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聚合物结构在缓慢生长过程中协调复制染色体的分离和空间组织。

Polymer architecture orchestrates the segregation and spatial organization of replicating chromosomes in slow growth.

作者信息

Mitra Debarshi, Pande Shreerang, Chatterji Apratim

机构信息

Department of Physics, IISER-Pune, Pune, 411008, India.

出版信息

Soft Matter. 2022 Aug 3;18(30):5615-5631. doi: 10.1039/d2sm00734g.

DOI:10.1039/d2sm00734g
PMID:35861071
Abstract

The mechanism of chromosome segregation and organization in the bacterial cell cycle of is one of the least understood aspects in its life cycle. The chromosome is often modelled as a bead spring ring polymer. We introduce cross-links in the DNA-ring polymer, resulting in the formation of loops within each replicating bacterial chromosome. We use simulations to show that the chosen polymer-topology ensures its self-organization along the cell long-axis, such that various chromosomal loci get spatially localized as seen . The localization of loci arises due to entropic repulsion between polymer loops within each daughter DNA confined in a cylinder. The cellular addresses of the loci in our model are in fair agreement with those seen in experiments as given in J. A. Cass , , 2016, , 2597-2609. We also show that the adoption of such modified polymer architectures by the daughter DNAs leads to an enhanced propensity of their spatial segregation. Secondly, we match other experimentally reported results, including observation of the cohesion time and the ter-transition. Additionally, the contact map generated from our simulations reproduces the macro-domain like organization as seen in the experimentally obtained Hi-C map. Lastly, we have also proposed a plausible reconciliation of the 'Train Track' and the 'Replication Factory' models which provide conflicting descriptions of the spatial organization of the replication forks. Thus, we reconcile observations from complementary experimental techniques probing bacterial chromosome organization.

摘要

细菌细胞周期中染色体分离与组织的机制是其生命周期中最不为人所理解的方面之一。细菌染色体常被建模为珠链弹簧环聚合物。我们在DNA环聚合物中引入交联,导致每个正在复制的细菌染色体内形成环。我们通过模拟表明,所选的聚合物拓扑结构确保了其沿细胞长轴的自组织,使得各个染色体位点在空间上定位,正如所观察到的那样。位点的定位是由于限制在圆柱体内的每个子代DNA内聚合物环之间的熵斥力引起的。我们模型中位点的细胞定位与J. A. Cass等人在2016年发表于《》第2597 - 2609页的实验结果相当一致。我们还表明,子代DNA采用这种修饰的聚合物结构会导致其空间分离倾向增强。其次,我们匹配了其他实验报道的结果,包括对内聚时间和ter - 转变的观察。此外,我们模拟生成的接触图再现了实验获得的Hi - C图中所见的类似宏观结构域的组织。最后,我们还提出了对“火车轨道”模型和“复制工厂”模型的一种合理调和,这两种模型对复制叉的空间组织给出了相互矛盾的描述。因此,我们调和了来自探测细菌染色体组织的互补实验技术的观察结果。

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引用本文的文献

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Loop-extruders alter bacterial chromosome topology to direct entropic forces for segregation.环挤出器改变细菌染色体拓扑结构以引导熵力进行分离。
Nat Commun. 2024 May 30;15(1):4618. doi: 10.1038/s41467-024-49039-w.
2
Physical models of bacterial chromosomes.细菌染色体的物理模型。
Mol Microbiol. 2025 Feb;123(2):143-153. doi: 10.1111/mmi.15257. Epub 2024 Apr 5.
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Dynamics of chromosome organization in a minimal bacterial cell.最小细菌细胞中染色体组织的动态变化
Front Cell Dev Biol. 2023 Aug 9;11:1214962. doi: 10.3389/fcell.2023.1214962. eCollection 2023.
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Phase Transitions of Associative Biomacromolecules.缔合生物大分子的相转变。
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