Centre for Mechanochemical Cell Biology, University of Warwick, Coventry, UK.
Division of Biomedical Sciences, Warwick Medical School, University of Warwick, Coventry, UK.
Nat Rev Mol Cell Biol. 2023 Aug;24(8):543-559. doi: 10.1038/s41580-023-00593-z. Epub 2023 Mar 24.
The transmission of a complete set of chromosomes to daughter cells during cell division is vital for development and tissue homeostasis. The spindle assembly checkpoint (SAC) ensures correct segregation by informing the cell cycle machinery of potential errors in the interactions of chromosomes with spindle microtubules prior to anaphase. To do so, the SAC monitors microtubule engagement by specialized structures known as kinetochores and integrates local mechanical and chemical cues such that it can signal in a sensitive, responsive and robust manner. In this Review, we discuss how SAC proteins interact to allow production of the mitotic checkpoint complex (MCC) that halts anaphase progression by inhibiting the anaphase-promoting complex/cyclosome (APC/C). We highlight recent advances aimed at understanding the dynamic signalling properties of the SAC and how it interprets various naturally occurring intermediate attachment states. Further, we discuss SAC signalling in the context of the mammalian multisite kinetochore and address the impact of the fibrous corona. We also identify current challenges in understanding how the SAC ensures high-fidelity chromosome segregation.
在细胞分裂过程中,将一整套染色体传递给子细胞对于发育和组织稳态至关重要。纺锤体组装检查点(SAC)通过在后期开始之前告知细胞周期机制,在染色体与纺锤体微管的相互作用中存在潜在错误时,确保正确的分离。为此,SAC 通过称为动粒的专门结构监测微管的结合,并整合局部机械和化学线索,以便能够以敏感、响应和稳健的方式发出信号。在这篇综述中,我们讨论了 SAC 蛋白如何相互作用,以允许产生有丝分裂检查点复合物(MCC),通过抑制后期促进复合物/环体(APC/C)来阻止后期的进行。我们强调了最近在理解 SAC 的动态信号特性方面的进展,以及它如何解释各种自然发生的中间附着状态。此外,我们还讨论了在哺乳动物多定位动粒的背景下的 SAC 信号,并解决了纤维冠的影响。我们还确定了目前在理解 SAC 如何确保高保真染色体分离方面的挑战。