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生物网络的混合建模:融合时间和定性生物学特性

Hybrid modeling of biological networks: mixing temporal and qualitative biological properties.

作者信息

Fromentin Jonathan, Eveillard Damien, Roux Olivier

机构信息

IRCCyN UMR 6597, CNRS & Ecole Centrale de Nantes, Nantes, France.

出版信息

BMC Syst Biol. 2010 Jun 4;4:79. doi: 10.1186/1752-0509-4-79.

Abstract

BACKGROUND

Modeling a dynamical biological system is often a difficult task since the a priori unknown parameters of such models are not always directly given by the experiments. Despite the lack of experimental quantitative knowledge, one can see a dynamical biological system as (i) the combined evolution tendencies (increase or decrease) of the biological compound concentrations, and: (ii) the temporal features, such as delays between two concentration peaks (i.e. the times when one of the components completes an increase (resp. decrease) phase and starts a decrease (resp. increase) phase).

RESULTS

We propose herein a new hybrid modeling framework that follows such biological assumptions. This hybrid approach deals with both a qualitative structure of the system and a quantitative structure. From a theoretical viewpoint, temporal specifications are expressed as equality or inequality constraints between delay parameters, while the qualitative specifications are expressed as an ordered pattern of the concentrations peaks of the components. Using this new hybrid framework, the temporal specifications of a biological system can be obtained from incomplete experimental data. The model may be processed by a hybrid model-checker (e.g. Phaver) which is able to give some new constraints on the delay parameters (e.g. the delay for a given transition is exactly 5 hours after the later peak of a gene product concentration). Furthermore, by using a constraint solver on the previous results, it becomes possible to get the set of parameters settings which are consistent with given specifications. Such a modeling approach is particularly accurate for modeling oscillatory biological behaviors like those observed in the Drosophila circadian cycles. The achieved results concerning the parameters of this oscillatory system formally confirm the several previous studies made by numerical simulations. Moreover, our analysis makes it possible to propose an automatic investigation of the respective impact of per and tim on the circadian cycle.

CONCLUSIONS

A new hybrid technique for an automatic formal analysis of biological systems is developed with a special emphasis on their oscillatory behaviors. It allows the use of incomplete and empirical biological data.

摘要

背景

对动态生物系统进行建模通常是一项艰巨的任务,因为此类模型的先验未知参数并非总能由实验直接给出。尽管缺乏实验定量知识,但人们可以将动态生物系统视为:(i)生物化合物浓度的综合演化趋势(增加或减少),以及:(ii)时间特征,例如两个浓度峰值之间的延迟(即其中一个组分完成增加(相应地,减少)阶段并开始减少(相应地,增加)阶段的时间)。

结果

我们在此提出一种遵循此类生物学假设的新型混合建模框架。这种混合方法同时处理系统的定性结构和定量结构。从理论角度来看,时间规范表示为延迟参数之间 的等式或不等式约束,而定性规范表示为组分浓度峰值的有序模式。使用这个新的混合框架,可以从不完整的实验数据中获得生物系统的时间规范。该模型可以由混合模型检查器(例如Phaver)进行处理,它能够对延迟参数给出一些新的约束(例如,给定转变的延迟恰好在基因产物浓度的后一个峰值之后5小时)。此外,通过对先前结果使用约束求解器,有可能获得与给定规范一致的参数设置集。这种建模方法对于模拟诸如在果蝇昼夜节律周期中观察到的振荡生物行为特别准确。关于这个振荡系统参数所取得的结果正式证实了之前通过数值模拟进行的几项研究。此外,我们的分析使得能够对per和tim对昼夜节律周期的各自影响进行自动研究。

结论

开发了一种用于生物系统自动形式分析的新型混合技术,特别强调其振荡行为。它允许使用不完整的经验性生物学数据。

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