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Entropy-driven spatial organization of highly confined polymers: Lessons for the bacterial chromosome

机译:熵驱动的高度受限聚合物的空间组织:细菌染色体的教训

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摘要

Despite recent progress in visualization experiments, the mechanism underlying chromosome segregation in bacteria still remains elusive. Here we address a basic physical issue associated with bacterial chromosome segregation, namely the spatial organization of highly confined, self-avoiding polymers (of nontrivial topology) in a rod-shaped cell-like geometry. Through computer simulations, we present evidence that, under strong confinement conditions, topologically distinct domains of a polymer complex effectively repel each other to maximize their conformational entropy, suggesting that duplicated circular chromosomes could partition spontaneously. This mechanism not only is able to account for the spatial separation per se but also captures the major features of the spatiotemporal organization of the duplicating chromosomes observed in Escherichia coli and Caulobacter crescentus.
机译:尽管最近在可视化实验中取得了进展,但是细菌中染色体分离的机制仍然难以捉摸。在这里,我们解决了与细菌染色体分离有关的一个基本物理问题,即杆状细胞状几何结构中高度受限,自我规避的聚合物(非平凡拓扑结构)的空间组织。通过计算机模拟,我们提供的证据表明,在强约束条件下,聚合物复合物的拓扑结构不同的域可以有效地相互排斥,从而最大化其构象熵,这表明重复的环状染色体可以自发分配。这种机制不仅能够说明空间上的分隔本身,而且还能捕获在大肠杆菌和新月形杆菌中观察到的复制染色体的时空组织的主要特征。

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