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Arrested phase separation in reproducing bacteria creates a generic route to pattern formation

机译:繁殖细菌中被捕的相分离创造了模式形成的通用途径

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We present a generic mechanism by which reproducing microorganisms, with a diffusivity that depends on the local population density, can form stable patterns. For instance, it is known that a decrease of bacterial motility with density can promote separation into bulk phases of two coexisting densities; this is opposed by the logistic law for birth and death that allows only a single uniform density to be stable. The result of this contest is an arrested nonequilibrium phase separation in which dense droplets or rings become separated by less dense regions, with a characteristic steady-state length scale. Cell division predominates in the dilute regions and cell death in the dense ones, with a continuous flux between these sustained by the diffusivity gradient. We formulate a mathematical model of this in a case involving run-and-tumble bacteria and make connections with a wider class of mechanisms for density-dependent motility. No chemotaxis is assumed in the model, yet it predicts the formation of patterns strikingly similar to some of those believed to result from chemotactic behavior.
机译:我们提出了一种通用的机制,通过这种机制,繁殖微生物的扩散能力取决于当地人口密度,可以形成稳定的模式。例如,众所周知,随着密度的降低,细菌运动性会促进分离为两种同时存在的密度的本体相。这与生与死的后勤法则相反,后者仅允许单一的均匀密度保持稳定。这场比赛的结果是阻止了非平衡相分离,在该相分离中,稠密的液滴或环被密度较低的区域分开,具有典型的稳态长度尺度。在稀薄的区域中,细胞分裂占主导地位,在稠密的区域中,细胞死亡占据主导地位,在这些区域之间的连续通量通过扩散率梯度得以维持。我们在涉及运行性细菌的情况下为此建立了数学模型,并与更广泛的依赖于密度的运动机制进行了联系。模型中未假设趋化性,但它预测模式的形成与某些趋于趋化行为的模式极为相似。

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