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A multi-scale model of Escherichia coli chemotaxis from intracellular signaling pathway to motility and nutrient uptake in nutrient gradient and isotropic fluid environments

机译:在营养梯度和各向同性流体环境中,大肠埃希菌从细胞内信号通路到运动性和养分吸收的多尺度模型

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This paper presents a multi-scale mathematical model of Escherichia calf chemotaxis in a fluid environment that links the biochemical dynamics of intracellular signaling and flagellar dynamics to the behavior of cells and the surrounding nutrients and fluid flow. We combine the RapidCell model for the intracellular chemotaxis signaling pathway to obtain run and tumble behaviors of cells with the method of regularized Stokeslets to simulate cell motility in Stokes flow and the finite element method to solve the advection-diffusion-reaction equation of nutrients. Simulations were carried out using varying numbers of bacterial cells to ascertain the effects of cell-cell and cell-fluid interactions in isotropic environments and in fluids characterized by chemoeffector nutrient gradients. The resulting feedback between hydrodynamics and chemotaxis not only shows expected run and tumble behaviors of bacterial cells but also depicts the importance of fluid dynamical effects on the transport and consumption of chemoeffectors. Published by Elsevier Ltd.
机译:本文提出了在流体环境中大肠埃希氏菌趋化性的多尺度数学模型,该模型将细胞内信号传导和鞭毛动力学的生化动力学与细胞的行为以及周围的营养物质和流体流动联系在一起。我们将用于细胞内趋化性信号通路的RapidCell模型与常规Stokeslets方法(用于模拟Stokes流中的细胞运动性)和有限元方法(用于解决营养物的对流扩散反应方程式)相结合,以获得细胞的运行和翻滚行为。使用不同数量的细菌细胞进行了模拟,以确定在各向同性环境和以化学效应营养梯度为特征的流体中细胞-细胞和细胞-流体相互作用的影响。流体动力学和趋化性之间的最终反馈不仅显示了细菌细胞的预期运行和翻滚行为,而且还描​​述了流体动力学效应对化学效应子的运输和消耗的重要性。由Elsevier Ltd.发布

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