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首页> 外文期刊>Mathematical Biosciences: An International Journal >Approximation of delays in biochemical systems
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Approximation of delays in biochemical systems

机译:生化系统延迟的近似值

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摘要

In the past metabolic pathway analyses have mostly ignored the effects of time delays that may be due to processes that are slower than biochemical reactions, such as transcription, translation, translocation, and transport. We show within the framework of biochemical systems theory (BST) that delay processes can be approximated accurately by augmenting the original variables and non-linear differential equations with auxiliary variables that are defined through a system of linear ordinary differential equations. These equations are naturally embedded in the structure of S-systems and generalized mass action systems, within BST and can be interpreted as linear signaling pathways or cascades. We demonstrate the approximation method with the simplest generic modules. namely single delayed steps with and Without feedback inhibition. These steps are representative though, because they are easily incorporated into larger systems. We show that the dynamics of the approximated systems reflects that of the original delay systems well, as long as the systems do not operate in very close vicinity of threshold values where the systems lose stability, The accuracy of approximation furthermore depends on the selected number of auxiliary variables. In the most relevant situations where the systems operate at states away from their critical thresholds. even it few auxiliary variables lead to satisfactory approximations. (c) 2005 Elsevier Inc. All rights reserved.
机译:过去,代谢途径分析大多忽略了时间延迟的影响,这可能是由于其过程比生化反应慢,例如转录,翻译,易位和转运。我们在生化系统理论(BST)的框架内显示出,可以通过用通过线性常微分方程组定义的辅助变量增加原始变量和非线性微分方程,来精确地近似延迟过程。这些方程式自然嵌入到BST内的S系统和广义质量作用系统的结构中,并且可以解释为线性信号通路或级联。我们用最简单的通用模块演示了近似方法。即具有和没有反馈抑制的单个延迟步骤。这些步骤具有代表性,因为它们很容易合并到较大的系统中。我们证明,只要系统不在阈值附近(系统会失去稳定性)的情况下运行,近似系统的动力学性能就能很好地反映原始延迟系统的动力学性能。近似精度还取决于所选择的系统数目。辅助变量。在最相关的情况下,系统在远离其临界阈值的状态下运行。即使只有很少的辅助变量也能得出令人满意的近似值。 (c)2005 Elsevier Inc.保留所有权利。

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