• DocumentCode
    1036641
  • Title

    A spatiotemporal, patient individualized simulation model of solid tumor response to chemotherapy in vivo: the paradigm of glioblastoma multiforme treated by temozolomide

  • Author

    Stamatakos, G.S. ; Antipas, V.P. ; Uzunoglu, N.K.

  • Author_Institution
    Sch. of Electr. & Comput. Eng., Athens Nat. Tech. Univ.
  • Volume
    53
  • Issue
    8
  • fYear
    2006
  • Firstpage
    1467
  • Lastpage
    1477
  • Abstract
    A novel four-dimensional, patient-specific Monte Carlo simulation model of solid tumor response to chemotherapeutic treatment in vivo is presented. The special case of glioblastoma multiforme treated by temozolomide is addressed as a simulation paradigm. Nevertheless, a considerable number of the involved algorithms are generally applicable. The model is based on the patient\´s imaging, histopathologic and genetic data. For a given drug administration schedule lying within acceptable toxicity boundaries, the concentration of the prodrug and its metabolites within the tumor is calculated as a function of time based on the drug pharamacokinetics. A discretization mesh is superimposed upon the anatomical region of interest and within each geometrical cell of the mesh the most prominent biological "laws" (cell cycling, necrosis, apoptosis, mechanical restrictions, etc.) are applied. The biological cell fates are predicted based on the drug pharmacodynamics. The outcome of the simulation is a prediction of the spatiotemporal activity of the entire tumor and is virtual reality visualized. A good qualitative agreement of the model\´s predictions with clinical experience supports the applicability of the approach. The proposed model primarily aims at providing a platform for performing patient individualized in silico experiments as a means of chemotherapeutic treatment optimization
  • Keywords
    Monte Carlo methods; cellular biophysics; drugs; mesh generation; patient treatment; physiological models; spatiotemporal phenomena; tumours; apoptosis; cell cycling; chemotherapy; discretization mesh; drug pharamacokinetics; drug pharmacodynamics; four-dimensional patient-specific Monte Carlo simulation model; glioblastoma multiforme; mechanical restrictions; necrosis; solid tumor response; spatiotemporal patient individualized simulation model; temozolomide; Biological system modeling; Cells (biology); Drugs; Genetics; In vivo; Medical treatment; Neoplasms; Predictive models; Solid modeling; Spatiotemporal phenomena; Cancer; Monte Carlo; Temodal ™; Temodar ™; chemotherapy; chemotherapy optimization; glioblastoma multiforme; in silico oncology; neovasculature; patient individualized optimization; simulation model; temozolomide; tumor growth; Antineoplastic Agents, Alkylating; Cell Proliferation; Cell Survival; Computer Simulation; Dacarbazine; Drug Therapy; Drug Therapy, Computer-Assisted; Glioblastoma; Humans; Models, Biological; Treatment Outcome;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/TBME.2006.873761
  • Filename
    1658141