Mechanisms Underlying Interactions Between Low-Frequency Oscillations and Beat-to-Beat Variability of Celullar

David Adolfo Sampedro-Puente1, Jesus Fernandez-Bes1, Bradley Porter2

  • 1BSICOS Group, I3A, IIS Aragón, University of Zaragoza, Zaragoza, Spain.

Frontiers in Physiology
|August 21, 2019
PubMed

Insights

Enhanced beat-to-beat variability of ventricular repolarization (BVR) and its low-frequency oscillations are linked to arrhythmias. Computational models reveal that ICaL, IKr, and IK1 currents influence BVR and oscillatory behavior, establishing a connection to arrhythmogenesis.

Area of Science:

  • Computational biology
  • Cardiac electrophysiology
  • Systems physiology

Background:

  • Enhanced beat-to-beat variability of ventricular repolarization (BVR) is associated with arrhythmias and sudden cardiac death.
  • Experimental studies show BVR interacts with low-frequency (LF) oscillations of activation recovery interval during sympathetic provocation.

Purpose of the Study:

  • Develop human ventricular computational cell models to reproduce BVR and LF oscillation interactions.
  • Assess underlying mechanisms of these interactions.
  • Establish a relationship between BVR, LF oscillations, and arrhythmic risk.

Main Methods:

  • Constructed human ventricular action potential (AP) models with stochastic ionic currents, β-adrenergic stimulation, and mechanical effects.
  • Applied statistical methods (Automatic Relevance Determination, Canonical Correlation Analysis) to analyze BVR and APD LF patterning.
  • Investigated AP response to enhanced sympathetic activity.

Main Results:

  • Successfully reproduced experimental findings on BVR and APD LF oscillation interactions, including inter-individual variability.
  • Identified ICaL, IKr, and IK1 currents as key modulators of BVR and LF oscillatory behavior.
  • Demonstrated the crucial role of these ionic currents in arrhythmogenic susceptibility.

Conclusions:

  • The developed human ventricular cell models accurately replicate experimentally observed interactions between BVR and APD LF oscillations.
  • Ionic factors (ICaL, IKr, IK1) underlie correlated increases in BVR and LF oscillations during sympathetic provocation.
  • Established a link between elevated BVR, LF oscillations, and arrhythmogenesis.

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