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Cardiolipin's propensity for phase transition and its reorganization by dynamin-related protein 1 form a basis for mitochondrial membrane fission

机译:心磷脂的相变倾向及其通过动力蛋白相关蛋白1的重组构成线粒体膜裂变的基础

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摘要

Cardiolipin (CL) is an atypical, dimeric phospholipid essential for mitochondrial dynamics in eukaryotic cells. Dynamin-related protein 1 (Drp1), a cytosolic member of the dynamin superfamily of large GTPases, interacts with CL and functions to sustain the balance of mitochondrial division and fusion by catalyzing mitochondrial fission. Although recent studies have indicated a role for CL in stimulating Drp1 self-assembly and GTPase activity at the membrane surface, the mechanism by which CL functions in membrane fission, if at all, remains unclear. Here, using a variety of fluorescence spectroscopic and imaging approaches together with model membranes, we demonstrate that Drp1 and CL function cooperatively in effecting membrane constriction toward fission in three distinct steps. These involve 1) the preferential association of Drp1 with CL localized at a high spatial density in the membrane bilayer, 2) the reorganization of unconstrained, fluid-phase CL molecules in concert with Drp1 self-assembly, and 3) the increased propensity of CL to transition from a lamellar, bilayer arrangement to an inverted hexagonal, nonbilayer configuration in the presence of Drp1 and GTP, resulting in the creation of localized membrane constrictions that are primed for fission. Thus we propose that Drp1 and CL function in concert to catalyze mitochondrial division.
机译:心磷脂(CL)是真核细胞中线粒体动力学必不可少的非典型二聚磷脂。动力相关蛋白1(Drp1)是大型GTP酶的动力超家族的胞质成员,与CL相互作用,并通过催化线粒体裂变来维持线粒体分裂和融合的平衡。尽管最近的研究表明CL在刺激膜表面Drp1自组装和GTPase活性中的作用,但CL在膜裂变中起作用的机制(如果有的话)仍然不清楚。在这里,使用各种荧光光谱和成像方法以及模型膜,我们证明了Drp1和CL在三个不同步骤中协同作用于膜向裂变的收缩。这些包括:1)Drp1与位于膜双层中高空间密度的CL的优先结合; 2)无约束的液相CL分子与Drp1自组装协同的重组; 3)CL的倾向性增加在存在Drp1和GTP的情况下从层状双层结构转变为倒置的六边形非双层结构,从而导致形成局部膜收缩,以致裂变。因此,我们建议Drp1和CL协同作用来催化线粒体分裂。

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