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Collective Bacterial Dynamics Revealed Using a Three-Dimensional Population-Scale Defocused Particle Tracking Technique

机译:使用三维人口规模散焦粒子跟踪技术揭示了集体细菌动力学。

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摘要

An ability to monitor bacterial locomotion and collective dynamics is crucial to our understanding of a number of well-characterized phenotypes including biofilm formation, chemotaxis, and virulence. Here, we report the tracking of multiple swimming Escherichia coli cells in three spatial dimensions and at single-cell resolution using a novel three-dimensional (3D) defocused particle tracking (DPT) method. The 3D trajectories were generated for wild-type Escherichia coli strain RP437 as well as for isogenic derivatives that display smooth swimming due to a cheA deletion (strain RP9535) or incessant tumbling behavior due to a cheZ deletion (strain RP1616). The 3D DPT method successfully differentiated these three modes of locomotion and allowed direct calculation of the diffusion coefficient for each strain. As expected, we found that the smooth swimmer diffused more readily than the wild type, and both the smooth swimmer and the wild-type cells exhibited diffusion coefficients that were at least two orders of magnitude larger than that of the tumbler. Finally, we found that the diffusion coefficient increased with increasing cell density, a phenomenon that can be attributed to the hydrodynamic disturbances caused by neighboring bacteria.
机译:监测细菌运动和集体动态的能力对于我们理解许多特征鲜明的表型(包括生物膜形成,趋化性和毒力)至关重要。在这里,我们报告使用新颖的三维(3D)散焦粒子跟踪(DPT)方法在三个空间维度和单细胞分辨率下跟踪多个游泳大肠杆菌细胞。为野生型大肠杆菌RP437菌株以及因cheA缺失而表现出顺畅游动的同基因衍生物(菌株RP9535)或由于cheZ缺失而引起的持续翻滚行为(菌株RP1616)生成了3D轨迹。 3DPTT方法成功地区分了这三种运动模式,并可以直接计算每个应变的扩散系数。正如预期的那样,我们发现,平滑游泳者的扩散系数要比野生类型的扩散者容易,平滑游泳者和野生型细胞的扩散系数都比不倒翁的扩散系数大至少两个数量级。最后,我们发现扩散系数随着细胞密度的增加而增加,这种现象可以归因于邻近细菌引起的水动力干扰。

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