• DocumentCode
    1450714
  • Title

    Modulation of Spiral-Wave Dynamics and Spontaneous Activity in a Fibroblast/Myocyte Heterocellular Tissue–-A Computational Study

  • Author

    Greisas, Ariel ; Zlochiver, Sharon

  • Author_Institution
    Dept. of Biomed. Eng., Tel Aviv Univ., Tel Aviv, Israel
  • Volume
    59
  • Issue
    5
  • fYear
    2012
  • fDate
    5/1/2012 12:00:00 AM
  • Firstpage
    1398
  • Lastpage
    1407
  • Abstract
    Fibroblasts make for the most common nonmyocyte cells in the human heart and are known to play a role in structural remodeling caused by aging and various pathological states, which can eventually lead to cardiac arrhythmias and fibrillation. Gap junction formed between fibroblasts and myocytes have been recently described and were shown to alter the cardiac electrical parameters, such as action potential duration and conduction velocity, in various manners. In this study, we employed computational modeling to examine the effects of fibroblast-myocyte coupling and ratio on automaticity and electrical wave conduction during reentrant activity, with specific emphasis on dynamic phenomena and stability. Our results show that fibroblast density and coupling impact wave frequency in a biphasic way, first increasing wave frequency and then decreasing it. This can be explained by the dual role of the fibroblast cell as a current sink or a current source, depending on the coupled myocytes intracellular potential. We have also demonstrated that wave stability as manifested by the spiral-wave tip velocity and reentrant activity lifespan depends on fibroblast-myocyte coupling and ratio in a complex way. Finally, our study describes the required conditions in which spontaneous activity can occur, as a result of the fibroblasts depolarizing the myocytes´ resting potential sufficiently to induce rhythmic pulses without any stimulation applied.
  • Keywords
    bioelectric potentials; biological tissues; cardiology; cellular biophysics; action potential; aging; cardiac arrhythmias; cardiac electrical parameters; conduction velocity; coupled myocytes intracellular potential; dynamic phenomena; electrical wave conduction; fibrillation; fibroblast density; fibroblast-myocyte coupling; fibroblast/myocyte heterocellular tissue; human heart; nonmyocyte cells; pathological states; reentrant activity lifespan; rhythmic pulses; spiral-wave dynamics; spiral-wave tip velocity; spontaneous activity; structural remodeling; wave frequency; Computational modeling; Couplings; Electric potential; Fibroblasts; Mathematical model; Spirals; Stability analysis; Cardiac fibroblasts; computer model; spiral waves; spontaneous activity; stability; Computer Simulation; Electrophysiologic Techniques, Cardiac; Fibroblasts; Heart Conduction System; Heart Ventricles; Humans; Models, Cardiovascular; Myocytes, Cardiac; Ventricular Function;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/TBME.2012.2188291
  • Filename
    6153353