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利用冷冻电镜技术揭示微管捕获的人驱动蛋白-5的结构及其抑制机制。

Structure of Microtubule-Trapped Human Kinesin-5 and Its Mechanism of Inhibition Revealed Using Cryoelectron Microscopy.

机构信息

Institute of Structural and Molecular Biology, Birkbeck College, London WC1E 7HX, UK.

Institute of Structural and Molecular Biology, Birkbeck College, London WC1E 7HX, UK.

出版信息

Structure. 2020 Apr 7;28(4):450-457.e5. doi: 10.1016/j.str.2020.01.013. Epub 2020 Feb 20.

Abstract

Kinesin-5 motors are vital mitotic spindle components, and disruption of their function perturbs cell division. We investigated the molecular mechanism of the human kinesin-5 inhibitor GSK-1, which allosterically promotes tight microtubule binding. GSK-1 inhibits monomeric human kinesin-5 ATPase and microtubule gliding activities, and promotes the motor's microtubule stabilization activity. Using cryoelectron microscopy, we determined the 3D structure of the microtubule-bound motor-GSK-1 at 3.8 Å overall resolution. The structure reveals that GSK-1 stabilizes the microtubule binding surface of the motor in an ATP-like conformation, while destabilizing regions of the motor around the empty nucleotide binding pocket. Density corresponding to GSK-1 is located between helix-α4 and helix-α6 in the motor domain at its interface with the microtubule. Using a combination of difference mapping and protein-ligand docking, we characterized the kinesin-5-GSK-1 interaction and further validated this binding site using mutagenesis. This work opens up new avenues of investigation of kinesin inhibition and spindle perturbation.

摘要

驱动蛋白-5 是有丝分裂纺锤体的重要组成部分,其功能的破坏会干扰细胞分裂。我们研究了人源驱动蛋白-5 抑制剂 GSK-1 的分子机制,该抑制剂通过变构促进与微管的紧密结合。GSK-1 抑制单体人源驱动蛋白-5 的 ATP 酶和微管滑行活性,并促进该马达的微管稳定活性。我们使用冷冻电子显微镜以 3.8Å 的整体分辨率确定了微管结合的马达-GSK-1 的 3D 结构。该结构表明,GSK-1 以类似于 ATP 的构象稳定马达的微管结合表面,同时使马达围绕空核苷酸结合口袋的区域不稳定。在马达结构域中,与微管的界面处,GSK-1 的密度位于α4 螺旋和α6 螺旋之间。我们结合差异映射和蛋白-配体对接,对驱动蛋白-5-GSK-1 相互作用进行了表征,并使用突变进一步验证了该结合位点。这项工作为驱动蛋白抑制和纺锤体扰动的研究开辟了新的途径。

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