Intracellular chemical gradients: morphing principle in bacteria.

Q1 Biochemistry, Genetics and Molecular Biology
Robert G Endres
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引用次数: 1

Abstract

Advances in computational biology allow systematic investigations to ascertain whether internal chemical gradients can be maintained in bacteria - an open question at the resolution limit of fluorescence microscopy. While it was previously believed that the small bacterial cell size and fast diffusion in the cytoplasm effectively remove any such gradient, a new computational study published in BMC Biophysics supports the emerging view that gradients can exist. The study arose from the recent observation that phosphorylated CtrA forms a gradient prior to cell division in Caulobacter crescentus, a bacterium known for its complicated cell cycle. Tropini et al. (2012) postulate that such gradients can provide an internal chemical compass, directing protein localization, cell division and cell development. More specifically, they describe biochemical and physical constraints on the formation of such gradients and explore a number of existing bacterial cell morphologies. These chemical gradients may limit in vitro analyses, and may ensure timing control and robustness to fluctuations during critical stages in cell development.

Abstract Image

细胞内化学梯度:细菌的变形原理。
计算生物学的进步使得系统的研究能够确定细菌内部的化学梯度是否可以维持——这是荧光显微镜分辨率限制下的一个悬而未决的问题。虽然以前认为细菌细胞的小尺寸和细胞质中的快速扩散有效地消除了任何这样的梯度,但发表在《BMC生物物理学》上的一项新的计算研究支持了梯度存在的新观点。这项研究源于最近的一项观察,即磷酸化的CtrA在新月茎杆菌(一种以其复杂的细胞周期而闻名的细菌)的细胞分裂之前形成了一个梯度。Tropini等人(2012)认为这种梯度可以提供内部化学指南针,指导蛋白质定位、细胞分裂和细胞发育。更具体地说,他们描述了形成这种梯度的生化和物理限制,并探索了许多现有的细菌细胞形态。这些化学梯度可能限制体外分析,并可能确保细胞发育关键阶段的时间控制和对波动的稳健性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
BMC Biophysics
BMC Biophysics BIOPHYSICS-
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0.00%
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0
审稿时长
>12 weeks
期刊介绍: Cessation
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