Diversity and redundancy in bacterial chromosome segregation mechanisms

被引:30
作者
Errington, J [1 ]
Murray, H [1 ]
Wu, LJ [1 ]
机构
[1] Univ Oxford, Sir William Dunn Sch Pathol, Oxford OX1 3RE, England
关键词
chromosome segregation; bacterial cell cycle; Bacillus subtilis sporulation; soj-spo0J system; divIVA; racA;
D O I
10.1098/rstb.2004.1605
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Bacterial cells are much smaller and have a much simpler overall structure and organization than eukaryotes. Several prominent differences in cell organization are relevant to the mechanisms of chromosome segregation, particularly the lack of an overt chromosome condensation/decondensation cycle and the lack of a microtubule-based spindle. Although bacterial chromosomes have a rather dispersed appearance, they nevertheless have an underlying high level of spatial organization. During the DNA replication cycle, early replicated (oriC) regions are localized towards the cell poles, whereas the late replicated terminus (terC) region is medially located. This spatial organization is thought to be driven by an active segregation mechanism that separates the sister chromosomes continuously as replication proceeds. Comparisons of various well-characterized bacteria suggest that the mechanisms of chromosome segregation are likely to be diverse, and that in many bacteria, multiple overlapping mechanisms may contribute to efficient segregation. One system in which the molecular mechanisms of chromosome segregation are beginning to be elucidated is that of sporulating cells of Bacillus subtilis. The key components of this system have been identified, and their functions are understood, in outline. Although this system appears to be specialized, most of the functions are conserved widely throughout the bacteria.
引用
收藏
页码:497 / 505
页数:9
相关论文
共 70 条
[31]   The segregation of the Escherichia coli origin and terminus of replication [J].
Li, YF ;
Sergueev, K ;
Austin, S .
MOLECULAR MICROBIOLOGY, 2002, 46 (04) :985-995
[32]   Identification and characterization of a bacterial chromosome partitioning site [J].
Lin, DCH ;
Grossman, AD .
CELL, 1998, 92 (05) :675-685
[33]   Bipolar localization of a chromosome partition protein in Bacillus subtilis [J].
Lin, DCH ;
Levin, PA ;
Grossman, AD .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1997, 94 (09) :4721-4726
[34]   Polar localization of the MinD protein of Bacillus subtilis and its role in selection of the mid-cell division site [J].
Marston, AL ;
Thomaides, HB ;
Edwards, DH ;
Sharpe, ME ;
Errington, J .
GENES & DEVELOPMENT, 1998, 12 (21) :3419-3430
[35]   Selection of the midcell division site in Bacillus subtilis through MinD-dependent polar localization and activation of MinC [J].
Marston, AL ;
Errington, J .
MOLECULAR MICROBIOLOGY, 1999, 33 (01) :84-96
[36]   Dynamic movement of the ParA-like soj protein of B-subtilis and its dual role in nucleoid organization and developmental regulation [J].
Marston, AL ;
Errington, J .
MOLECULAR CELL, 1999, 4 (05) :673-682
[37]   INSERTION AND FATE OF THE CELL-WALL IN BACILLUS-SUBTILIS [J].
MOBLEY, HLT ;
KOCH, AL ;
DOYLE, RJ ;
STREIPS, UN .
JOURNAL OF BACTERIOLOGY, 1984, 158 (01) :169-179
[38]   Bacterial mitosis: ParM of plasmid R1 moves plasmid DNA by an actin-like insertional polymerization mechanism [J].
Moller-Jensen, J ;
Borch, J ;
Dam, M ;
Jensen, RB ;
Roepstorff, P ;
Gerdes, K .
MOLECULAR CELL, 2003, 12 (06) :1477-1487
[39]   Prokaryotic DNA segregation by an actin-like filament [J].
Moller-Jensen, J ;
Jensen, RB ;
Löwe, J ;
Gerdes, K .
EMBO JOURNAL, 2002, 21 (12) :3119-3127
[40]  
Niki H, 2000, GENE DEV, V14, P212