Varlet Alice Anaïs, Fuchs Margit, Luthold Carole, Lambert Herman, Landry Jacques, Lavoie Josée N
Centre de recherche sur le cancer de l'Université Laval, Québec, Canada.
Oncology, Centre de recherche du CHU de Québec-Université Laval, Québec, G1R 3S3, Canada.
Cell Stress Chaperones. 2017 Jul;22(4):553-567. doi: 10.1007/s12192-017-0780-2. Epub 2017 Mar 8.
The small heat shock protein HSPB8 and its co-chaperone BAG3 are proposed to regulate cytoskeletal proteostasis in response to mechanical signaling in muscle cells. Here, we show that in dividing cells, the HSPB8-BAG3 complex is instrumental to the accurate disassembly of the actin-based contractile ring during cytokinesis, a process required to allow abscission of daughter cells. Silencing of HSPB8 markedly decreased the mitotic levels of BAG3 in HeLa cells, supporting its crucial role in BAG3 mitotic functions. Cells depleted of HSPB8 were delayed in cytokinesis, remained connected via a disorganized intercellular bridge, and exhibited increased incidence of nuclear abnormalities that result from failed cytokinesis (i.e., bi- and multi-nucleation). Such phenotypes were associated with abnormal accumulation of F-actin at the intercellular bridge of daughter cells at telophase. Remarkably, the actin sequestering drug latrunculin A, like the inhibitor of branched actin polymerization CK666, normalized F-actin during cytokinesis and restored proper cell division in HSPB8-depleted cells, implicating deregulated actin dynamics as a cause of abscission failure. Moreover, this HSPB8-dependent phenotype could be corrected by rapamycin, an autophagy-promoting drug, whereas it was mimicked by drugs impairing lysosomal function. Together, the results further support a role for the HSPB8-BAG3 chaperone complex in quality control of actin-based structure dynamics that are put under high tension, notably during cell cytokinesis. They expand a so-far under-appreciated connection between selective autophagy and cellular morphodynamics that guide cell division.
小分子热休克蛋白HSPB8及其共伴侣蛋白BAG3被认为可响应肌肉细胞中的机械信号来调节细胞骨架蛋白稳态。在此,我们表明在分裂细胞中,HSPB8 - BAG3复合物对于胞质分裂期间基于肌动蛋白的收缩环的精确解体至关重要,这是允许子细胞脱离所必需的过程。HSPB8的沉默显著降低了HeLa细胞中BAG3的有丝分裂水平,支持了其在BAG3有丝分裂功能中的关键作用。缺乏HSPB8的细胞在胞质分裂中延迟,通过无序的细胞间桥保持连接,并表现出因胞质分裂失败(即双核和多核形成)导致的核异常发生率增加。这些表型与末期子细胞间桥处F - 肌动蛋白的异常积累有关。值得注意的是,肌动蛋白螯合药物Latrunculin A,与分支肌动蛋白聚合抑制剂CK666一样,在胞质分裂期间使F - 肌动蛋白正常化,并恢复了HSPB8缺失细胞中的正常细胞分裂,这表明肌动蛋白动力学失调是脱离失败的原因。此外,这种依赖HSPB8的表型可以通过促进自噬的药物雷帕霉素纠正,而损害溶酶体功能的药物则可模拟这种表型。总之,这些结果进一步支持了HSPB8 - BAG3伴侣复合物在基于肌动蛋白的结构动力学质量控制中的作用,这些结构动力学在高张力下,特别是在细胞胞质分裂期间。它们扩展了迄今为止未被充分认识的选择性自噬与指导细胞分裂的细胞形态动力学之间的联系。