• DocumentCode
    909206
  • Title

    Model Reduction Using Piecewise-Linear Approximations Preserves Dynamic Properties of the Carbon Starvation Response in Escherichia coli

  • Author

    Ropers, Delphine ; Baldazzi, Valentina ; De Jong, Hidde

  • Author_Institution
    INRIA Grenoble - Rhone-Alpes, St. Ismier, France
  • Volume
    8
  • Issue
    1
  • fYear
    2011
  • Firstpage
    166
  • Lastpage
    181
  • Abstract
    The adaptation of the bacterium Escherichia coli to carbon starvation is controlled by a large network of biochemical reactions involving genes, mRNAs, proteins, and signalling molecules. The dynamics of these networks is difficult to analyze, notably due to a lack of quantitative information on parameter values. To overcome these limitations, model reduction approaches based on quasi-steady-state (QSS) and piecewise-linear (PL) approximations have been proposed, resulting in models that are easier to handle mathematically and computationally. These approximations are not supposed to affect the capability of the model to account for essential dynamical properties of the system, but the validity of this assumption has not been systematically tested. In this paper, we carry out such a study by evaluating a large and complex PL model of the carbon starvation response in E. coli using an ensemble approach. The results show that, in comparison with conventional nonlinear models, the PL approximations generally preserve the dynamics of the carbon starvation response network, although with some deviations concerning notably the quantitative precision of the model predictions. This encourages the application of PL models to the qualitative analysis of bacterial regulatory networks, in situations where the reference time scale is that of protein synthesis and degradation.
  • Keywords
    biochemistry; bioinformatics; carbon; genetics; microorganisms; proteins; Escherichia Coli; bacterial regulatory network; biochemical reaction; carbon starvation response; gene; mRNA; model reduction; piecewise linear approximation; proteins; Degradation; Information analysis; Mathematical model; Microorganisms; Network synthesis; Piecewise linear techniques; Predictive models; Proteins; Reduced order systems; System testing; Bacterial regulatory networks; Escherichia coli; model reduction; ordinary differential equations; piecewise-linear differential equations; quasi-steady-state approximation.; stress response; Algorithms; Carbon; Escherichia coli; Escherichia coli Proteins; Gene Regulatory Networks; Linear Models; Metabolic Networks and Pathways; Models, Biological; RNA, Bacterial; Signal Transduction; Stress, Physiological; 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.2009.49
  • Filename
    4967568