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Swimming bacteria power microspin cycles

机译:游泳细菌为微旋转循环供电

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Dense suspensions of swimming bacteria are living fluids, an archetype of active matter. For example, Bacillus subtilis confined within a disc-shaped region forms a persistent stable vortex that counterrotates at the periphery. Here, we examined Escherichia coli under similar confinement and found that these bacteria, instead, form microspin cycles: a single vortex that periodically reverses direction on time scales of seconds. Using experimental perturbations of the confinement geometry, medium viscosity, bacterial length, density, and chemotaxis pathway, we show that morphological alterations of the bacteria transition a stable vortex into a periodically reversing one. We develop a mathematical model based on single-cell biophysics that quantitatively recreates the dynamics of these vortices and predicts that density gradients power the reversals. Our results define how microbial physics drives the active behavior of dense bacterial suspensions and may allow one to engineer novel micromixers for biomedical and other microfluidic applications.
机译:游泳细菌的密集悬浮液是活液,是活性物质的原型。例如,限制在圆盘形区域内的枯草芽孢杆菌形成持续稳定的涡旋,该涡旋在外围反向旋转。在这里,我们在相似的限制下检查了大肠杆菌,发现这些细菌形成了微旋转循环:一个单涡旋,周期性地在几秒钟的时间尺度上反转方向。使用围产的几何,中等粘度,细菌的长度,密度和趋化途径的实验扰动,我们表明细菌的形态变化将稳定的涡旋转变为周期性反转。我们开发了基于单细胞生物物理学的数学模型,该模型定量地重现了这些涡旋的动力学,并预测密度梯度推动了逆转。我们的结果确定了微生物物理学如何驱动致密细菌悬浮液的活跃行为,并可能使人们能够设计出一种用于生物医学和其他微流体应用的新型微混合器。

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