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Mechanics of Sister Chromatids studied with a Polymer Model

机译:用聚合物模型研究姐妹染色单体的力学

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Sister chromatid cohesion denotes the phenomenon that sister chromatids are initially attached to each other in mitosis to guarantee the error-free distribution into the daughter cells. Cohesion is mediated by binding proteins and only resolved after mitotic chromosome condensation is completed. However, the amount of attachement points required to maintain sister chromatid cohesion while still allowing proper chromosome condensation is not known yet. Additionally the impact of cohesion on the mechanical properties of chromosomes also poses an interesting problem. In this work we study the conformational and mechanical properties of sister chromatids by means of computer simulations. We model both protein-mediated cohesion between sister chromatids and chromosome condensation with a dynamic binding mechanisms. We show in a phase diagram that only specific link concentrations lead to connected and fully condensed chromatids that do not intermingle with each other nor separate due to entropic forces. Furthermore we show that dynamic bonding between chromatids decrease the Young's modulus compared to non-bonded chromatids.
机译:姐妹染色单体的内聚力是指姐妹染色单体最初在有丝分裂中彼此附着以保证无错误地分布到子细胞中的现象。内聚力是由结合蛋白介导的,只有在有丝分裂染色体凝结完成后才能解决。但是,保持姐妹染色单体内聚力同时仍允许适当的染色体凝结所需的附着点数量尚不知道。另外,内聚力对染色体机械性能的影响也带来了一个有趣的问题。在这项工作中,我们通过计算机模拟研究姐妹染色单体的构象和力学性质。我们通过动态结合机制对姐妹染色单体和染色体缩合之间的蛋白质介导的内聚进行建模。我们在一个相图中显示,只有特定的链接浓度会导致连接的和完全浓缩的染色单体,它们不会相互融合,也不会由于熵力而分离。此外,我们表明,与未结合的染色单体相比,染色单体之间的动态结合降低了杨氏模量。

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