Mechanical Coupling With the Nuclear Envelope Shapes the Schizosaccharomyces pombe Mitotic Spindle.

Marcus A Begley, Taylor Mahoney, Christian Pagán Medina, Parsa Zareiesfandabadi, Matthew B Rapp, Mastawal Tirfe, Sharonda J LeBlanc, Meredith D Betterton, Mary Williard Elting
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Abstract

The fission yeast Schizosaccharomyces pombe divides via closed mitosis, meaning that spindle elongation and chromosome segregation transpire entirely within the closed nuclear envelope. Both the spindle and nuclear envelope must undergo shape changes and exert varying forces on each other during this process. Previous work has demonstrated that nuclear envelope expansion (Yam, He, Zhang, Chiam, & Oliferenko, 2011; Mori & Oliferenko, 2020) and spindle pole body (SPB) embedding in the nuclear envelope are required for normal S. pombe mitosis, and mechanical modeling has described potential contributions of the spindle to nuclear morphology (Fang et al., 2020; Zhu et al., 2016). However, it is not yet fully clear how and to what extent the nuclear envelope and mitotic spindle each directly shape each other during closed mitosis. Here, we investigate this relationship by observing the behaviors of spindles and nuclei in live mitotic fission yeast following laser ablation. First, we characterize these dynamics in mitotic S. pombe nuclei with increased envelope tension, finding that nuclear envelope tension can both bend the spindle and slow elongation. Next, we directly probe the mechanical connection between spindles and nuclear envelopes by ablating each structure. We demonstrate that envelope tension can be relieved by severing spindles and that spindle compression can be relieved by rupturing the envelope. We interpret our experimental data via two quantitative models that demonstrate that fission yeast spindles and nuclear envelopes are a mechanical pair that can each shape the other's morphology.

与核膜的机械耦合形成裂糖菌的有丝分裂纺锤体。
裂糖酵母(Schizosaccharomyces pombe)通过闭合有丝分裂进行分裂,这意味着纺锤体伸长和染色体分离完全在封闭的核膜内发生。在这个过程中,纺锤体和核膜都必须经历形状变化,并相互施加不同的力。先前的研究表明,核膜扩张(Yam, He, Zhang, Chiam, & Oliferenko, 2011;Mori & Oliferenko, 2020)和纺锤极体(SPB)嵌入核膜是正常的pombe有丝分裂所必需的,机械模型描述了纺锤体对核形态的潜在贡献(Fang等人,2020;朱等人,2016)。然而,在闭式有丝分裂过程中,核膜和纺锤体是如何以及在多大程度上相互直接形成的,目前还不完全清楚。在这里,我们通过观察活的有丝分裂酵母在激光消融后纺锤体和细胞核的行为来研究这种关系。首先,我们在有丝分裂的S. pombe核中描述了这些动态,随着包膜张力的增加,发现核膜张力既可以弯曲纺锤体,也可以减缓伸长。接下来,我们通过烧蚀每个结构直接探测纺锤体和核包膜之间的机械连接。我们证明了包络张力可以通过切断主轴来缓解,主轴压缩可以通过破裂包络来缓解。我们通过两个定量模型解释我们的实验数据,证明裂变酵母纺锤体和核包膜是一对机械对,可以各自塑造对方的形态。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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