肌肉和神经细胞中,QIL1缺失会破坏CJ结构。在人类细胞中,线粒体破坏与呼吸功能受损相关。此外,在果蝇中,QIL1缺失后会观察到线粒体碎片化增加。利用定量蛋白质组学,我们发现QIL1缺失导致MICOS解体,伴有MIC60 - MIC19 - MIC25亚复合物的积累以及MIC10、MIC26和MIC27的降解。此外,我们证明在QIL1缺失的细胞中,过表达的MIC10无法显著恢复其与其他MICOS亚基及SAMM50的相互作用。总的来说,我们的工作揭示了MICOS复合物中一个以前未被认识的亚基,它对于CJ完整性、嵴形态和线粒体功能是必需的,并为进一步分析MICOS结构提供了资源。