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机械力在生长大肠杆菌微菌落平面到块状转变中的作用。

The role of mechanical forces in the planar-to-bulk transition in growing Escherichia coli microcolonies.

机构信息

Cavendish Laboratory, University of Cambridge, JJ Thomson Avenue, Cambridge CB3 0HE, UK

SUPA, School of Physics and Astronomy, University of Edinburgh, James Clerk Maxwell Building, King's Buildings, Mayfield Road, Edinburgh EH9 3JZ, UK

出版信息

J R Soc Interface. 2014 Aug 6;11(97):20140400. doi: 10.1098/rsif.2014.0400.

Abstract

Mechanical forces are obviously important in the assembly of three-dimensional multicellular structures, but their detailed role is often unclear. We have used growing microcolonies of the bacterium Escherichia coli to investigate the role of mechanical forces in the transition from two-dimensional growth (on the interface between a hard surface and a soft agarose pad) to three-dimensional growth (invasion of the agarose). We measure the position within the colony where the invasion transition happens, the cell density within the colony and the colony size at the transition as functions of the concentration of the agarose. We use a phenomenological theory, combined with individual-based computer simulations, to show how mechanical forces acting between the bacterial cells, and between the bacteria and the surrounding matrix, lead to the complex phenomena observed in our experiments-in particular the observation that agarose concentration non-trivially affects the colony size at transition. Matching these approaches leads to a prediction for how the friction between the bacteria and the agarose should vary with agarose concentration. Our experimental conditions mimic numerous clinical and environmental scenarios in which bacteria invade soft matrices, as well as shedding more general light on the transition between two- and three-dimensional growth in multicellular assemblies.

摘要

机械力在三维多细胞结构的组装中显然很重要,但它们的详细作用往往不清楚。我们利用不断生长的大肠杆菌微菌落来研究机械力在从二维生长(在坚硬表面和柔软琼脂糖垫之间的界面上)到三维生长(侵入琼脂糖)的转变中的作用。我们测量了菌落中入侵转变发生的位置、菌落中的细胞密度以及转变时的菌落大小作为琼脂糖浓度的函数。我们使用一种唯象理论,结合基于个体的计算机模拟,展示了细菌细胞之间以及细菌与周围基质之间的机械力如何导致我们实验中观察到的复杂现象——特别是观察到琼脂糖浓度对转变时的菌落大小有重要影响。这些方法的匹配导致了对细菌与琼脂糖之间摩擦力如何随琼脂糖浓度变化的预测。我们的实验条件模拟了许多临床和环境场景中细菌侵入软基质的情况,同时也更普遍地揭示了多细胞组装中从二维到三维生长的转变。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/348a/4208374/1962a77d0624/rsif20140400-g1.jpg

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