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In Silico Modeling and Validation of the Effect of Calcium-Activated Potassium Current on Ventricular Repolarization
Insights
Small conductance calcium-activated potassium (SK) channels play a role in heart failure. Inhibiting SK channels in failing ventricles may increase arrhythmia risk, highlighting their importance in cardiac remodeling.
Area of Science:
- Cardiovascular Physiology
- Computational Biology
- Molecular Cardiology
Background:
- The role of small conductance calcium-activated potassium (SK) channels in human ventricular myocytes is not fully understood.
- Upregulation of SK channels in pathological states may contribute to ventricular arrhythmias.
- In heart failure (HF), SK channel upregulation might be an adaptive response to shorten action potential duration (APD).
Purpose of the Study:
- To investigate the contribution of SK channels to ventricular repolarization in failing myocytes.
- To uncover the pathophysiological role of SK channels in human ventricular myocytes.
Main Methods:
- An in silico electrophysiological model of human ventricular failing myocytes was extended to include SK channel activity.
- Action potentials were simulated at various pacing frequencies to calibrate maximal SK current conductance (G$_{\rm {SK}}$).
- Simulations matched experimental data on AP duration changes induced by SK channel modulation.
Main Results:
- Optimal G$_{\rm {SK}}$ values were determined for different myocyte regions (mid-myocardial, endocardial, epicardial).
- Simulated SK channel block effects aligned with experimental findings.
- SK channel block in 1-D simulations prolonged QT interval and increased transmural dispersion of repolarization, suggesting increased arrhythmia risk in HF.
Conclusions:
- SK channels are crucial for characterizing HF-induced ventricular remodeling.
- Pharmacological SK channel inhibition may have adverse effects in failing ventricles.
- Further consideration of SK channel function is needed for improved HF management.
Objective:
The pathophysiological role of the small conductance calcium-activated potassium (SK) channels in human ventricular myocytes remains unclear. Experimental studies have reported upregulation of SK channels in pathological states, potentially contributing to ventricular repolarization. In heart failure (HF) patients, this upregulation could be an adaptive physiological response to shorten the action potential duration (APD) under conditions of reduced repolarization reserve. This work aimed to uncover the contribution of SK channels to ventricular repolarization in failing myocytes.
Methods:
We extended an in silico electrophysiological model of human ventricular failing myocytes by including SK channel activity. To calibrate the maximal SK current conductance (G$_{{SK}}$), we simulated action potentials (APs) at different pacing frequencies and matched the AP duration changes induced by SK channel inhibition or activation to different available experimental data from human failing ventricles for adjustment.
Results:
The optimal value obtained for G$_{{SK}}$ was 4.288 $\mu$S/$\mu$F in mid-myocardial cells, and 6.4 $\mu$S/$\mu$F for endocardial and epicardial cells. The output of the models was compared with independent experimental data for validation. 1-D simulations of a transmural ventricular fiber indicated that SK channel block may prolong the QT interval and increase the transmural dispersion of repolarization, potentially increasing the risk of arrhythmia in HF.
Conclusion:
Our results highlight the importance of considering the SK channels to improve the characterization of HF-induced ventricular remodeling. Simulations across various single-cell and 1-D scenarios suggest that pharmacological SK channel inhibition could lead to adverse effects in failing ventricles.
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