Institute of Biochemistry and Molecular Biology, ZBMZ, Faculty of Medicine, University of Freiburg, 79104 Freiburg, Germany.
Medical Biochemistry and Molecular Biology, Center for Molecular Signaling, PZMS, Saarland University, 66421 Homburg, Germany.
J Mol Biol. 2018 Jun 22;430(13):1883-1890. doi: 10.1016/j.jmb.2018.04.037. Epub 2018 May 4.
The multi-subunit mitochondrial contact site and cristae organizing system (MICOS) is a conserved protein complex of the inner mitochondrial membrane that is essential for maintenance of cristae architecture. The core subunit Mic10 forms large oligomers that build a scaffold and induce membrane curvature. The regulation of Mic10 oligomerization is poorly understood. We report that Mic26 exerts a destabilizing effect on Mic10 oligomers and thus functions in an antagonistic manner to the stabilizing subunit Mic27. The mitochondrial signature phospholipid cardiolipin shows a stabilizing function on Mic10 oligomers. Our findings indicate that the Mic10 core machinery of MICOS is regulated by several mechanisms, including interaction with cardiolipin and antagonistic actions of Mic26 and Mic27.
多亚基线粒体接触和嵴组织系统(MICOS)是一种保守的线粒体内膜蛋白复合物,对于嵴结构的维持是必不可少的。核心亚基 Mic10 形成大的寡聚体,构建支架并诱导膜弯曲。Mic10 寡聚体的调节机制了解甚少。我们报告说,Mic26 对 Mic10 寡聚体具有去稳定作用,因此以与稳定亚基 Mic27 拮抗的方式发挥作用。线粒体特征性磷脂心磷脂对 Mic10 寡聚体具有稳定作用。我们的发现表明,MICOS 的 Mic10 核心机制受多种机制调节,包括与心磷脂的相互作用以及 Mic26 和 Mic27 的拮抗作用。