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酶促反应的模块化速率定律:热力学、弹性和实施。

Modular rate laws for enzymatic reactions: thermodynamics, elasticities and implementation.

机构信息

Institut für Biologie, Theoretische Biophysik, Humboldt-Universität zu Berlin, Berlin, Germany.

出版信息

Bioinformatics. 2010 Jun 15;26(12):1528-34. doi: 10.1093/bioinformatics/btq141. Epub 2010 Apr 12.

Abstract

MOTIVATION

Standard rate laws are a key requisite for systematically turning metabolic networks into kinetic models. They should provide simple, general and biochemically plausible formulae for reaction velocities and reaction elasticities. At the same time, they need to respect thermodynamic relations between the kinetic constants and the metabolic fluxes and concentrations.

RESULTS

We present a family of reversible rate laws for reactions with arbitrary stoichiometries and various types of regulation, including mass-action, Michaelis-Menten and uni-uni reversible Hill kinetics as special cases. With a thermodynamically safe parameterization of these rate laws, parameter sets obtained by model fitting, sampling or optimization are guaranteed to lead to consistent chemical equilibrium states. A reformulation using saturation values yields simple formulae for rates and elasticities, which can be easily adjusted to the given stationary flux distributions. Furthermore, this formulation highlights the role of chemical potential differences as thermodynamic driving forces. We compare the modular rate laws to the thermodynamic-kinetic modelling formalism and discuss a simplified rate law in which the reaction rate directly depends on the reaction affinity. For automatic handling of modular rate laws, we propose a standard syntax and semantic annotations for the Systems Biology Markup Language.

AVAILABILITY

An online tool for inserting the rate laws into SBML models is freely available at www.semanticsbml.org.

SUPPLEMENTARY INFORMATION

Supplementary data are available at Bioinformatics online.

摘要

动机

标准速率法则是将代谢网络系统地转化为动力学模型的关键要求。它们应该为反应速度和反应弹性提供简单、通用且具有生物化学合理性的公式。同时,它们需要尊重动力学常数与代谢通量和浓度之间的热力学关系。

结果

我们提出了一系列具有任意化学计量和各种调节类型(包括质量作用、米氏-门登霍夫和单-单可逆 Hill 动力学)的可逆反应速率法则。通过对这些速率法则进行热力学安全参数化,模型拟合、采样或优化得到的参数集将保证导致一致的化学平衡状态。使用饱和度值的重新表述为速率和弹性提供了简单的公式,这些公式可以轻松地调整到给定的固定通量分布。此外,这种表述突出了化学势差作为热力学驱动力的作用。我们将模块化速率法则与热力学-动力学建模形式进行了比较,并讨论了一种简化的速率法则,其中反应速率直接取决于反应亲和力。为了自动处理模块化速率法则,我们为系统生物学标记语言提出了一种标准语法和语义注释。

可用性

可将这些速率法则插入 SBML 模型的在线工具可在 www.semanticsbml.org 上免费获得。

补充信息

补充数据可在“生物信息学在线”中获得。

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