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Entrainment and Control of Bacterial Populations: An in Silico Study over a Spatially Extended Agent Based Model

机译:细菌种群的夹带和控制:基于空间扩展代理模型的硅片研究

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摘要

We extend a spatially explicit agent based model (ABM) developed previously to investigate entrainment and control of the emergent behavior of a population of synchronized oscillating cells in a microfluidic chamber. Unlike most of the work in models of control of cellular systems which focus on temporal changes, we model individual cells with spatial dependencies which may contribute to certain behavioral responses. We use the model to investigate the response of both open loop and closed loop strategies, such as proportional control (P-control), proportional-integral control (PI-control) and proportional-integral-derivative control (PID-control), to heterogeinities and growth in the cell population, variations of the control parameters and spatial effects such as diffusion in the spatially explicit setting of a microfluidic chamber setup. We show that, as expected from the theory of phase locking in dynamical systems, open loop control can only entrain the cell population in a subset of forcing periods, with a wide variety of dynamical behaviors obtained outside these regions of entrainment. Closed-loop control is shown instead to guarantee entrainment in a much wider region of control parameter space although presenting limitations when the population size increases over a certain threshold. In silico tracking experiments are also performed to validate the ability of classical control approaches to achieve other reference behaviors such as a desired constant output or a linearly varying one. All simulations are carried out in BSim, an advanced agent-based simulator of microbial population which is here extended ad hoc to include the effects of control strategies acting onto the population.
机译:我们扩展以前开发的基于空间显式代理的模型(ABM),以研究微流体室内同步振荡细胞群体的夹带和控制。与大多数关注时间变化的细胞系统控制模型中的大多数工作不同,我们对具有空间依赖性的单个细胞进行建模,这些依赖性可能有助于某些行为反应。我们使用该模型来研究开环和闭环策略(例如比例控制(P-控制),比例积分控制(PI-控制)和比例积分-微分控制(PID-控制))的响应。细胞群体的异质性和增长,控制参数的变化以及空间效应,例如微流体腔室设置在空间上显式设置中的扩散。我们显示出,正如从动力系统中的锁相理论所期望的那样,开环控制只能在强迫时段的一个子集中携带细胞群,并且在这些携带区域之外获得了各种各样的动力学行为。代替地,示出了闭环控制以确保在控制参数空间的更宽范围内进行夹带,尽管当人口规模增加超过特定阈值时会出现限制。还进行了计算机跟踪实验,以验证经典控制方法实现其他参考行为(例如所需的恒定输出或线性变化的行为)的能力。所有模拟都在BSim中进行,BSim是基于微生物的种群的高级基于代理的模拟器,在此已进行临时扩展,以包括控制策略对种群的作用。

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