Bunning Angela R, Gupta Mohan L
Department of Genetics, Development, and Cell Biology, Iowa State University, Ames, IA, United States.
Front Cell Dev Biol. 2023 Jan 23;11:1096333. doi: 10.3389/fcell.2023.1096333. eCollection 2023.
Accurate chromosome segregation is vital for cell and organismal viability. The mitotic spindle, a bipolar macromolecular machine composed largely of dynamic microtubules, is responsible for chromosome segregation during each cell replication cycle. Prior to anaphase, a bipolar metaphase spindle must be formed in which each pair of chromatids is attached to microtubules from opposite spindle poles. In this bipolar configuration pulling forces from the dynamic microtubules can generate tension across the sister kinetochores. The tension status acts as a signal that can destabilize aberrant kinetochore-microtubule attachments and reinforces correct, bipolar connections. Historically it has been challenging to isolate the specific role of tension in mitotic processes due to the interdependency of attachment and tension status at kinetochores. Recent technical and experimental advances have revealed new insights into how tension functions during mitosis. Here we summarize the evidence that tension serves as a biophysical signal that unifies multiple aspects of kinetochore and centromere function to ensure accurate chromosome segregation.
精确的染色体分离对于细胞和生物体的生存至关重要。有丝分裂纺锤体是一种主要由动态微管组成的双极大分子机器,负责在每个细胞复制周期中进行染色体分离。在后期之前,必须形成双极中期纺锤体,其中每对染色单体都附着于来自纺锤体两极相对的微管。在这种双极结构中,动态微管产生的拉力可在姐妹动粒之间产生张力。张力状态作为一种信号,可破坏异常的动粒-微管连接的稳定性,并加强正确的双极连接。从历史上看,由于动粒处的附着与张力状态相互依存,分离张力在有丝分裂过程中的特定作用一直具有挑战性。最近的技术和实验进展揭示了关于张力在有丝分裂期间如何发挥作用的新见解。在此,我们总结了相关证据,即张力作为一种生物物理信号,统一了动粒和着丝粒功能的多个方面,以确保精确的染色体分离。