Ramachandran Rajesh, Surka Mark, Chappie Joshua S, Fowler Douglas M, Foss Ted R, Song Byeong Doo, Schmid Sandra L
Department of Cell Biology, The Scripps Research Institute, La Jolla, CA 92037, USA.
EMBO J. 2007 Jan 24;26(2):559-66. doi: 10.1038/sj.emboj.7601491. Epub 2006 Dec 14.
The large multidomain GTPase dynamin self-assembles around the necks of deeply invaginated coated pits at the plasma membrane and catalyzes vesicle scission by mechanisms that are not yet completely understood. Although a structural role for the 'middle' domain in dynamin function has been suggested, it has not been experimentally established. Furthermore, it is not clear whether this putative function pertains to dynamin structure in the unassembled state or to its higher-order self-assembly or both. Here, we demonstrate that two mutations in this domain, R361S and R399A, disrupt the tetrameric structure of dynamin in the unassembled state and impair its ability to stably bind to and nucleate higher-order self-assembly on membranes. Consequently, these mutations also impair dynamin's assembly-dependent stimulated GTPase activity.
大型多结构域GTP酶发动蛋白在质膜深陷的包被小窝颈部自组装,并通过尚未完全理解的机制催化囊泡切割。尽管有人提出“中间”结构域在发动蛋白功能中起结构作用,但尚未通过实验证实。此外,尚不清楚这种假定功能是与未组装状态下的发动蛋白结构有关,还是与其高阶自组装有关,或者两者都有关。在这里,我们证明该结构域中的两个突变R361S和R399A破坏了未组装状态下发动蛋白的四聚体结构,并损害了其稳定结合到膜上并在膜上形成高阶自组装的能力。因此,这些突变也损害了发动蛋白的组装依赖性刺激的GTP酶活性。