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微针操作哺乳动物纺锤体揭示了染色体附近专门的、短暂存在的强化结构。

Microneedle manipulation of the mammalian spindle reveals specialized, short-lived reinforcement near chromosomes.

机构信息

Biophysics Graduate Program, University of California, San Francisco, San Francisco, United States.

Department of Cell and Tissue Biology, University of California, San Francisco, San Francisco, United States.

出版信息

Elife. 2020 Mar 19;9:e53807. doi: 10.7554/eLife.53807.

Abstract

The spindle generates force to segregate chromosomes at cell division. In mammalian cells, kinetochore-fibers connect chromosomes to the spindle. The dynamic spindle anchors kinetochore-fibers in space and time to move chromosomes. Yet, how it does so remains poorly understood as we lack tools to directly challenge this anchorage. Here, we adapt microneedle manipulation to exert local forces on the spindle with spatiotemporal control. Pulling on kinetochore-fibers reveals the preservation of local architecture in the spindle-center over seconds. Sister, but not neighbor, kinetochore-fibers remain tightly coupled, restricting chromosome stretching. Further, pulled kinetochore-fibers pivot around poles but not chromosomes, retaining their orientation within 3 μm of chromosomes. This local reinforcement has a 20 s lifetime, and requires the microtubule crosslinker PRC1. Together, these observations indicate short-lived, specialized reinforcement in the spindle center. This could help protect chromosome attachments from transient forces while allowing spindle remodeling, and chromosome movements, over longer timescales.

摘要

纺锤体产生力来在细胞分裂时分离染色体。在哺乳动物细胞中,动粒纤维将染色体连接到纺锤体上。动态纺锤体在空间和时间上固定动粒纤维,以移动染色体。然而,由于我们缺乏直接挑战这种固定的工具,因此对其如何固定仍知之甚少。在这里,我们采用微针操作技术,以时空控制的方式在纺锤体上施加局部力。拉动动粒纤维揭示了纺锤体中心在数秒内保持局部结构。姐妹而非邻居的动粒纤维保持紧密连接,限制了染色体的拉伸。此外,拉动的动粒纤维围绕着两极而不是染色体旋转,使其在距染色体 3 μm 内保持定向。这种局部加强的持续时间为 20 秒,需要微管交联蛋白 PRC1。总之,这些观察结果表明纺锤体中心存在短暂的、专门的加强作用。这有助于在允许纺锤体重塑和染色体运动的更长时间尺度内,保护染色体附着免受瞬时力的影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f72f/7117910/72ef751eb862/elife-53807-fig1.jpg

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