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A ring-polymer model shows how macromolecular crowding controls chromosome-arm organization in Escherichia coli

机译:环状聚合物模型显示大分子拥挤如何控制大肠杆菌的染色体臂组织

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摘要

Macromolecular crowding influences various cellular processes such as macromolecular association and transcription, and is a key determinant of chromosome organization in bacteria. The entropy of crowders favors compaction of long chain molecules such as chromosomes. To what extent is the circular bacterial chromosome, often viewed as consisting of “two arms”, organized entropically by crowding? Using computer simulations, we examine how a ring polymer is organized in a crowded and cylindrically-confined space, as a coarse-grained bacterial chromosome. Our results suggest that in a wide parameter range of biological relevance crowding is essential for separating the two arms in the way observed with Escherichia coli chromosomes at fast-growth rates, in addition to maintaining the chromosome in an organized collapsed state. Under different conditions, however, the ring polymer is centrally condensed or adsorbed onto the cylindrical wall with the two arms laterally collapsed onto each other. We discuss the relevance of our results to chromosome-membrane interactions.
机译:大分子拥挤影响各种细胞过程,例如大分子缔合和转录,并且是细菌中染色体组织的关键决定因素。拥挤的熵有利于长链分子(例如染色体)的压缩。环形细菌染色体在通常情况下被认为是由“两臂”组成,通过拥挤而熵地组织到什么程度?使用计算机模拟,我们检查了环状聚合物是如何在拥挤且呈圆柱状限制的空间内组织的,作为粗粒细菌染色体。我们的结果表明,在很大的生物学相关性参数范围内,拥挤对于以快速增长的速率用大肠埃希氏大肠杆菌染色体观察到的方式分开两个臂至关重要,除了将染色体保持在有组织的折叠状态之外。然而,在不同条件下,环状聚合物在中心缩合或吸附在圆柱壁上,而两个臂在横向上彼此折叠。我们讨论了我们的结果与染色体-膜相互作用的相关性。

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