论文标题

夜间液晶中的沮丧的奔跑和游泳电子谷细菌的滚动

Frustrated run and tumble of swimming E-coli bacteria in nematic liquid crystals

论文作者

Goral, Martyna, Clement, Eric, Darnige, Thierry, Lopez-Leon, Teresa, Lindner, Anke

论文摘要

在许多情况下,细菌在复杂的环境中移动,例如在土壤,海洋或人肠道微生物组中移动。在这些自然环境中,诸如粘液或生殖流体之类的载体流体显示出与非牛顿流变学相关的复杂结构。由于自然环境的固有复杂性,许多有关在这种环境中导航能力的基本问题仍然无法解决。最近,游泳细菌与夜间液晶的相互作用引起了很多关注。在这些结构化的流体中,细菌运动的动力学受到液晶(或导演场)的定向分子顺序的约束,而新型时空模式则由这种定向性约束以及与拓扑缺陷的相互作用产生。到目前为止,一个尚未解决的问题是细菌如何在这种环境下改变游泳方向。在这项工作中,我们研究了单个细菌E. coli的游泳机制,被限制在溶解的镀铬液体晶体(LCLC)的主管中,该机制仅限于平面细胞。在这样的环境中,细菌的自发性奔跑和滚动运动变得沮丧:液晶的弹性可防止鞭毛脱离。有趣的是,为了改变方向,细菌在导演场上执行逆转运动,这是由于将单个鞭毛搬迁到细菌体的另一侧的驱动,这是沮丧的滚落。我们提出了这种现象的详细实验表征,利用了使用两种颜色的拉格朗日跟踪技术获得的游泳过程中细菌和鞭毛动力学的特殊空间和时间分辨率。我们建议沮丧的奔跑和翻滚运动背后的可能机制,这是对这些观察结果的解释。

In many situations bacteria move in complex environments, as for example in soils, oceans or the human gut-track microbiome. In these natural environments, carrier fluids such as mucus or reproductive fluids show complex structure associated with non-Newtonian rheology. Many fundamental questions concerning the the ability to navigate in such environments remain unsolved due to the inherent complexity of the natural surroundings. Recently, the interaction of swimming bacteria with nematic liquid crystals has attracted lot of attention. In these structured fluids, the kinetics of bacterial motion is constrained by the orientational molecular order of the liquid crystal (or director field) and novel spatio-temporal patterns arise from this orientational constraint, as well as from the interactions with topological defects. A question unaddressed so far is how bacteria are able to change swimming direction in such an environment. In this work, we study the swimming mechanism of a single bacterium, E. coli, constrained to move along the director field of a lyotropic chromonic liquid crystal (LCLC) that is confined to a planar cell. In such an environment, the spontaneous run and tumble motion of the bacterium gets frustrated: the elasticity of the liquid crystal prevents flagella from unbundling. Interestingly, in order to change direction, bacteria execute a reversal motion along the director field, driven by the relocation of a single flagellum to the other side of the bacterial body, coined as a frustrated tumble. We present a detailed experimental characterization of this phenomenon, exploiting exceptional spatial and temporal resolution of bacteria and flagella dynamics during swimming, obtained using a two color Lagrangian tracking technique. We suggest a possible mechanism behind the frustrated run and tumble motion, accounting for these observations.

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