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细菌中细胞极确定的分子相互作用及其预测作用。

Molecular interactions and their predictive roles in cell pole determination in bacteria.

机构信息

Molecular Biology Division, Bhabha Atomic Research Centre, Mumbai, India.

Life Sciences, Homi Bhabha National Institute, Mumbai, India.

出版信息

Crit Rev Microbiol. 2021 Mar;47(2):141-161. doi: 10.1080/1040841X.2020.1857686. Epub 2021 Jan 11.

Abstract

Bacterial cell cycle is divided into well-coordinated phases; chromosome duplication and segregation, cell elongation, septum formation, and cytokinesis. The temporal separation of these phases depends upon the growth rates and doubling time in different bacteria. The entire process of cell division starts with the assembly of divisome complex at mid-cell position followed by constriction of the cell wall and septum formation. In the mapping of mid-cell position for septum formation, the gradient of oscillating Min proteins across the poles plays a pivotal role in several bacteria genus. The cues in the cell that defines the poles and plane of cell division are not fully characterized in cocci. Recent studies have shed some lights on molecular interactions at the poles and the underlying mechanisms involved in pole determination in non-cocci. In this review, we have brought forth recent findings on these aspects together, which would suggest a model to explain the mechanisms of pole determination in rod shaped bacteria and could be extrapolated as a working model in cocci.

摘要

细菌细胞周期分为协调良好的阶段;染色体复制和分离、细胞伸长、隔膜形成和细胞分裂。这些阶段的时间分离取决于不同细菌的生长速度和倍增时间。细胞分裂的整个过程始于在细胞中部位置组装分裂体复合物,然后细胞壁收缩和隔膜形成。在隔膜形成的细胞中部位置的映射中,两极处振荡 Min 蛋白的梯度在几个细菌属中起着关键作用。在球菌中,尚未完全描述定义两极和细胞分裂平面的细胞内线索。最近的研究揭示了非球菌中两极的分子相互作用以及参与极确定的潜在机制。在这篇综述中,我们一起提出了这些方面的最新发现,这将提出一个模型来解释杆状细菌极确定的机制,并可以外推为球菌的工作模型。

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