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Verticalization of bacterial biofilms

机译:细菌生物膜的垂直化

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摘要

Biofilms are communities of bacteria adhered to surfaces. Recently, biofilms of rod-shaped bacteria were observed at single-cell resolution and shown to develop from a disordered, two-dimensional layer of founder cells into a three-dimensional structure with a vertically-aligned core. Here, we elucidate the physical mechanism underpinning this transition using a combination of agent-based and continuum modeling. We find that verticalization proceeds through a series of localized mechanical instabilities on the cellular scale. For short cells, these instabilities are primarily triggered by cell division, whereas long cells are more likely to be peeled off the surface by nearby vertical cells, creating an “inverse domino effect”. The interplay between cell growth and cell verticalization gives rise to an exotic mechanical state in which the effective surface pressure becomes constant throughout the growing core of the biofilm surface layer. This dynamical isobaricity determines the expansion speed of a biofilm cluster and thereby governs how cells access the third dimension. In particular, theory predicts that a longer average cell length yields more rapidly expanding, flatter biofilms. We experimentally show that such changes in biofilm development occur by exploiting chemicals that modulate cell length.
机译:生物膜是粘附在表面的细菌群落。最近,在单细胞分辨率下观察到了棒状细菌的生物膜,并显示其是从无序的二维始祖细胞层发展成具有垂直排列的核心的三维结构。在这里,我们通过结合基于代理的模型和连续模型来阐明支撑​​这种过渡的物理机制。我们发现垂直化通过一系列在细胞尺度上的局部机械不稳定性而进行。对于短细胞,这些不稳定性主要是由细胞分裂触发的,而长细胞则更有可能被附近的垂直细胞从表面剥离,从而产生“反向多米诺效应”。细胞生长和细胞垂直化之间的相互作用产生了一种奇特的机械状态,其中有效表面压力在生物膜表面层的整个生长核中变得恒定。这种动态等压性决定了生物膜簇的膨胀速度,从而决定了细胞如何进入三维。尤其是,理论预测,更长的平均细胞长度会产生更迅速扩展,更平坦的生物膜。我们实验表明,通过利用可调节细胞长度的化学物质,生物膜发育中的这种变化会发生。

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