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Pericentric chromatin loops function as a nonlinear spring in mitotic force balance

机译:外周染色质环在有丝分裂力平衡中充当非线性弹簧

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摘要

The mechanisms by which sister chromatids maintain biorientation on the metaphase spindle are critical to the fidelity of chromosome segregation. Active force interplay exists between predominantly extensional microtubule-based spindle forces and restoring forces from chromatin. These forces regulate tension at the kinetochore that silences the spindle assembly checkpoint to ensure faithful chromosome segregation. Depletion of pericentric cohesin or condensin has been shown to increase the mean and variance of spindle length, which have been attributed to a softening of the linear chromatin spring. Models of the spindle apparatus with linear chromatin springs that match spindle dynamics fail to predict the behavior of pericentromeric chromatin in wild-type and mutant spindles. We demonstrate that a nonlinear spring with a threshold extension to switch between spring states predicts asymmetric chromatin stretching observed in vivo. The addition of cross-links between adjacent springs recapitulates coordination between pericentromeres of neighboring chromosomes.
机译:姐妹染色单体在中期纺锤体上维持生物定向的机制对于染色体分离的保真度至关重要。主动力相互作用主要存在于基于微管的伸长纺锤体力和染色质的恢复力之间。这些力调节着动子轴上的张力,使纺锤体装配检查点无声,以确保忠实的染色体分离。研究表明,减少外周中心粘着素或凝集素会增加纺锤长度的平均值和方差,这归因于线性染色质弹簧的软化。具有与纺锤动力学匹配的线性染色质弹簧的纺锤体模型无法预测野生型和突变纺锤体中着丝粒染色质的行为。我们证明,具有在弹簧状态之间切换的阈值扩展的非线性弹簧可预测体内观察到的不对称染色质拉伸。相邻弹簧之间的交联增加了相邻染色体的着丝粒之间的协调。

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