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Model-based control of the temporal patterns of intracellular signaling in silico

机译:基于模型的计算机内细胞内信号传导的时间模式控制

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摘要

The functions of intracellular signal transduction systems are determined by the temporal behavior of intracellular molecules and their interactions. Of the many dynamical properties of the system, the relationship between the dynamics of upstream molecules and downstream molecules is particularly important. A useful tool in understanding this relationship is a methodology to control the dynamics of intracellular molecules with an extracellular stimulus. However, this is a difficult task because the relationship between the levels of upstream molecules and those of downstream molecules is often not only stochastic, but also time-inhomogeneous, nonlinear, and not one-to-one. In this paper, we present an easy-to-implement model-based control method that makes the target downstream molecule to trace a desired time course by changing the concentration of a controllable upstream molecule. Our method uses predictions from Monte Carlo simulations of the model to decide the strength of the stimulus, while using a particle-based approach to make inferences regarding unobservable states. We applied our method to in silico control problems of insulin-dependent AKT pathway model and EGF-dependent Akt pathway model with system noise. We show that our method can robustly control the dynamics of the intracellular molecules against unknown system noise of various strengths, even in the absence of complete knowledge of the true model of the target system.
机译:细胞内信号转导系统的功能取决于细胞内分子的时间行为及其相互作用。在系统的许多动力学性质中,上游分子和下游分子的动力学之间的关系特别重要。理解这种关系的有用工具是通过细胞外刺激控制细胞内分子动力学的方法。但是,这是一项艰巨的任务,因为上游分子水平和下游分子水平之间的关系通常不仅是随机的,而且是时间不均匀的,非线性的,而不是一对一的。在本文中,我们提出了一种基于模型的易于实现的控制方法,该方法通过改变可控上游分子的浓度,使目标下游分子追踪所需的时间过程。我们的方法使用模型的蒙特卡洛模拟的预测来决定刺激的强度,同时使用基于粒子的方法来推断不可观察的状态。我们将我们的方法应用于具有系统噪声的胰岛素依赖性AKT途径模型和EGF依赖性Akt途径模型的计算机控制问题。我们表明,即使在不完全了解目标系统真实模型的情况下,我们的方法也可以针对各种强度的未知系统噪声强有力地控制细胞内分子的动力学。

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