• DocumentCode
    1276807
  • Title

    Multiscale FEM Modeling of Vascular Tone: From Membrane Currents to Vessel Mechanics

  • Author

    Kapela, Adam ; Tsoukias, Nikolaos Michael

  • Author_Institution
    Dept. of Biomed. Eng., Florida Int. Univ., Miami, FL, USA
  • Volume
    58
  • Issue
    12
  • fYear
    2011
  • Firstpage
    3456
  • Lastpage
    3459
  • Abstract
    Regulation of vascular tone is a complex process that remains poorly understood. Here, we present our recent efforts for the development of physiologically realistic models of arterial segments for the analysis of vasoreactivity in health and disease. Multiscale modeling integrates intracellular and cell membrane components into whole-cell models of calcium and membrane potential dynamics. Single-cell models of vascular cells are combined into a multicellular model of the vascular wall, and vessel wall biomechanics are integrated with calcium dynamics in the smooth muscle layer. At each scale, continuum models using finite element method can account for spatial heterogeneity in calcium signaling and for nonuniform deformations of a vessel segment. The outlined approach can be used to investigate cellular mechanisms underlying altered vasoreactivity in hypertension.
  • Keywords
    biomembranes; blood vessels; cellular biophysics; finite element analysis; haemodynamics; medical disorders; physiological models; altered vasoreactivity; arterial segments; calcium potential dynamics; cell membrane components; cellular mechanisms; continuum models; disease; finite element method; health; hypertension; intracellular components; membrane currents; membrane potential dynamics; multicellular model; multiscale FEM modeling; physiologically realistic models; smooth muscle layer; spatial heterogeneity; vascular cells; vascular tone; vascular wall; vessel mechanics; vessel segment; vessel wall biomechanics; whole-cell models; Biological system modeling; Biomembranes; Equations; Mathematical model; Strain; Stress; Strontium; Calcium oscillations; microcirculation; nonlinear mechanics; vasoconstriction; Animals; Cell Membrane; Endothelial Cells; Finite Element Analysis; Microcirculation; Models, Cardiovascular; Nonlinear Dynamics; Patch-Clamp Techniques; Rats; Rats, Inbred SHR; Vasoconstriction;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/TBME.2011.2162513
  • Filename
    5958580