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Directly probing the mechanical properties of the spindle and its matrix

机译:直接探测主轴及其基体的机械性能

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摘要

Several recent models for spindle length regulation propose an elastic pole to pole spindle matrix that is sufficiently strong to bear or antagonize forces generated by microtubules and microtubule motors. We tested this hypothesis using microneedles to skewer metaphase spindles in Xenopus laevis egg extracts. Microneedle tips inserted into a spindle just outside the metaphase plate resulted in spindle movement along the interpolar axis at a velocity slightly slower than microtubule poleward flux, bringing the nearest pole toward the needle. Spindle velocity decreased near the pole, which often split apart slowly, eventually letting the spindle move completely off the needle. When two needles were inserted on either side of the metaphase plate and rapidly moved apart, there was minimal spindle deformation until they reached the poles. In contrast, needle separation in the equatorial direction rapidly increased spindle width as constant length spindle fibers pulled the poles together. These observations indicate that an isotropic spindle matrix does not make a significant mechanical contribution to metaphase spindle length determination.
机译:最近的几种用于主轴长度调节的模型提出了一种弹性的极对极主轴矩阵,其强度足以承受或对抗微管和微管电机产生的力。我们使用微针测试非洲爪蟾卵提取物中的中期纺锤体来验证这一假设。将微针尖端插入到中期板外部的纺锤中,导致纺锤沿着极间轴移动的速度略慢于微管极向通量,从而使最近的极朝向针。主轴附近的主轴速度降低,该速度通常会缓慢分开,最终使主轴完全脱离针。当将两根针插入中期板的任一侧并迅速分开时,纺锤变形很小,直到到达极点为止。相反,由于恒定长度的纺锤纤维将磁极拉在一起,因此沿赤道方向的针头分离迅速增加了纺锤宽度。这些观察结果表明,各向同性的主轴矩阵对中期主轴长度的确定没有明显的机械作用。

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