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Cell Shape And Cell-wall Organization In Gram-negative Bacteria

机译:革兰氏阴性细菌的细胞形态和细胞壁组织

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摘要

In bacterial cells, the peptidoglycan cell wall is the stress-bearing structure that dictates cell shape. Although many molecular details of the composition and assembly of cell-wall components are known, how the network of peptidoglycan subunits is organized to give the cell shape during normal growth and how it is reorganized in response to damage or environmental forces have been relatively unexplored. In this work, we introduce a quantitative physical model of the bacterial cell wall that predicts the mechanical response of cell shape to peptidoglycan damage and perturbation in the rod-shaped Gram-negative bacterium Escherichia coli. To test these predictions, we use time-lapse imaging experiments to show that damage often manifests as a bulge on the sidewall, coupled to large-scale bending of the cylindrical cell wall around the bulge. Our physical model also suggests a surprising robustness of cell shape to peptidoglycan defects, helping explain the observed porosity of the cell wall and the ability of cells to grow and maintain their shape even under conditions that limit peptide crosslinking. Finally, we show that many common bacterial cell shapes can be realized within the same model via simple spatial patterning of peptidoglycan defects, suggesting that minor patterning changes could underlie the great diversity of shapes observed in the bacterial kingdom.
机译:在细菌细胞中,肽聚糖细胞壁是决定细胞形状的承受压力的结构。尽管细胞壁成分的组成和组装的许多分子细节是已知的,但是肽聚糖亚基的网络如何组织以在正常生长过程中产生细胞形状,以及如何响应损伤或环境力而进行重组仍相对未曾探索。在这项工作中,我们介绍了细菌细胞壁的定量物理模型,该模型预测了杆状革兰氏阴性细菌大肠杆菌中细胞形状对肽聚糖损伤和微扰的机械反应。为了测试这些预测,我们使用延时成像实验来表明损坏通常表现为侧壁上的凸起,这与圆柱形细胞壁在凸起周围的大规模弯曲有关。我们的物理模型还暗示了细胞形状对肽聚糖缺陷的出奇的坚固性,有助于解释观察到的细胞壁孔隙率以及即使在限制肽交联的条件下细胞生长和维持其形状的能力。最后,我们表明可以通过简单的肽聚糖缺陷的空间模式在同一模型中实现许多常见的细菌细胞形状,这表明较小的模式变化可能是细菌界观察到的形状多样性的基础。

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