Abteilung für Molekulare Strukturbiologie, Institut für Mikrobiologie und Genetik, Göttinger Zentrum für Molekulare Biowissenschaften, Georg-August-Universität Göttingen, D-37077 Göttingen, Germany.
Proc Natl Acad Sci U S A. 2013 Jan 15;110(3):960-5. doi: 10.1073/pnas.1215214110. Epub 2012 Dec 31.
In eukaryotes, the nucleocytoplasmic transport of macromolecules is mainly mediated by soluble nuclear transport receptors of the karyopherin-β superfamily termed importins and exportins. The highly versatile exportin chromosome region maintenance 1 (CRM1) is essential for nuclear depletion of numerous structurally and functionally unrelated protein and ribonucleoprotein cargoes. CRM1 has been shown to adopt a toroidal structure in several functional transport complexes and was thought to maintain this conformation throughout the entire nucleocytoplasmic transport cycle. We solved crystal structures of free CRM1 from the thermophilic eukaryote Chaetomium thermophilum. Surprisingly, unbound CRM1 exhibits an overall extended and pitched superhelical conformation. The two regulatory regions, namely the acidic loop and the C-terminal α-helix, are dramatically repositioned in free CRM1 in comparison with the ternary CRM1-Ran-Snurportin1 export complex. Single-particle EM analysis demonstrates that, in a noncrystalline environment, free CRM1 exists in equilibrium between extended, superhelical and compact, ring-like conformations. Molecular dynamics simulations show that the C-terminal helix plays an important role in regulating the transition from an extended to a compact conformation and reveal how the binding site for nuclear export signals of cargoes is modulated by different CRM1 conformations. Combining these results, we propose a model for the cooperativity of CRM1 export complex assembly involving the long-range allosteric communication between the distant binding sites of GTP-bound Ran and cargo.
在真核生物中,大分子的核质运输主要通过亲核素-β超家族的可溶性核转运受体来介导,这些受体被称为导入蛋白和输出蛋白。多功能的输出蛋白染色体区域维持蛋白 1(CRM1)对于许多结构和功能上不相关的蛋白质和核糖核蛋白货物的核耗竭是必不可少的。已经表明 CRM1 在几种功能性转运复合物中采用环形结构,并且被认为在整个核质转运循环中保持这种构象。我们从嗜热真核生物 Chaetomium thermophilum 中解决了游离 CRM1 的晶体结构。令人惊讶的是,未结合的 CRM1 表现出整体延伸和倾斜的超螺旋构象。与三元 CRM1-Ran-Snurportin1 出口复合物相比,两个调节区,即酸性环和 C 端α螺旋,在游离 CRM1 中被显著重新定位。单颗粒 EM 分析表明,在非晶体环境中,游离 CRM1 在延伸、超螺旋和紧凑、环状构象之间处于平衡状态。分子动力学模拟表明,C 端螺旋在调节从延伸到紧凑构象的转变中起着重要作用,并揭示了货物核输出信号结合位点如何被不同的 CRM1 构象调节。结合这些结果,我们提出了一个涉及 GTP 结合的 Ran 和货物的远距离结合位点之间长程变构通讯的 CRM1 出口复合物组装的协同作用模型。