Möckel Martin M, Heim Andreas, Tischer Thomas, Mayer Thomas U
Department of Molecular Genetics and Konstanz Research School Chemical Biology, University of Konstanz, Universitätsstraße 10, Konstanz 78457, Germany.
Department of Molecular Genetics and Konstanz Research School Chemical Biology, University of Konstanz, Universitätsstraße 10, Konstanz 78457, Germany
Biol Open. 2017 Apr 15;6(4):463-470. doi: 10.1242/bio.023952.
The assembly and functionality of the mitotic spindle depends on the coordinated activities of microtubule-associated motor proteins of the dynein and kinesin superfamily. Our current understanding of the function of motor proteins is significantly shaped by studies using egg extract as its open structure allows complex experimental manipulations hardly feasible in other model systems. Yet, the Kinesin-8 orthologue of human Kif18A has not been described in so far. Here, we report the cloning and characterization of (Xl) Kif18A. Kif18A is expressed during oocyte maturation and its depletion from meiotic egg extract results in severe spindle defects. These defects can be rescued by wild-type Kif18A, but not Kif18A lacking motor activity or the C-terminus. Single-molecule microscopy assays revealed that Xl_Kif18A possesses high processivity, which depends on an additional C-terminal microtubule-binding site. Human tissue culture cells depleted of endogenous Kif18A display mitotic defects, which can be rescued by wild-type, but not tail-less Xl_Kif18A. Thus, Xl_Kif18A is the functional orthologue of human Kif18A whose activity is essential for the correct function of meiotic spindles in oocytes.
有丝分裂纺锤体的组装和功能取决于动力蛋白和驱动蛋白超家族中与微管相关的运动蛋白的协同活动。我们目前对运动蛋白功能的理解很大程度上受到使用卵提取物进行的研究的影响,因为其开放结构允许进行在其他模型系统中几乎不可行的复杂实验操作。然而,迄今为止,人类Kif18A的驱动蛋白8直系同源物尚未被描述。在这里,我们报告了(爪蟾)Kif18A的克隆和特性。Kif18A在卵母细胞成熟过程中表达,从减数分裂卵提取物中去除它会导致严重的纺锤体缺陷。这些缺陷可以通过野生型Kif18A挽救,但不能通过缺乏运动活性或C末端的Kif18A挽救。单分子显微镜分析表明,爪蟾Kif18A具有高持续性,这取决于一个额外的C末端微管结合位点。耗尽内源性Kif18A的人类组织培养细胞表现出有丝分裂缺陷,这可以通过野生型但不能通过无尾的爪蟾Kif18A挽救。因此,爪蟾Kif18A是人类Kif18A的功能直系同源物,其活性对于卵母细胞减数分裂纺锤体的正确功能至关重要。