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限制和活动调节了多孔介质中细菌的运动。

Confinement and activity regulate bacterial motion in porous media.

机构信息

The Andlinger Center for Energy and the Environment, Princeton University, 86 Olden Street, Princeton, NJ 08544, USA.

出版信息

Soft Matter. 2019 Dec 11;15(48):9920-9930. doi: 10.1039/c9sm01735f.

Abstract

Understanding how bacteria move in porous media is critical to applications in healthcare, agriculture, environmental remediation, and chemical sensing. Recent work has demonstrated that E. coli, which moves by run-and-tumble dynamics in a homogeneous medium, exhibits a new form of motility when confined in a disordered porous medium: hopping-and-trapping motility, in which cells perform rapid, directed hops punctuated by intervals of slow, undirected trapping. Here, we use direct visualization to shed light on how these processes depend on pore-scale confinement and cellular activity. We find that hopping is determined by pore-scale confinement, and is independent of cellular activity; by contrast, trapping is determined by the competition between pore-scale confinement and cellular activity, as predicted by an entropic trapping model. These results thus help to elucidate the factors that regulate bacterial motion in porous media, and could help aid the development of new models of motility in heterogeneous environments.

摘要

了解细菌在多孔介质中的运动方式对于医疗保健、农业、环境修复和化学传感等应用至关重要。最近的研究表明,在均匀介质中通过跑动和翻转动力学运动的大肠杆菌,在无序多孔介质中表现出一种新的运动形式:跳跃和捕获运动,其中细胞进行快速、定向的跳跃,间隔着缓慢、无定向的捕获。在这里,我们使用直接可视化来揭示这些过程如何依赖于孔隙尺度的限制和细胞活性。我们发现跳跃是由孔隙尺度的限制决定的,与细胞活性无关;相比之下,捕获是由孔隙尺度的限制和细胞活性之间的竞争决定的,这与熵捕获模型的预测一致。这些结果有助于阐明调节细菌在多孔介质中运动的因素,并有助于开发异质环境中运动新模型。

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