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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.
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.
Abstract:
Background and Objectives: Enhanced beat-to-beat variability of ventricular repolarization (BVR) has been linked to arrhythmias and sudden cardiac death. Recent experimental studies on human left ventricular epicardial electrograms have shown that BVR closely interacts with low-frequency (LF) oscillations of activation recovery interval during sympathetic provocation. In this work human ventricular computational cell models are developed to reproduce the experimentally observed interactions between BVR and its LF oscillations, to assess underlying mechanisms and to establish a relationship with arrhythmic risk. Materials and Methods: A set of human ventricular action potential (AP) models covering a range of experimental electrophysiological characteristics was constructed. These models incorporated stochasticity in major ionic currents as well as descriptions of β-adrenergic stimulation and mechanical effects to investigate the AP response to enhanced sympathetic activity. Statistical methods based on Automatic Relevance Determination and Canonical Correlation Analysis were developed to unravel individual and common factors contributing to BVR and LF patterning of APD in response to sympathetic provocation. Results: Simulated results reproduced experimental evidences on the interactions between BVR and LF oscillations of AP duration (APD), with replication of the high inter-individual variability observed in both phenomena. ICaL, IKr and IK1 currents were identified as common ionic modulators of the inter-individual differences in BVR and LF oscillatory behavior and were shown to be crucial in determining susceptibility to arrhythmogenic events. Conclusions: The calibrated family of human ventricular cell models proposed in this study allows reproducing experimentally reported interactions between BVR and LF oscillations of APD. Ionic factors involving ICaL, IKr and IK1 currents are found to underlie correlated increments in both phenomena in response to sympathetic provocation. A link to arrhythmogenesis is established for concomitantly elevated levels of BVR and its LF oscillations.
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