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本文引用的文献

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Subcellular localization of plasmids containing the oriC region of the Escherichia coli chromosome, with or without the sopABC partitioning system.含有大肠杆菌染色体oriC区域的质粒的亚细胞定位,有或没有sopABC分区系统。
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Upheaval in the bacterial nucleoid. An active chromosome segregation mechanism.细菌类核的剧变。一种活跃的染色体分离机制。
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The cytoplasmic domain of FtsK protein is required for resolution of chromosome dimers.FtsK蛋白的胞质结构域是染色体二聚体解离所必需的。
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Chromosome arrangement within a bacterium.细菌内的染色体排列。
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Circular chromosome formation in a fission yeast mutant defective in two ATM homologues.在两种ATM同源物存在缺陷的裂殖酵母突变体中环状染色体的形成
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8
The symmetrical structure of structural maintenance of chromosomes (SMC) and MukB proteins: long, antiparallel coiled coils, folded at a flexible hinge.染色体结构维持蛋白(SMC)和MukB蛋白的对称结构:长的反平行卷曲螺旋,在一个柔性铰链处折叠。
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Linkage map of Escherichia coli K-12, edition 10: the physical map.大肠杆菌K-12连锁图谱,第10版:物理图谱。
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A Bacillus subtilis gene-encoding protein homologous to eukaryotic SMC motor protein is necessary for chromosome partition.一种编码与真核生物SMC运动蛋白同源的蛋白质的枯草芽孢杆菌基因对于染色体分配是必需的。
Mol Microbiol. 1998 Jul;29(1):179-87. doi: 10.1046/j.1365-2958.1998.00919.x.

大肠杆菌中染色体DNA的动态组织

Dynamic organization of chromosomal DNA in Escherichia coli.

作者信息

Niki H, Yamaichi Y, Hiraga S

机构信息

"Unit Process and Combined Circuit," PRESTO, Japan Science and Technology Corporation (JST), Kumamoto, 862-0976, Japan.

出版信息

Genes Dev. 2000 Jan 15;14(2):212-23.

PMID:10652275
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC316355/
Abstract

We have revealed the subcellular localization of different DNA segments that are located at approximately 230-kb intervals on the Escherichia coli chromosome using fluorescence in situ hybridization (FISH). The series of chromosome segments is localized within the cell in the same order as the chromosome map. The large chromosome region including oriC shows similar localization patterns, which we call the Ori domain. In addition, the localization pattern of the large segment including dif is characteristic of the replication terminus region. The segment also shows similar localization patterns, which we call the Ter domain. In newborn cells, Ori and Ter domains of the chromosome are differentially localized near opposite cell poles. Subsequently, in the B period, the Ori domain moves toward mid-cell before the initiation of replication, and the Ter domain tends to relocate at mid-cell. An inversion mutant, in which the Ter domain is located close to oriC, shows abnormal subcellular localization of ori and dif segments, resulting in frequent production of anucleate cells. These studies thus suggest that the E. coli chromosome is organized to form a compacted ring structure with the Ori and Ter domains; these domains participate in the cell cycle-dependent localization of the chromosome.

摘要

我们利用荧光原位杂交(FISH)技术揭示了位于大肠杆菌染色体上间隔约230 kb的不同DNA片段的亚细胞定位。这一系列染色体片段在细胞内的定位顺序与染色体图谱一致。包括oriC在内的大染色体区域呈现出相似的定位模式,我们将其称为Ori结构域。此外,包含dif的大片段的定位模式是复制终点区域的特征。该片段也呈现出相似的定位模式,我们将其称为Ter结构域。在新生细胞中,染色体的Ori和Ter结构域分别定位在相对的细胞极附近。随后,在B期,Ori结构域在复制起始前向细胞中部移动,而Ter结构域倾向于重新定位到细胞中部。一个Ter结构域靠近oriC的倒位突变体显示ori和dif片段的亚细胞定位异常,导致无核细胞频繁产生。因此,这些研究表明大肠杆菌染色体被组织形成一个具有Ori和Ter结构域的紧密环状结构;这些结构域参与了染色体的细胞周期依赖性定位。