• DocumentCode
    1533624
  • Title

    Inhomogeneity of action potential waveshape assists frequency entrainment of cardiac pacemaker cells

  • Author

    Cloherty, Shaun L. ; Lovell, Nigel H. ; Celler, Branko G. ; Dokos, Socrates

  • Author_Institution
    Graduate Sch. of Biomed. Eng., New South Wales Univ., Sydney, NSW, Australia
  • Volume
    48
  • Issue
    10
  • fYear
    2001
  • Firstpage
    1108
  • Lastpage
    1115
  • Abstract
    In this paper, we have employed ionic models of sinoatrial node cells to investigate the synchronization of a pair of coupled cardiac pacemaker cells from central and peripheral regions of the sinoatrial node. The free-running cycle length of the cell models was perturbed using two independent techniques and the minimum coupling conductance required to achieve frequency entrainment was used to assess the relative ease with which various cell pairs achieve entrainment. The factors effecting entrainment were further investigated using single-cell models paced with an artificial biphasic coupling current. Our simulation results suggest that dissimilar cell types, those with largely different upstroke velocities entrain more easily, that is, they require less coupling conductance to achieve 1:1 frequency entrainment. We therefore propose that regional variation in action-potential waveshape within the sinoatrial node assists frequency synchronization in vivo.
  • Keywords
    bioelectric potentials; biomembrane transport; cardiology; physiological models; synchronisation; action potential waveshape inhomogeneity; artificial biphasic coupling current; calcium currents; cardiac pacemaker cells; central regions; coupled cells synchronization; dissimilar cell types; free-running cycle length; frequency entrainment; ion currents; ionic models; minimum coupling conductance; peripheral regions; single-cell models; sinoatrial node cells; synchronization in vivo; Australia Council; Biomedical engineering; Frequency synchronization; Heart; Helium; In vivo; Laboratories; Mathematical model; Microelectrodes; Pacemakers; Action Potentials; Computer Simulation; Gap Junctions; Ions; Mathematical Computing; Models, Cardiovascular; Signal Processing, Computer-Assisted; Sinoatrial Node;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/10.951513
  • Filename
    951513