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一种生化开关的逆分岔方法:从剂量反应曲线推断参数。

A method for inverse bifurcation of biochemical switches: inferring parameters from dose response curves.

作者信息

Otero-Muras Irene, Yordanov Pencho, Stelling Joerg

机构信息

BioProcess Engineering Group, IIM-CSIC (Spanish Council for Scientific Research), Eduardo Cabello 6, Vigo, 36208, Spain.

Department of Biosystems Science and Engineering, Swiss Federal Institute of Technology (ETH Zurich), Universitatstrasse 19, 8092, Zurich, Switzerland.

出版信息

BMC Syst Biol. 2014 Nov 20;8:114. doi: 10.1186/s12918-014-0114-2.

Abstract

BACKGROUND

Within cells, stimuli are transduced into cell responses by complex networks of biochemical reactions. In many cell decision processes the underlying networks behave as bistable switches, converting graded stimuli or inputs into all or none cell responses. Observing how systems respond to different perturbations, insight can be gained into the underlying molecular mechanisms by developing mathematical models. Emergent properties of systems, like bistability, can be exploited to this purpose. One of the main challenges in modeling intracellular processes, from signaling pathways to gene regulatory networks, is to deal with high structural and parametric uncertainty, due to the complexity of the systems and the difficulty to obtain experimental measurements. Formal methods that exploit structural properties of networks for parameter estimation can help to overcome these problems.

RESULTS

We here propose a novel method to infer the kinetic parameters of bistable biochemical network models. Bistable systems typically show hysteretic dose response curves, in which the so called bifurcation points can be located experimentally. We exploit the fact that, at the bifurcation points, a condition for multistationarity derived in the context of the Chemical Reaction Network Theory must be fulfilled. Chemical Reaction Network Theory has attracted attention from the (systems) biology community since it connects the structure of biochemical reaction networks to qualitative properties of the corresponding model of ordinary differential equations. The inverse bifurcation method developed here allows determining the parameters that produce the expected behavior of the dose response curves and, in particular, the observed location of the bifurcation points given by experimental data.

CONCLUSIONS

Our inverse bifurcation method exploits inherent structural properties of bistable switches in order to estimate kinetic parameters of bistable biochemical networks, opening a promising route for developments in Chemical Reaction Network Theory towards kinetic model identification.

摘要

背景

在细胞内,刺激通过复杂的生化反应网络转化为细胞反应。在许多细胞决策过程中,潜在的网络表现为双稳态开关,将分级刺激或输入转化为全或无的细胞反应。通过观察系统对不同扰动的反应,利用数学模型可以深入了解潜在的分子机制。系统的涌现特性,如双稳态,可用于此目的。从信号通路到基因调控网络,对细胞内过程进行建模的主要挑战之一是应对由于系统复杂性和难以获得实验测量结果而导致的高度结构和参数不确定性。利用网络结构特性进行参数估计的形式化方法有助于克服这些问题。

结果

我们在此提出一种推断双稳态生化网络模型动力学参数的新方法。双稳态系统通常显示滞后剂量反应曲线,其中所谓的分岔点可以通过实验确定。我们利用这样一个事实,即在分岔点,必须满足在化学反应网络理论背景下推导的多稳态条件。化学反应网络理论自将生化反应网络的结构与相应常微分方程模型的定性特性联系起来以来,已引起(系统)生物学界的关注。这里开发的逆分岔方法允许确定产生剂量反应曲线预期行为的参数,特别是由实验数据给出的分岔点的观测位置。

结论

我们的逆分岔方法利用双稳态开关的固有结构特性来估计双稳态生化网络的动力学参数,为化学反应网络理论在动力学模型识别方面的发展开辟了一条有前途的途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/183e/4263113/e5db78c4a5e4/12918_2014_114_Fig1_HTML.jpg

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