Cancer Research Program-III, Rajiv Gandhi Centre for Biotechnology, University of Kerala , Thiruvananthapuram , India.
i3S-IBMC, Universidade do Porto , Porto , Portugal.
Cell Cycle. 2019 Oct;18(20):2713-2726. doi: 10.1080/15384101.2019.1656476. Epub 2019 Aug 27.
The cytoskeleton protein α-fodrin plays a major role in maintaining structural stability of membranes. It was also identified as part of the brain γ-tubulin ring complex, the major microtubule nucleator. Here, we investigated the requirement of α-fodrin for microtubule spindle assembly during mitotic progression. We found that α-fodrin depletion results in abnormal mitosis with uncongressed chromosomes, leading to prolonged activation of the spindle assembly checkpoint and a severe mitotic delay. Further, α-fodrin repression led to the formation of shortened spindles with unstable kinetochore-microtubule attachments. We also found that the mitotic kinesin CENP-E had reduced levels at kinetochores to likely account for the chromosome misalignment defects in α-fodrin-depleted cells. Importantly, we showed these cells to exhibit reduced levels of detyrosinated α-tubulin, which primarily drives CENP-E localization. Since proper microtubule dynamics and chromosome alignment are required for completion of normal mitosis, this study reveals an unforeseen role of α-fodrin in regulating mitotic progression. Future studies on these lines of observations should reveal important mechanistic insight for fodrin's involvement in cancer.
细胞骨架蛋白α-辅肌动蛋白在维持膜的结构稳定性方面起着重要作用。它也被确定为脑γ-微管环复合物的一部分,这是主要的微管核形成因子。在这里,我们研究了α-辅肌动蛋白在有丝分裂进程中对微管纺锤体组装的需求。我们发现α-辅肌动蛋白耗竭会导致染色体未融合的异常有丝分裂,导致纺锤体组装检查点的延长激活和严重的有丝分裂延迟。此外,α-辅肌动蛋白的抑制导致具有不稳定动粒-微管连接的缩短纺锤体的形成。我们还发现,有丝分裂驱动蛋白 CENP-E 在动粒处的水平降低,可能是α-辅肌动蛋白耗竭细胞中染色体错位缺陷的原因。重要的是,我们表明这些细胞表现出去酪氨酸化的α-微管蛋白水平降低,这主要驱动 CENP-E 的定位。由于正常有丝分裂需要适当的微管动力学和染色体排列,因此这项研究揭示了α-辅肌动蛋白在调节有丝分裂进程中的预期作用。对这些观察结果的进一步研究应该揭示了辅肌动蛋白参与癌症的重要机制见解。