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Structural Model for Tubulin Recognition and Deformation by Kinesin-13 Microtubule Depolymerases

机译:驱动蛋白Kinesin-13微管解聚酶识别和变形的微管蛋白的结构模型。

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SummaryTo elucidate the structural basis of the mechanism of microtubule depolymerization by kinesin-13s, we analyzed complexes of tubulin and the Drosophila melanogaster kinesin-13 KLP10A by electron microscopy (EM) and fluorescence polarization microscopy. We report a nanometer-resolution (1.1 nm) cryo-EM three-dimensional structure of the KLP10A head domain (KLP10AHD) bound to curved tubulin. We found that binding of KLP10AHD induces a distinct tubulin configuration with displacement (shear) between tubulin subunits in addition to curvature. In this configuration, the kinesin-binding site differs from that in straight tubulin, providing an explanation for the distinct interaction modes of kinesin-13s with the microtubule lattice or its ends. The KLP10AHD-tubulin interface comprises three areas of interaction, suggesting a crossbow-type tubulin-bending mechanism. These areas include the kinesin-13 family conserved KVD residues, and as predicted from the crossbow model, mutating these residues changes the orientation and mobility of KLP10AHDs interacting with the microtubule.Graphical AbstractFigure optionsView in workspaceDownload full-size imageDownload as PowerPoint slideHighlights? Kinesin-13 tubulin complex structure reported at nanometer resolution ? Inter- and intradimer tubulin heterodimer interfaces are unambiguously identified ? A distinct curved-sheared tubulin conformation is described ? Insights provided into how kinesin-13s recognize and depolymerize microtubule ends.
机译:总结为了阐明驱动蛋白13s引起的微管解聚机理的结构基础,我们通过电子显微镜(EM)和荧光偏振显微镜分析了微管蛋白和果蝇果蝇驱动蛋白13 KLP10A的复合物。我们报告了绑定到弯曲微管蛋白的KLP10A头域(KLP10AHD)的纳米分辨率(1.1 nm)冷冻EM三维结构。我们发现,结合KLP10AHD可以诱导独特的微管蛋白构型,除了曲率外,还具有微管蛋白亚基之间的位移(剪切)。在这种配置中,驱动蛋白结合位点不同于直管蛋白,这解释了驱动蛋白13s与微管晶格或其末端的独特相互作用方式。 KLP10AHD-微管蛋白界面包含三个相互作用区域,表明cross型微管蛋白弯曲机制。这些区域包括kinesin-13家族保守的KVD残基,并且根据the模型预测,突变这些残基会改变KLP10AHD与微管相互作用的方向和迁移率。 Kinesin-13微管蛋白复合物结构以纳米分辨率报道?二聚体间和二聚体微管蛋白异二聚体的界面被明确鉴定。描述了独特的弯曲剪切微管蛋白构象。提供了有关驱动蛋白13s如何识别和解聚微管末端的见解。

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