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Modeling mechanical interactions in growing populations of rod-shaped bacteria

机译:杆状细菌种植种群的机械相互作用

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Advances in synthetic biology allow us to engineer bacterial collectives with pre-specified characteristics. However, the behavior of these collectives is difficult to understand, as cellular growth and division as well as extra-cellular fluid flow lead to complex, changing arrangements of cells within the population. To rationally engineer and control the behavior of cell collectives we need theoretical and computational tools to understand their emergent spatiotemporal dynamics. Here, we present an agent-based model that allows growing cells to detect and respond to mechanical interactions. Crucially, our model couples the dynamics of cell growth to the cell's environment: Mechanical constraints can affect cellular growth rate and a cell may alter its behavior in response to these constraints. This coupling links the mechanical forces that influence cell growth and emergent behaviors in cell assemblies. We illustrate our approach by showing how mechanical interactions can impact the dynamics of bacterial collectives growing in microfluidic traps.
机译:合成生物学的进步允许我们使用预先指定特征工程细菌集体。然而,这些集体的行为难以理解,作为细胞生长和划分以及细胞液体流动导致群体内细胞的复杂性,改变的细胞布置。为了理性地工程师并控制细胞集体的行为我们需要理论和计算工具来了解他们的紧急时尚动态。在这里,我们提出了一种基于代理的模型,允许生长细胞来检测和响应机械相互作用。至关重要的是,我们的模型将细胞生长的动态致力于细胞的环境:机械约束可以影响细胞生长速率,并且细胞可以响应于这些约束而改变其行为。该耦合将影响细胞组件中的细胞生长和紧急行为的机械力联系起来。我们通过展示机械相互作用如何影响微流体陷阱生长的细菌集体的动态来说明我们的方法。

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