• DocumentCode
    1166660
  • Title

    Model Reduction of Multiscale Chemical Langevin Equations: A Numerical Case Study

  • Author

    Sotiropoulos, Vassilios ; Contou-Carrere, Marie-Nathalie ; Daoutidis, Prodromos ; Kaznessis, Yiannis N.

  • Author_Institution
    Dept. of Chem. Eng. & Mater. Sci., Univ. of Minnesota, Minneapolis, MN, USA
  • Volume
    6
  • Issue
    3
  • fYear
    2009
  • Firstpage
    470
  • Lastpage
    482
  • Abstract
    Two very important characteristics of biological reaction networks need to be considered carefully when modeling these systems. First, models must account for the inherent probabilistic nature of systems far from the thermodynamic limit. Often, biological systems cannot be modeled with traditional continuous-deterministic models. Second, models must take into consideration the disparate spectrum of time scales observed in biological phenomena, such as slow transcription events and fast dimerization reactions. In the last decade, significant efforts have been expended on the development of stochastic chemical kinetics models to capture the dynamics of biomolecular systems, and on the development of robust multiscale algorithms, able to handle stiffness. In this paper, the focus is on the dynamics of reaction sets governed by stiff chemical Langevin equations, i.e., stiff stochastic differential equations. These are particularly challenging systems to model, requiring prohibitively small integration step sizes. We describe and illustrate the application of a semianalytical reduction framework for chemical Langevin equations that results in significant gains in computational cost.
  • Keywords
    biochemistry; differential equations; reaction kinetics; stochastic processes; biological reaction networks; biomolecular system dynamics; continuous-deterministic model; fast dimerization reaction; inherent probabilistic nature; multiscale chemical Langevin equation; slow transcription events; stiff stochastic differential equation; stochastic chemical kinetics models; Model reduction; chemical Langevin equations (CLEs); multiscale models; stiff biomolecular systems.; stochastic chemical kinetics; Algorithms; Bacteria; Cataract; L-Iditol 2-Dehydrogenase; Markov Chains; Models, Biological; Models, Chemical; Systems Biology;
  • fLanguage
    English
  • Journal_Title
    Computational Biology and Bioinformatics, IEEE/ACM Transactions on
  • Publisher
    ieee
  • ISSN
    1545-5963
  • Type

    jour

  • DOI
    10.1109/TCBB.2009.23
  • Filename
    4785453