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Spherical spindle shape promotes perpendicular cortical orientation by preventing isometric cortical pulling on both spindle poles during C. elegans female meiosis

机译:球形主轴形状通过防止在C.秀丽隐杆线杆菌杆上的梭子杆上的等距皮质拉动来促进垂直皮质取向。

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摘要

Meiotic spindles are positioned perpendicular to the oocyte cortex to facilitate segregation of chromosomes into a large egg and a tiny polar body. In C. elegans, spindles are initially ellipsoid and parallel to the cortex before shortening to a near-spherical shape with flattened poles and then rotating to the perpendicular orientation by dynein-driven cortical pulling. The mechanistic connection between spindle shape and rotation has remained elusive. Here, we have used three different genetic backgrounds to manipulate spindle shape without eliminating dynein-dependent movement or dynein localization. Ellipsoid spindles with flattened or pointed poles became trapped in either a diagonal or a parallel orientation. Mathematical models that recapitulated the shape dependence of rotation indicated that the lower viscous drag experienced by spherical spindles prevented recapture of the cortex by astral microtubules emanating from the pole pivoting away from the cortex. In addition, maximizing contact between pole dynein and cortical dynein stabilizes flattened poles in a perpendicular orientation, and spindle rigidity prevents spindle bending that can lock both poles at the cortex. Spindle shape can thus promote perpendicular orientation by three distinct mechanisms.
机译:减数分裂纺锤垂直于卵母细胞皮质,以促进染色体的偏析成大鸡蛋和微小的极体。在C.杆状杆线上,主轴最初是椭圆形并平行于皮质,然后缩短到具有扁平杆的近球形,然后通过Dynein驱动的皮质拉动旋转到垂直取向。主轴形状和旋转之间的机械连接仍然难以捉摸。在这里,我们使用了三个不同的遗传背景来操纵主轴形状,而不会消除依赖Dynein的运动或Dynein定位。具有扁平或尖杆的椭圆体锭子以对角线或平行的取向被捕获。循环旋转的形状依赖性的数学模型表明,球形主轴经历的较低粘性阻力通过从远离皮质枢转的极点散发的星形微管术中阻止了皮质的重新捕获。此外,在垂直方向上最大化接触杆与皮质Dynein之间的接触稳定在垂直取向上,主轴刚性防止主轴弯曲,从而可以在皮质上锁定两个磁极。因此,主轴形状可以通过三种不同的机制促进垂直取向。

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