Motile bacteria crossing liquid–liquid interfaces of an aqueous isotropic–nematic coexistence phase†

IF 2.9 3区 化学 Q3 CHEMISTRY, PHYSICAL
Soft Matter Pub Date : 2024-09-03 DOI:10.1039/D4SM00766B
Jiyong Cheon, Joowang Son, Sungbin Lim, Yundon Jeong, Jung-Hoon Park, Robert J. Mitchell, Jaeup U. Kim and Joonwoo Jeong
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Abstract

In nature, bacteria often swim in complex fluids, but our understanding of the interactions between bacteria and complex surroundings is still evolving. In this work, rod-like Bacillus subtilis swims in a quasi-2D environment with aqueous liquid–liquid interfaces, i.e., the isotropic–nematic coexistence phase of an aqueous chromonic liquid crystal. Focusing on the bacteria motion near and at the liquid–liquid interfaces, we collect and quantify bacterial trajectories ranging across the isotropic to the nematic phase. Despite its small magnitude, the interfacial tension of the order of 10 μN m−1 at the isotropic–nematic interface justifies our observations that bacteria swimming more perpendicular to the interface have a higher probability of crossing the interface. Our force-balance model, considering the interfacial tension, further predicts how the length and speed of the bacteria affect their crossing behaviors. Investigating how a phase change affects bacterial motion, we also find, as soon as the bacteria cross the interface and enter the nematic phase, they wiggle less, but faster, and that this occurs as the flagellar bundles aggregate within the nematic phase. Given the ubiquity of multi-phases in biological environments, our findings will help to understand active transport across various phases.

Abstract Image

Abstract Image

运动细菌穿过各向同性-向静电共存水相的液-液界面。
在自然界中,细菌经常在复杂的流体中游动,但我们对细菌与复杂环境之间相互作用的理解仍在不断发展。在这项研究中,杆状枯草杆菌在具有水性液-液界面(即水性色子液晶的各向同性-向列共存相)的准二维环境中游动。我们以液液界面附近和界面处的细菌运动为重点,收集并量化了从各向同性相到向列性相的细菌运动轨迹。各向同性-向列界面上的界面张力约为 10 μN m-1,尽管张力很小,但却证明了我们的观察结果,即更垂直于界面游动的细菌穿越界面的概率更高。考虑到界面张力,我们的力平衡模型进一步预测了细菌的长度和速度如何影响它们的穿越行为。在研究相变如何影响细菌运动时,我们还发现,一旦细菌穿过界面进入向列相,它们的摆动幅度会减小,但速度会加快,这是因为鞭毛束聚集在向列相内部。鉴于多相在生物环境中无处不在,我们的发现将有助于了解不同相间的主动运输。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Soft Matter
Soft Matter 工程技术-材料科学:综合
CiteScore
6.00
自引率
5.90%
发文量
891
审稿时长
1.9 months
期刊介绍: Where physics meets chemistry meets biology for fundamental soft matter research.
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