Department of Physics, Central Washington University, Ellensburg, WA, 98926, USA.
Curr Genet. 2020 Apr;66(2):279-291. doi: 10.1007/s00294-019-01041-2. Epub 2019 Nov 5.
Precise management of the spatiotemporal position of subcellular components is critical to a number of essential processes in the bacterial cell. The bacterial nucleoid is a highly structured yet dynamic object that undergoes significant reorganization during the relatively short cell cycle, e.g. during gene expression, chromosome replication, and segregation. Although the nucleoid takes up a large fraction of the volume of the cell, the mobility of macromolecules within these dense regions is relatively high and recent results suggest that the nucleoid plays an integral role of dynamic localization in a host of seemingly disparate cellular processes. Here, we review a number of recent reports of nucleoid-mediated positioning and transport in the model bacteria Escherichia coli. These results viewed as a whole suggest that the dynamic, cellular-scale structure of the nucleoid may be a key driver of positioning and transport within the cell. This model of a global, default positioning and transport system may help resolve many unanswered questions about the mechanisms of partitioning and segregation in bacteria.
精确管理亚细胞成分的时空位置对于细菌细胞中的许多基本过程至关重要。细菌拟核是一个高度结构化但又动态的物体,在相对较短的细胞周期内会经历显著的重组,例如在基因表达、染色体复制和分离过程中。尽管拟核占据了细胞体积的很大一部分,但这些密集区域内大分子的流动性相对较高,最近的研究结果表明,拟核在许多看似不同的细胞过程中发挥着动态定位的整体作用。在这里,我们回顾了一些关于模型细菌大肠杆菌中拟核介导的定位和运输的最新报告。这些结果整体表明,拟核的动态、细胞尺度结构可能是细胞内定位和运输的关键驱动因素。这种全局、默认的定位和运输系统模型可能有助于解决关于细菌分隔和分离机制的许多未解答的问题。