Laboratoire de Biologie Cellulaire et Moléculaire du Contrôle de la Prolifération, Centre National de la Recherche Scientifique–Unité Mixte de Recherche (CNRS-UMR) 5088, Toulouse, France.
FASEB J. 2012 Dec;26(12):5025-34. doi: 10.1096/fj.12-209460. Epub 2012 Sep 10.
Within the Ras superfamily, Gem is a small GTP-binding protein that plays a role in regulating Ca(2+) channels and cytoskeletal remodeling in interphase cells. Here, we report for the first time that Gem is a spindle-associated protein and is required for proper mitotic progression. Functionally, loss of Gem leads to misaligned chromosomes and prometaphase delay. On the basis of different experimental approaches, we demonstrate that loss of Gem by RNA interference induces spindle elongation, while its enforced expression results in spindle shortening. The spindle length phenotype is generated through deregulation of spindle dynamics on Gem depletion and requires the expression of its downstream effector, the kinesin Kif9. Loss of Kif9 induces spindle abnormalities similar to those observed when Gem expression is repressed by siRNA. We further identify Kif9 as a new regulator of spindle dynamics. Kif9 depletion increases the steady-state levels of spindle α-tubulin by increasing the rate of microtubule polymerization. Overall, this study demonstrates a novel mechanism by which Gem contributes to the mitotic progression by maintaining correct spindle length through the kinesin Kif9.
在 Ras 超家族中,Gem 是一种小 GTP 结合蛋白,在间期细胞中发挥调节 Ca(2+)通道和细胞骨架重塑的作用。在这里,我们首次报道 Gem 是一种纺锤体相关蛋白,对于有丝分裂的正常进行是必需的。在功能上,Gem 的缺失导致染色体排列不齐和前期延迟。基于不同的实验方法,我们证明 RNAi 敲低 Gem 会诱导纺锤体伸长,而过表达 Gem 则导致纺锤体缩短。这种纺锤体长度表型是通过 Gem 耗竭时纺锤体动力学的失调产生的,需要其下游效应物驱动蛋白 Kif9 的表达。Kif9 的缺失会诱导类似于 Gem 表达被 siRNA 抑制时观察到的纺锤体异常。我们进一步确定 Kif9 是纺锤体动力学的一个新的调节因子。Kif9 的缺失通过增加微管聚合的速度,增加了纺锤体α-微管蛋白的稳态水平。总的来说,这项研究表明了 Gem 通过其下游效应物驱动蛋白 Kif9 维持正确的纺锤体长度,从而促进有丝分裂进程的新机制。