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玉米黑粉菌驱动蛋白-5 马达结构域与微管结合的冷冻电镜结构

Cryo-EM structure of the Ustilago maydis kinesin-5 motor domain bound to microtubules.

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

J Struct Biol. 2019 Sep 1;207(3):312-316. doi: 10.1016/j.jsb.2019.07.003. Epub 2019 Jul 6.

Abstract

In many eukaryotes, kinesin-5 motors are essential for mitosis, and small molecules that inhibit human kinesin-5 disrupt cell division. To investigate whether fungal kinesin-5s could be targets for novel fungicides, we studied kinesin-5 from the pathogenic fungus Ustilago maydis. We used cryo-electron microscopy to determine the microtubule-bound structure of its motor domain with and without the N-terminal extension. The ATP-like conformations of the motor in the presence or absence of this N-terminus are very similar, suggesting this region is structurally disordered and does not directly influence the motor ATPase. The Ustilago maydis kinesin-5 motor domain adopts a canonical ATP-like conformation, thereby allowing the neck linker to bind along the motor domain towards the microtubule plus end. However, several insertions within this motor domain are structurally distinct. Loop2 forms a non-canonical interaction with α-tubulin, while loop8 may bridge between two adjacent protofilaments. Furthermore, loop5 - which in human kinesin-5 is involved in binding allosteric inhibitors - protrudes above the nucleotide binding site, revealing a distinct binding pocket for potential inhibitors. This work highlights fungal-specific elaborations of the kinesin-5 motor domain and provides the structural basis for future investigations of kinesins as targets for novel fungicides.

摘要

在许多真核生物中,驱动蛋白-5 是有丝分裂所必需的,而抑制人驱动蛋白-5 的小分子会破坏细胞分裂。为了研究真菌驱动蛋白-5 是否可以成为新型杀真菌剂的靶标,我们研究了致病真菌玉米黑粉菌中的驱动蛋白-5。我们使用冷冻电子显微镜来确定其马达结构域与和没有 N 端延伸的微管结合的结构。在存在或不存在该 N 端的情况下,马达的 ATP 样构象非常相似,这表明该区域在结构上是无序的,并且不会直接影响马达 ATP 酶。玉米黑粉菌的驱动蛋白-5 马达结构域采用典型的 ATP 样构象,从而允许颈部接头沿着马达结构域向微管的正极结合。然而,该马达结构域中的几个插入序列在结构上是不同的。Loop2 与α-微管蛋白形成非典型相互作用,而 Loop8 可能在两个相邻原纤维之间桥接。此外,Loop5 在人驱动蛋白-5 中参与结合变构抑制剂,它突出于核苷酸结合位点之上,揭示了潜在抑制剂的独特结合口袋。这项工作突出了驱动蛋白-5 马达结构域的真菌特异性修饰,并为未来作为新型杀真菌剂靶标的驱动蛋白的研究提供了结构基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/92dc/6722389/80c03c9f6253/ga1.jpg

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