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

机译:哺乳动物纺锤体的微针操作揭示了染色体附近的特殊短寿命的增强

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摘要

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.
机译:纺锤体产生力以在细胞分裂时分离染色体。在哺乳动物细胞中,线粒体纤维将染色体连接到纺锤体。动态纺锤体在空间和时间上锚定线粒体纤维以移动染色体。然而,由于我们缺乏直接挑战这种锚定的工具,人们对它的做法仍然知之甚少。在这里,我们采用微针操纵来通过时空控制在主轴上施加局部力。拉动线粒体纤维可在几秒钟内揭示出纺锤中心保留的本地结构。姐妹,但不是邻居,线粒体纤维保持紧密耦合,限制了染色体的伸展。此外,被拉动的线粒体纤维绕杆旋转,但不围绕染色体旋转,将其方向保持在染色体的3μm以内。这种局部增强具有20 s的寿命,并且需要微管交联剂PRC1。这些观察结果共同表明,主轴中心存在短时的特殊强化。这可以帮助保护染色体附件免受瞬时力的影响,同时允许在更长的时间范围内进行主轴重塑和染色体移动。

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