Dewey Evan B, Johnston Christopher A
Department of Biology, University of New Mexico, Albuquerque, NM 87131.
Department of Biology, University of New Mexico, Albuquerque, NM 87131
Mol Biol Cell. 2017 Sep 15;28(19):2555-2568. doi: 10.1091/mbc.E17-04-0219. Epub 2017 Jul 26.
Proper assembly and orientation of the bipolar mitotic spindle is critical to the fidelity of cell division. Mitotic precision fundamentally contributes to cell fate specification, tissue development and homeostasis, and chromosome distribution within daughter cells. Defects in these events are thought to contribute to several human diseases. The underlying mechanisms that function in spindle morphogenesis and positioning remain incompletely defined, however. Here we describe diverse roles for the actin-microtubule cross-linker Shortstop (Shot) in mitotic spindle function in Shot localizes to mitotic spindle poles, and its knockdown results in an unfocused spindle pole morphology and a disruption of proper spindle orientation. Loss of Shot also leads to chromosome congression defects, cell cycle progression delay, and defective chromosome segregation during anaphase. These mitotic errors trigger apoptosis in epithelial tissue, and blocking this apoptotic response results in a marked induction of the epithelial-mesenchymal transition marker MMP-1. The actin-binding domain of Shot directly interacts with Actin-related protein-1 (Arp-1), a key component of the Dynein/Dynactin complex. Knockdown of Arp-1 phenocopies Shot loss universally, whereas chemical disruption of F-actin does so selectively. Our work highlights novel roles for Shot in mitosis and suggests a mechanism involving Dynein/Dynactin activation.
双极有丝分裂纺锤体的正确组装和定向对于细胞分裂的保真度至关重要。有丝分裂的精确性从根本上有助于细胞命运的决定、组织发育和稳态以及子细胞内染色体的分布。这些过程中的缺陷被认为与多种人类疾病有关。然而,在纺锤体形态发生和定位中起作用的潜在机制仍未完全明确。在这里,我们描述了肌动蛋白 - 微管交联蛋白Shortstop(Shot)在有丝分裂纺锤体功能中的多种作用。Shot定位于有丝分裂纺锤体极,其敲低导致纺锤体极形态不聚焦以及纺锤体正确定向的破坏。Shot的缺失还会导致染色体汇聚缺陷、细胞周期进程延迟以及后期染色体分离缺陷。这些有丝分裂错误会触发上皮组织中的细胞凋亡,而阻断这种凋亡反应会导致上皮 - 间质转化标志物MMP - 1的显著诱导。Shot的肌动蛋白结合结构域直接与动力蛋白/动力蛋白激活蛋白复合物的关键成分肌动蛋白相关蛋白 - 1(Arp - 1)相互作用。Arp - 1的敲低普遍模拟Shot缺失的表型,而F - 肌动蛋白的化学破坏则选择性地模拟。我们的工作突出了Shot在有丝分裂中的新作用,并提出了一种涉及动力蛋白/动力蛋白激活蛋白激活的机制。