• DocumentCode
    1989273
  • Title

    Development of a massively-parallel, biological circuit simulator

  • Author

    Schiek, Richard L. ; May, Elebeoba E.

  • Author_Institution
    Computational Sci. & Computational Biol., Sandia Nat. Labs., Albuquerque, NM, USA
  • fYear
    2003
  • fDate
    11-14 Aug. 2003
  • Firstpage
    620
  • Lastpage
    622
  • Abstract
    Genetic expression and control pathways can be successfully modeled as electrical circuits. Given the vast quantity of genomic data, very large and complex genetic circuits can be constructed. To tackle such problems, the massively-parallel, electronic circuit simulator, Xyce, is being adapted to address biological problems. Unique to this biocircuit simulator is the ability to simulate not just one or a set of genetic circuits in a cell, but many cells and their internal circuits interacting through a common environment. Currently, electric circuit analogs for common biological and chemical machinery have been created. Using such analogs, one can construct expression, regulation and reaction networks. Individual species can be connected to other networks or cells via nondiffusive or diffusive channels (i.e. regions where species diffusion limits mass transport). Within any cell, a hierarchy of networks may exist operating at different time-scales to represent different aspects of cellular processes. Though under development, this simulator can model interesting biological and chemical systems. Prokaryotic genetic and metabolic regulatory circuits have been constructed and their interactions simulated for Escherichia coli´s tryptophan biosynthesis pathway. Additionally, groups of cells each containing an internal reaction network and communicating via a diffusion limited environment can produce periodic concentration waves. Thus, this biological circuit simulator has the potential to explore large, complex systems and environmentally coupled problems.
  • Keywords
    biochemistry; biodiffusion; biotechnology; cellular biophysics; circuit simulation; genetics; microorganisms; molecular biophysics; E. coli; Escherichia coli tryptophan biosynthesis pathway; Xyce; cellular process; chemical machinery; diffusive channels; electrical circuits; electronic circuit simulator; genetic expression; massively-parallel biological circuit simulator; metabolic regulatory circuit; modelling; nondiffusive channel; pathway control; prokaryotic genetic circuit; reaction networks; time-scales; Amino acids; Bioinformatics; Biological system modeling; Cellular networks; Chemicals; Circuit simulation; Electronic circuits; Genetics; Genomics; Machinery;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Bioinformatics Conference, 2003. CSB 2003. Proceedings of the 2003 IEEE
  • Print_ISBN
    0-7695-2000-6
  • Type

    conf

  • DOI
    10.1109/CSB.2003.1227426
  • Filename
    1227426