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简单的物理能量平衡解释了大肠杆菌生物膜中的时空模式形成。

Spatiotemporal pattern formation in E. coli biofilms explained by a simple physical energy balance.

机构信息

Sorbonne Université, CNRS, Laboratoire Jean Perrin (UMR 8237), 4 place Jussieu, F-75005 Paris, France.

出版信息

Soft Matter. 2020 Jan 2;16(2):494-504. doi: 10.1039/c9sm01375j.

Abstract

While the biofilm growth mode conveys notable thriving advantages to bacterial populations, the mechanisms of biofilm formation are still strongly debated. Here, we investigate the remarkable spontaneous formation of regular spatial patterns during the growth of an Escherichia coli biofilm. These patterns reported here appear with non-motile bacteria, which excludes both chemotactic origins and other motility-based ones. We demonstrate that a minimal physical model based on phase separation describes them well. To confirm the predictive capacity of our model, we tune the cell-cell and cell-surface interactions using cells expressing different surface appendages. We further explain how F pilus-bearing cells enroll their wild type kindred, poorly piliated, into their typical pattern when mixed together. This work supports the hypothesis that purely physicochemical processes, such as the interplay of cell-cell and cell-surface interactions, can drive the emergence of a highly organized spatial structure that is potentially decisive for community fate and for biological functions.

摘要

虽然生物膜的生长模式为细菌群体带来了显著的生存优势,但生物膜形成的机制仍存在很大争议。在这里,我们研究了在大肠杆菌生物膜生长过程中自发形成规则空间模式的惊人现象。这里报道的这些模式出现在非运动细菌中,排除了趋化作用和其他基于运动的起源。我们证明,基于相分离的最小物理模型很好地描述了它们。为了确认我们模型的预测能力,我们使用表达不同表面附属物的细胞来调整细胞-细胞和细胞-表面相互作用。我们进一步解释了当混合在一起时,带有 F 菌毛的细胞如何将其野生型同类,即菌毛较少的细胞,纳入其典型模式。这项工作支持了这样一种假设,即纯粹的物理化学过程,如细胞-细胞和细胞-表面相互作用的相互作用,可以驱动高度组织化的空间结构的出现,这对群落命运和生物功能具有潜在的决定性。

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