Department of Pharmacology, Case Western Reserve University School of Medicine, Cleveland, OH, 44106, USA.
Center for Mitochondrial Diseases, Case Western Reserve University School of Medicine, Cleveland, OH, 44106, USA.
Sci Rep. 2017 Sep 6;7(1):10744. doi: 10.1038/s41598-017-11008-3.
Dynamins are mechano-chemical GTPases involved in the remodeling of cellular membranes. In this study, we have investigated the mechanism of dynamin-related protein 1 (Drp1), a key mediator of mitochondrial fission. To date, it is unclear how Drp1 assembles on the mitochondrial outer membrane in response to different lipid signals to induce membrane fission. Here, we present cryo-EM structures of Drp1 helices on nanotubes with distinct lipid compositions to mimic membrane interactions with the fission machinery. These Drp1 polymers assemble exclusively through stalk and G-domain dimerizations, which generates an expanded helical symmetry when compared to other dynamins. Interestingly, we found the characteristic gap between Drp1 and the lipid bilayer was lost when the mitochondrial specific lipid cardiolipin was present, as Drp1 directly interacted with the membrane. Moreover, this interaction leads to a change in the helical structure, which alters G-domain interactions to enhance GTPase activity. These results demonstrate how lipid cues at the mitochondrial outer membrane (MOM) can alter Drp1 structure to activate the fission machinery.
动力蛋白是一种机械化学 GTP 酶,参与细胞膜的重塑。在这项研究中,我们研究了与线粒体分裂关键介质相关的动力蛋白 1(Drp1)的机制。迄今为止,尚不清楚 Drp1 如何根据不同的脂质信号在响应时组装到线粒体外膜上,以诱导膜分裂。在这里,我们展示了具有不同脂质组成的纳米管上 Drp1 螺旋的冷冻电镜结构,以模拟与分裂机制的膜相互作用。这些 Drp1 聚合物仅通过柄部和 G 结构域二聚化组装,与其他动力蛋白相比,这会产生扩展的螺旋对称。有趣的是,当存在线粒体特异性脂质心磷脂时,我们发现 Drp1 与脂质双层之间的特征间隙消失了,因为 Drp1 直接与膜相互作用。此外,这种相互作用导致螺旋结构发生变化,从而改变 G 结构域相互作用以增强 GTP 酶活性。这些结果表明线粒体外膜 (MOM) 上的脂质线索如何改变 Drp1 结构以激活分裂机制。