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A Highlights from MBoC Selection: Electron tomography reveals aspects of spindle structure important for mechanical stability at metaphase

机译:MBoC选择的亮点:电子断层扫描揭示了纺锤体结构的各个方面这些纺锤体对于中期的机械稳定性很重要

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摘要

Metaphase spindles exert pole-directed forces on still-connected sister kinetochores. The spindle must counter these forces with extensive forces to prevent spindle collapse. In small spindles, kinetochore microtubules (KMTs) connect directly with the poles, and countering forces are supplied either by interdigitating MTs that form interpolar bundles or by astral MTs connected to the cell cortex. In bigger spindles, particularly those without structured poles, the origin of extensive forces is less obvious. We have used electron tomography of well-preserved metaphase cells to obtain structural evidence about interactions among different classes of MTs in metaphase spindles from and two strains of cultured mammalian cells. In all these spindles, KMTs approach close to and cross-bridge with the minus ends of non-KMTs, which form a framework that interdigitates near the spindle equator. Although this structure is not pole-connected, its organization suggests that it can support kinetochore tension. Analogous arrangements of MTs have been seen in even bigger spindles, such as metaphase spindles in endosperm and frog egg extracts. We present and discuss a hypothesis that rationalizes changes in spindle design with spindle size based on the negative exponential distribution of MT lengths in dynamically unstable populations of tubulin polymers.
机译:中期纺锤体在仍然连接的姐妹动臂上施加极向力。主轴必须以较大的力抵抗这些力,以防止主轴塌陷。在小型纺锤体中,线粒体微管(KMT)直接与极连接,并且通过形成极间束的MT相互交叉或通过与细胞皮层相连的星形MT来提供反作用力。在较大的主轴中,特别是那些没有结构极的主轴,扩展力的来源不那么明显。我们已经使用了保存良好的中期细胞的电子断层扫描技术来获得关于哺乳动物细胞和两种菌株培养的中期纺锤体中不同类型MT相互作用的结构证据。在所有这些主轴中,KMT靠近非KMT的负端并与之交叉,这形成了一个在主轴赤道附近交叉的框架。尽管这种结构不是极点连接的,但其组织结构表明它可以支持线粒体的张力。在更大的纺锤体中也观察到了MT的类似排列,例如胚乳和蛙卵提取物中的中期纺锤体。我们提出并讨论一个假说,该假说基于微管蛋白聚合物的动态不稳定群体中MT长度的负指数分布来合理化纺锤设计随纺锤尺寸的变化。

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