Dynamics of action potential head-tail interaction during reentry in cardiac tissue: Ionic mechanisms

Thomas J. Hund, Niels F. Otani, Yoram Rudy

Research output: Contribution to journalArticlepeer-review

17 Scopus citations

Abstract

In a sufficiently short reentry pathway, the excitation wave front (head) propagates into tissue that is partially refractory (tail) from the previous action potential (AP). We incorporate a detailed mathematical model of the ventricular myocyte into a one-dimensional closed pathway to investigate the effects of head-tail interaction and ion accumulation on the dynamics of reentry. The results were the following: 1) a high degree of head-tail interaction produces oscillations in several AP properties; 2) Ca2+-transient oscillations are in phase with AP duration oscillations and are often of greater magnitude; 3) as the wave front propagates around the pathway, AP properties undergo periodic spatial oscillations that produce complicated temporal oscillations at a single site; 4) depending on the degree of head-tail interaction, intracellular [Na+] accumulation during reentry either stabilizes or destabilizes reentry; and 5) elevated extracellular [K+] destabilizes reentry by prolonging the tail of postrepolarization refractoriness.

Original languageEnglish
Pages (from-to)H1869-H1879
JournalAmerican Journal of Physiology - Heart and Circulatory Physiology
Volume279
Issue number4 48-4
DOIs
StatePublished - 2000

Keywords

  • Alternans
  • Ion accumulation
  • Reentry
  • Restitution

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