从与秋水仙碱和类微管相关蛋白结构域的复合物中洞察微管蛋白调控机制。

Insight into tubulin regulation from a complex with colchicine and a stathmin-like domain.

作者信息

Ravelli Raimond B G, Gigant Benoît, Curmi Patrick A, Jourdain Isabelle, Lachkar Sylvie, Sobel André, Knossow Marcel

机构信息

European Molecular Biology Laboratory (EMBL), Grenoble Outstation, 6 rue Jules Horowitz, BP 181, 38042 Grenoble Cedex 9, France.

出版信息

Nature. 2004 Mar 11;428(6979):198-202. doi: 10.1038/nature02393.

Abstract

Microtubules are cytoskeletal polymers of tubulin involved in many cellular functions. Their dynamic instability is controlled by numerous compounds and proteins, including colchicine and stathmin family proteins. The way in which microtubule instability is regulated at the molecular level has remained elusive, mainly because of the lack of appropriate structural data. Here, we present the structure, at 3.5 A resolution, of tubulin in complex with colchicine and with the stathmin-like domain (SLD) of RB3. It shows the interaction of RB3-SLD with two tubulin heterodimers in a curved complex capped by the SLD amino-terminal domain, which prevents the incorporation of the complexed tubulin into microtubules. A comparison with the structure of tubulin in protofilaments shows changes in the subunits of tubulin as it switches from its straight conformation to a curved one. These changes correlate with the loss of lateral contacts and provide a rationale for the rapid microtubule depolymerization characteristic of dynamic instability. Moreover, the tubulin-colchicine complex sheds light on the mechanism of colchicine's activity: we show that colchicine binds at a location where it prevents curved tubulin from adopting a straight structure, which inhibits assembly.

摘要

微管是由微管蛋白组成的细胞骨架聚合物,参与许多细胞功能。它们的动态不稳定性受多种化合物和蛋白质控制,包括秋水仙碱和Stathmin家族蛋白。微管不稳定性在分子水平上的调控方式一直难以捉摸,主要是因为缺乏合适的结构数据。在此,我们展示了与秋水仙碱以及RB3的类Stathmin结构域(SLD)结合的微管蛋白的结构,分辨率为3.5埃。它显示了RB3-SLD与两个微管蛋白异二聚体在一个由SLD氨基末端结构域封端的弯曲复合物中的相互作用,这阻止了复合微管蛋白掺入微管。与原丝中微管蛋白结构的比较表明,微管蛋白亚基从其直线构象转变为弯曲构象时发生了变化。这些变化与横向接触的丧失相关,并为动态不稳定性特有的微管快速解聚提供了理论依据。此外,微管蛋白-秋水仙碱复合物揭示了秋水仙碱的作用机制:我们表明秋水仙碱结合在一个阻止弯曲微管蛋白形成直线结构的位置,从而抑制组装。

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