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Bacterial hopping and trapping in porous media

机译:细菌在多孔介质中的跳跃和捕获

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Diverse processes-e.g. bioremediation, biofertilization, and microbial drug delivery-rely on bacterial migration in disordered, three-dimensional (3D) porous media. However, how pore-scale confinement alters bacterial motility is unknown due to the opacity of typical 3D media. As a result, models of migration are limited and often employ ad hoc assumptions. Here we reveal that the paradigm of run-and-tumble motility is dramatically altered in a porous medium. By directly visualizing individual Escherichia coli, we find that the cells are intermittently and transiently trapped as they navigate the pore space, exhibiting diffusive behavior at long time scales. The trapping durations and the lengths of "hops" between traps are broadly distributed, reminiscent of transport in diverse other disordered systems; nevertheless, we show that these quantities can together predict the long-time bacterial translational diffusivity. Our work thus provides a revised picture of bacterial motility in complex media and yields principles for predicting cellular migration.
机译:多样化的流程-例如生物修复,生物受精和微生物药物传递取决于细菌在无序的三维(3D)多孔介质中的迁移。但是,由于典型3D介质的不透明性,孔尺度限制如何改变细菌运动性是未知的。结果,迁移模型受到限制,并且经常采用临时假设。在这里,我们揭示了奔跑运动的范式在多孔介质中发生了巨大变化。通过直接可视化单个大肠杆菌,我们发现细胞在进入孔隙空间时被间歇性和短暂地捕获,在长时间范围内表现出扩散行为。诱捕器的诱捕持续时间和“跳数”的长度分布广泛,让人想起在其他各种无序系统中的运输。但是,我们证明了这些数量可以共同预测长期细菌翻译扩散性。因此,我们的工作提供了在复杂培养基中细菌运动力的修订图,并产生了预测细胞迁移的原理。

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