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首页> 外文期刊>Journal of Mathematical Biology >Autocatalytic genetic networks modeled by piecewise-deterministic Markov processes
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Autocatalytic genetic networks modeled by piecewise-deterministic Markov processes

机译:用分段确定性马尔可夫过程建模的自催化遗传网络

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In the present work we propose an alternative approach to model autocatalytic networks, called piecewise-deterministic Markov processes. These were originally introduced by Davis in 1984. Such a model allows for random transitions between the active and inactive state of a gene, whereas subsequent transcription and translation processes are modeled in a deterministic manner. We consider three types of autoregulated networks, each based on a positive feedback loop. It is shown that if the densities of the stationary distributions exist, they are the solutions of a system of equations for a one-dimensional correlated random walk. These stationary distributions are determined analytically. Further, the distributions are analyzed for different simulation periods and different initial concentration values by numerical means. We show that, depending on the network structure, beside a binary response also a graded response is observable.
机译:在当前的工作中,我们提出了一种用于建模自动催化网络的替代方法,称为分段确定性马尔可夫过程。这些最初是由戴维斯(Davis)于1984年提出的。这种模型允许在基因的活跃状态和非活跃状态之间进行随机过渡,而随后的转录和翻译过程则以确定性的方式进行建模。我们考虑三种类型的自动调节网络,每种基于正反馈回路。结果表明,如果存在平稳分布的密度,则它们是一维相关随机游动方程组的解。这些平稳分布通过分析确定。此外,通过数值手段分析了不同的模拟周期和不同的初始浓度值的分布。我们证明,根据网络结构,除了二进制响应之外,还可以观察到分级响应。

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