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Microbubbles reveal chiral fluid flows in bacterial swarms

机译:微泡揭示细菌群中的手性液流

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摘要

Flagellated bacteria can swim within a thin film of fluid that coats a solid surface, such as agar; this is a means for colony expansion known as swarming. We found that micrometer-sized bubbles make excellent tracers for the motion of this fluid. The microbubbles form explosively when small aliquots of an aqueous suspension of droplets of a water-insoluble surfactant (Span 83) are placed on the agar ahead of a swarm, as the water is absorbed by the agar and the droplets are exposed to air. Using these bubbles, we discovered an extensive stream (or river) of swarm fluid flowing clockwise along the leading edge of an Escherichia coli swarm, at speeds of order 10 μm/s, about three times faster than the swarm expansion. The flow is generated by the action of counterclockwise rotating flagella of cells stuck to the substratum, which drives fluid clockwise around isolated cells (when viewed from above), counterclockwise between cells in dilute arrays, and clockwise in front of cells at the swarm edge. The river provides an avenue for long-range communication in the swarming colony, ideally suited for secretory vesicles that diffuse poorly. These findings broaden our understanding of swarming dynamics and have implications for the engineering of bacterial-driven microfluidic devices.
机译:鞭毛细菌可以在一层覆盖琼脂等固体表面的液体薄膜中游动;这是殖民地扩张的一种手段,称为蜂群。我们发现微米大小的气泡可以很好地追踪这种流体的运动。当将水不溶性表面活性剂的小滴水悬浮液的小等分试样(群号83)放在琼脂上时,这些小气泡会爆炸性地形成,因为水会被琼脂吸收,并且小滴会暴露于空气中。利用这些气泡,我们发现了一大群(或河流)蜂群流体沿着大肠杆菌群的前缘顺时针方向流动,速度约为10μm/ s,比群膨胀快三倍。流动是通过粘附在基质上的细胞的逆时针旋转鞭毛的作用产生的,该鞭毛的作用是顺时针围绕分离的细胞(从上方观察)驱动流体,在稀疏阵列中的细胞之间逆时针驱动流体,并在群边缘的细胞前面顺时针驱动流体。河流为成群的殖民地提供了远距离交流的渠道,非常适合扩散不佳的分泌小泡。这些发现拓宽了我们对群体动态的理解,并为细菌驱动的微流体装置的工程设计带来了影响。

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