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首页> 外文期刊>Nature Communications >Self-organization of swimmers drives long-range fluid transport in bacterial colonies
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Self-organization of swimmers drives long-range fluid transport in bacterial colonies

机译:游泳者的自组织驱动细菌菌落中的远距离液体运输

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Motile subpopulations in microbial communities are believed to be important for dispersal, quest for food, and material transport. Here, we show that motile cells in sessile colonies of peritrichously flagellated bacteria can self-organize into two adjacent, centimeter-scale motile rings surrounding the entire colony. The motile rings arise from spontaneous segregation of a homogeneous swimmer suspension that mimics a phase separation; the process is mediated by intercellular interactions and shear-induced depletion. As a result of this self-organization, cells drive fluid flows that circulate around the colony at a constant peak speed of ~30?μm?ssup-1/sup, providing a stable and high-speed avenue for directed material transport at the macroscopic scale. Our findings present a unique form of bacterial self-organization that influences population structure and material distribution in colonies.
机译:人们认为微生物群落中的运动亚群对于传播,寻找食物和物质运输很重要。在这里,我们显示了周生鞭毛细菌的无柄菌落中的能动细胞可以自组织成围绕整个菌落的两个相邻的厘米级能动环。运动环来自模拟相分离的均质游泳者悬浮液的自发分离。该过程是由细胞间相互作用和剪切诱导的耗竭介导的。这种自组织的结果是,细胞以大约30?μm?s -1 的恒定峰值速度驱动流体在菌落周围循环,从而为定向流提供了稳定和高速的途径。宏观范围内的物质运输。我们的发现提出了一种独特的细菌自组织形式,可影响菌落的种群结构和物质分布。

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