Frustrated 'run and tumble' of swimming Escherichia coli bacteria in nematic liquid crystals.

IF 3.6 3区 生物学 Q1 BIOLOGY Interface Focus Pub Date : 2022-10-14 eCollection Date: 2022-12-06 DOI:10.1098/rsfs.2022.0039
Martyna Goral, Eric Clement, Thierry Darnige, Teresa Lopez-Leon, Anke Lindner
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Abstract

In many situations, bacteria move in complex environments, as soils, oceans or the human gut-track, where carrier fluids show complex structures associated with non-Newtonian rheology. Many fundamental questions concerning the ability to navigate in such environments remain unsolved. Recently, it has been shown that the kinetics of bacterial motion in structured fluids as liquid crystals (LCs) is constrained by the orientational molecular order (or director field) and that novel spatio-temporal patterns arise. A question unaddressed so far is how bacteria change swimming direction in such an environment. In this work, we study the swimming mechanism of a single bacterium, Esherichia coli, constrained to move along the director field of a lyotropic chromonic liquid crystal confined to a planar cell. Here, the spontaneous 'run and tumble' motion of the bacterium gets frustrated: the elasticity of the LC prevents flagella from unbundling. Interestingly, to change direction, bacteria execute a reversal motion along the director field, driven by the relocation of a single flagellum, a 'frustrated tumble'. We characterize this phenomenon in detail experimentally, exploiting exceptional spatial and temporal resolution of bacterial and flagellar dynamics, using a two colour Lagrangian tracking technique. We suggest a possible mechanism accounting for these observations.

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在向列相液晶中游动的大肠杆菌令人沮丧的“奔跑和翻滚”。
在许多情况下,细菌在复杂的环境中移动,如土壤、海洋或人类肠道,其中载液显示出与非牛顿流变学相关的复杂结构。关于在这种环境中导航的能力的许多基本问题仍未解决。最近,研究表明,细菌在作为液晶的结构化流体中的运动动力学受到取向分子序(或指向矢场)的约束,并出现了新的时空模式。到目前为止,一个尚未解决的问题是细菌如何在这样的环境中改变游动方向。在这项工作中,我们研究了一种细菌——大肠埃希氏菌——的游动机制,这种细菌被限制在平面细胞内的溶致变色液晶的指向矢场上移动。在这里,细菌自发的“奔跑和翻滚”运动受到阻碍:LC的弹性阻止了鞭毛的解开。有趣的是,为了改变方向,细菌在单个鞭毛的重新定位的驱动下,沿着指向矢场进行反向运动,这是一种“挫败性翻滚”。我们利用细菌和鞭毛动力学的特殊空间和时间分辨率,使用双色拉格朗日跟踪技术,通过实验详细描述了这一现象。我们提出了一种可能的机制来解释这些观察结果。
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
Interface Focus
Interface Focus BIOLOGY-
CiteScore
9.20
自引率
0.00%
发文量
44
审稿时长
6-12 weeks
期刊介绍: Each Interface Focus themed issue is devoted to a particular subject at the interface of the physical and life sciences. Formed of high-quality articles, they aim to facilitate cross-disciplinary research across this traditional divide by acting as a forum accessible to all. Topics may be newly emerging areas of research or dynamic aspects of more established fields. Organisers of each Interface Focus are strongly encouraged to contextualise the journal within their chosen subject.
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