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The crossover conformational shift of the GTPase atlastin provides the energy driving ER fusion

机译:GTPase atlastin的交叉构象位移提供了驱动ER融合的能量

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The homotypic fusion of endoplasmic reticulum membranes is catalyzed by the atlastin GTPase. The mechanism involves trans-dimerization between GTPase heads and a favorable crossover conformational shift, catalyzed by GTP hydrolysis, that converts the dimer from a “prefusion” to “postfusion” state. However, whether crossover formation actually energizes fusion remains unclear, as do the sequence of events surrounding it. Here, we made mutations in atlastin to selectively destabilize the crossover conformation and used fluorescence-based kinetic assays to analyze the variants. All variants underwent dimerization and crossover concurrently, and at wild-type rates. However, certain variants were unstable once in the crossover dimer conformation, and crossover dimer stability closely paralleled lipid-mixing activity. Tethering, however, appeared to be unimpaired in all mutant variants. The results suggest that tethering and lipid mixing are catalyzed concurrently by GTP hydrolysis but that the energy requirement for lipid mixing exceeds that for tethering, and the full energy released through crossover formation is necessary for fusion.
机译:内质网膜的同型融合是由atlastin GTPase催化的。该机制涉及GTP酶头之间的反式二聚和由GTP水解催化的有利的交叉构象转变,该转变将二聚体从“预融合”状态转变为“后融合”状态。但是,目前还不清楚交联的形成是否真正激发了融合,围绕它的事件序列也是如此。在这里,我们在atlastin中进行了突变以选择性地破坏交叉构象,并使用基于荧光的动力学分析来分析变异。所有变体同时以野生型速率经历二聚化和交换。但是,某些变体一旦具有交叉二聚体构象就不稳定,并且交叉二聚体的稳定性与脂质混合活性非常相似。然而,在所有突变体变体中,系链似乎没有受到损害。结果表明,GTP水解可同时催化束缚和脂质混合,但是脂质混合所需的能量超过了束缚,并且通过交叉形成释放的全部能量对于融合是必需的。

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