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肌醇焦磷酸激酶Asp1调节粟酒裂殖酵母中的染色体分离保真度和纺锤体功能。

Inositol Pyrophosphate Kinase Asp1 Modulates Chromosome Segregation Fidelity and Spindle Function in Schizosaccharomyces pombe.

作者信息

Topolski Boris, Jakopec Visnja, Künzel Natascha A, Fleig Ursula

机构信息

Institut für Funktionelle Genomforschung der Mikroorganismen, Eukaryotische Mikrobiologie, Heinrich-Heine-Universität, Düsseldorf, Germany.

Institut für Funktionelle Genomforschung der Mikroorganismen, Eukaryotische Mikrobiologie, Heinrich-Heine-Universität, Düsseldorf, Germany

出版信息

Mol Cell Biol. 2016 Nov 28;36(24):3128-3140. doi: 10.1128/MCB.00330-16. Print 2016 Dec 15.

Abstract

Chromosome transmission fidelity during mitosis is of critical importance for the fitness of an organism, as mistakes will lead to aneuploidy, which has a causative role in numerous severe diseases. Proper segregation of chromosomes depends on interdependent processes at the microtubule-kinetochore interface and the spindle assembly checkpoint. Here we report the discovery of a new element essential for chromosome transmission fidelity that implicates inositol pyrophosphates (IPPs) as playing a key role in this process. The protein is Asp1, the Schizosaccharomyces pombe member of the highly conserved Vip1 family. Vip1 enzymes are bifunctional: they consist of an IPP-generating kinase domain and a pyrophosphatase domain that uses such IPPs as substrates. We show that Asp1 kinase function is required for bipolar spindle formation. The absence of Asp1-generated IPPs resulted in errors in sister chromatid biorientation, a prolonged checkpoint-controlled delay of anaphase onset, and chromosome missegregation. Remarkably, expression of Asp1 variants that generated higher-than-wild-type levels of IPPs led to a faster-than-wild-type entry into anaphase A without an increase in chromosome missegregation. In fact, the chromosome transmission fidelity of a nonessential chromosome was enhanced with increased cellular IPPs. Thus, we identified an element that optimized the wild-type chromosome transmission process.

摘要

有丝分裂期间染色体传递的保真度对于生物体的健康至关重要,因为错误会导致非整倍体,而非整倍体在许多严重疾病中起致病作用。染色体的正确分离取决于微管-动粒界面和纺锤体组装检查点的相互依赖过程。在这里,我们报告发现了一种对染色体传递保真度至关重要的新元素,它表明肌醇焦磷酸(IPPs)在此过程中起关键作用。该蛋白质是Asp1,即高度保守的Vip1家族粟酒裂殖酵母成员。Vip1酶具有双功能:它们由一个产生IPPs的激酶结构域和一个以这些IPPs为底物的焦磷酸酶结构域组成。我们表明,Asp1激酶功能是双极纺锤体形成所必需的。缺乏Asp1产生的IPPs会导致姐妹染色单体双定向错误、后期开始的检查点控制延迟延长以及染色体错分离。值得注意的是,产生高于野生型水平IPPs的Asp1变体的表达导致进入后期A的速度比野生型快,而染色体错分离没有增加。事实上,随着细胞IPPs的增加,非必需染色体的染色体传递保真度得到提高。因此,我们确定了一个优化野生型染色体传递过程的元素。

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