Modelling periodic oscillation of biological systems with multiple timescale networks.

R Wang, T Zhou, Z Jing, L Chen
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引用次数: 71

Abstract

In this paper, we aim to develop a new methodology to model and design periodic oscillators of biological networks, in particular gene regulatory networks with multiple genes, proteins and time delays, by using multiple timescale networks (MTN). Fast reactions constitute a positive feedback-loop network (PFN), while slow reactions consist of a cyclic feedback-loop network (CFN), in MTN. Multiple timescales are exploited to simplify models according to singular perturbation theory. We show that a MTN has no stable equilibrium but stable periodic orbits when certain conditions are satisfied. Specifically, we first prove the basic properties of MTNs with only one PFN, and then generalise the result to MTNs with multiple PFNs. Finally, we design a biologically plausible gene regulatory network by the cI and Lac genes, to demonstrate the theoretical results. Since there is less restriction on the network structure of a MTN, it can be expected to apply to a wide variety of areas on the modelling, analysing and designing of biological systems.

多时间尺度网络生物系统周期振荡建模。
在本文中,我们的目标是通过使用多时间尺度网络(MTN)开发一种新的方法来建模和设计生物网络的周期振荡器,特别是具有多基因,蛋白质和时间延迟的基因调控网络。在MTN中,快速反应构成一个正反馈环网络(PFN),而慢反应构成一个循环反馈环网络(CFN)。根据奇异摄动理论,利用多时间尺度简化模型。我们证明了当满足一定条件时,MTN没有稳定的平衡,只有稳定的周期轨道。具体来说,我们首先证明了只有一个PFN的mtn的基本性质,然后将结果推广到具有多个PFN的mtn。最后,我们通过cI和Lac基因设计了一个生物学上合理的基因调控网络,以证明理论结果。由于对MTN的网络结构的限制较少,因此可以期望它适用于生物系统建模,分析和设计的各种领域。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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