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Dynamic Cellular Automata: An Alternative Approach to Cellular Simulation

机译:动态细胞自动机:细胞模拟的另一种方法

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A wide variety of approaches, ranging from Petri nets to systems of partial differential equations, have been used to model very specific aspects of cellular or biochemical functions. Here we describe how an agent-based or dynamic cellular automata (DCA) approach can be used as a very simple, yet very general method to model many different kinds of cellular or biochemical processes. Specifically, using simple pairwise interaction rules coupled with random object moves to simulate Brownian motion, we show how the DCA approach can be used to easily and accurately model diffusion, viscous drag, enzyme rate processes, metabolism (the Kreb's cycle), and complex genetic circuits (the repressilator). We also demonstrate how DCA approaches are able to accurately capture the stochasticity of many biological processes. The success and simplicity of this technique suggests that many other physical properties and significantly more complicated aspects of cellular behavior could be modeled using DCA methods. An easy-to-use, graphically-based computer program, called SimCell, was developed to perform the DCA simulations described here. It is available at http://wishart.biology.ualberta.ca/SimCell/.
机译:从Petri网到偏微分方程系统,各种各样的方法已被用来模拟细胞或生化功能的非常具体的方面。在这里,我们描述基于代理或动态细胞自动机(DCA)的方法如何用作对许多不同类型的细胞或生化过程进行建模的非常简单但非常通用的方法。具体来说,通过使用简单的成对交互规则以及随机的对象移动来模拟布朗运动,我们将展示如何使用DCA方法轻松而准确地对扩散,粘性阻力,酶速率过程,新陈代谢(克雷布循环)和复杂遗传进行建模电路(稳压器)。我们还演示了DCA方法如何能够准确地捕获许多生物过程的随机性。该技术的成功和简单性表明,可以使用DCA方法对许多其他物理特性以及细胞行为的更为复杂的方面进行建模。开发了一种易于使用的基于图形的计算机程序,称为SimCell,以执行此处描述的DCA仿真。可从http://wishart.biology.ualberta.ca/SimCell/获得。

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