首页> 外文会议>European signal processing conference;EUSIPCO 2009 >ESTIMATION OF STOCHASTIC RATE CONSTANTS AND TRACKING OF SPECIES IN BIOCHEMICAL NETWORKS WITH SECOND-ORDER REACTIONS
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ESTIMATION OF STOCHASTIC RATE CONSTANTS AND TRACKING OF SPECIES IN BIOCHEMICAL NETWORKS WITH SECOND-ORDER REACTIONS

机译:具有二阶反应的生化网络中随机速率常数的估计和物种的追踪

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In a recent work we applied particle filtering to simple biochemical networks composed of first-order reactions with the objective of estimating unknowns in the studied system that include stochastic rate constants and species with time-evolving numbers of molecules. In this paper we extend that effort to biochemical networks which have second-order reactions. We model the unknown stochastic rate constants by Gamma distributions and the number of reactions in a given time interval as Poisson random variables. The observations are nonlinear functions of some of the species in the system, and they are distorted by noises with known distributions. With these assumptions, we develop a particle filter that tracks the number of molecules of all the species in the network with time and estimates the unknown stochastic rate constants. We demonstrate the method on a reaction of importance in studying Ras regulation.
机译:在最近的工作中,我们将粒子过滤应用于由一阶反应组成的简单生化网络,目的是估计所研究系统中的未知数,其中包括随机速率常数和具有随时间演变的分子数目的物种。在本文中,我们将努力扩展到具有二级反应的生化网络。我们通过Gamma分布和给定时间间隔内的反应数作为Poisson随机变量对未知的随机速率常数进行建模。观测值是系统中某些物种的非线性函数,并且会因已知分布的噪声而失真。基于这些假设,我们开发了一种粒子过滤器,该过滤器可以随时间跟踪网络中所有物种的分子数量,并估算未知的随机速率常数。我们证明了该方法对研究Ras调控具有重要意义。

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