Aldaz Hector, Rice Luke M, Stearns Tim, Agard David A
Howard Hughes Medical Institute and Department of Biochemistry and Biophysics, University of California, San Francisco, 600 16th Street, San Francisco, California 94143, USA.
Nature. 2005 May 26;435(7041):523-7. doi: 10.1038/nature03586.
Microtubules are hollow polymers of alphabeta-tubulin that show GTP-dependent assembly dynamics and comprise a critical part of the eukaryotic cytoskeleton. Initiation of new microtubules in vivo requires gamma-tubulin, organized as an oligomer within the 2.2-MDa gamma-tubulin ring complex (gamma-TuRC) of higher eukaryotes. Structural insight is lacking regarding gamma-tubulin, its oligomerization and how it promotes microtubule assembly. Here we report the 2.7-A crystal structure of human gamma-tubulin bound to GTP-gammaS (a non-hydrolysable GTP analogue). We observe a 'curved' conformation for gamma-tubulin-GTPgammaS, similar to that seen for GDP-bound, unpolymerized alphabeta-tubulin. Tubulins are thought to represent a distinct class of GTP-binding proteins, and conformational switching in gamma-tubulin might differ from the nucleotide-dependent switching of signalling GTPases. A crystal packing interaction replicates the lateral contacts between alpha- and beta-tubulins in the microtubule, and this association probably forms the basis for gamma-tubulin oligomerization within the gamma-TuRC. Laterally associated gamma-tubulins in the gamma-TuRC might promote microtubule nucleation by providing a template that enhances the intrinsically weak lateral interaction between alphabeta-tubulin heterodimers. Because they are dimeric, alphabeta-tubulins cannot form microtubule-like lateral associations in the curved conformation. The lateral array of gamma-tubulins we observe in the crystal reveals a unique functional property of a monomeric tubulin.
微管是αβ-微管蛋白的中空聚合物,呈现出依赖鸟苷三磷酸(GTP)的组装动力学,并且是真核细胞骨架的关键组成部分。在体内,新微管的起始需要γ-微管蛋白,它在高等真核生物的2.2兆道尔顿γ-微管蛋白环复合物(γ-TuRC)中组装成寡聚体。目前缺乏关于γ-微管蛋白、其寡聚化以及它如何促进微管组装的结构见解。在此,我们报告了与GTP-γS(一种不可水解的GTP类似物)结合的人γ-微管蛋白的2.7埃晶体结构。我们观察到γ-微管蛋白-GTPγS呈现出一种“弯曲”构象,类似于与GDP结合的未聚合αβ-微管蛋白的构象。微管蛋白被认为代表一类独特的GTP结合蛋白,并且γ-微管蛋白中的构象转换可能不同于信号转导GTP酶的核苷酸依赖性转换。一种晶体堆积相互作用复制了微管中α-和β-微管蛋白之间的侧向接触,并且这种关联可能构成γ-TuRC内γ-微管蛋白寡聚化的基础。γ-TuRC中侧向关联的γ-微管蛋白可能通过提供一个模板来促进微管成核,该模板增强了αβ-微管蛋白异二聚体之间内在较弱的侧向相互作用。由于αβ-微管蛋白是二聚体,它们在弯曲构象中不能形成类似微管的侧向关联。我们在晶体中观察到的γ-微管蛋白侧向阵列揭示了单体微管蛋白的一种独特功能特性。