• DocumentCode
    1821292
  • Title

    Action Potential Alternans in LQT3 Syndrome: A Simulation Study

  • Author

    Alonso-Atienza, F. ; Requena-Carrion, J. ; Rojo-Alvarez, J.L. ; Berenfeld, O. ; Jalife, J.

  • Author_Institution
    Univ. Rey Juan Carlos, Madrid
  • fYear
    2007
  • fDate
    22-26 Aug. 2007
  • Firstpage
    640
  • Lastpage
    643
  • Abstract
    The long QT syndrome type-3 (LQT3) is an inherited cardiac disorder caused by mutations in the sodium channel gene SCN5A. LQT3 has been associated with ventricular arrhythmias and sudden cardiac death, specially at low heart rates. Based on computer simulations and experimental investigations, analysis of the morphology of the action potential (AP) has shown that it undergoes early after depolarizations (EADs) and spontaneous discharges, which are thought to be the trigger for reentry like-activity. However, dynamic characteristics of cardiac tissue are also important factors of arrhythmia mechanisms. In this work, we propose a dynamical analysis of the LQT3 at cellular level. We use a detailed Markovian model of the DeltaKPQ mutation, which is associated with LQT3, and we study beat-to-beat AP Duration (APD) variations by using a long-term stimulation protocol. Compared to wild-type (WT) cells, DeltaKPQ mutant cells are found to develop APD alternans over a narrow range of stimulation frequencies. Moreover, the interval of frequency dependence of APD alternans is related to the degree of severity of the EADs present in the AP. In conclusion, dynamical analysis of paced cells is a useful approach to understand the mechanisms of rate dependent arrhythmias.
  • Keywords
    Markov processes; bioelectric potentials; biomembrane transport; cardiology; diseases; genetics; physiological models; DeltaKPQ mutant cells; Markovian model; action potential alternans; beat-to-beat action potential Duration; cellular level; depolarization; dynamical analysis; inherited cardiac disorder; long QT syndrome type-3; long-term stimulation protocol; paced cells; rate dependent arrhythmias; sodium channel gene SCN5A; spontaneous discharges; sudden cardiac death; ventricular arrhythmias; wild-type cells; Cardiac tissue; Computational modeling; Computer simulation; Delay; Frequency; Genetic mutations; Heart rate; In vitro; Morphology; Protocols; Action Potentials; Genetic Diseases, Inborn; Heart; Humans; Long QT Syndrome; Models, Cardiovascular; Muscle Proteins; Mutation; NAV1.5 Voltage-Gated Sodium Channel; Sodium Channels;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Engineering in Medicine and Biology Society, 2007. EMBS 2007. 29th Annual International Conference of the IEEE
  • Conference_Location
    Lyon
  • ISSN
    1557-170X
  • Print_ISBN
    978-1-4244-0787-3
  • Type

    conf

  • DOI
    10.1109/IEMBS.2007.4352371
  • Filename
    4352371