Related Experiment Video
Updated: Aug 16, 2026

Cell Dissociation from the Tongue Epithelium and Mesenchyme/Connective Tissue of Embryonic-Day 12.5 and 8-Week-Old Mice
Published on: January 21, 2021
Mechanisms underlying atrial-selective block of sodium channels by Wenxin Keli: Experimental and theoretical analysis
Dan Hu1, Hector Barajas-Martínez1, Alexander Burashnikov2
1Masonic Medical Research Laboratory, Utica, NY, United States.
Insights
Wenxin Keli selectively inhibits the cardiac sodium channel (INa) in atrial cells by targeting the inactivated state. This atrial-selective INa block contributes to the safe and effective management of atrial fibrillation.
Area of Science:
- Cardiovascular Pharmacology
- Electrophysiology
- Computational Biology
Background:
- Atrial-selective inhibition of cardiac sodium channel current (INa) is crucial for managing atrial fibrillation.
- Wenxin Keli is a traditional Chinese medicine investigated for its potential antiarrhythmic properties.
Purpose of the Study:
- To elucidate the electrophysiological basis for Wenxin Keli's atrial-selective action.
- To investigate the interaction of Wenxin Keli with cardiac sodium channels.
Main Methods:
- Whole-cell patch-clamp recordings of INa in canine atrial and ventricular myocytes.
- Development of a Markovian model to simulate Wenxin Keli's interaction with sodium channel states.
- Computer modeling of action potentials to assess effects on maximum upstroke velocity (Vmax).
Main Results:
- Wenxin Keli exhibits rapid binding to the inactivated state and rapid dissociation from the closed state of the sodium channel.
- The drug demonstrated significantly greater inhibition of Vmax in atrial cells compared to ventricular cells at rapid stimulation rates.
- Computational modeling predicted enhanced Vmax inhibition in atrial preparations.
Conclusions:
- Atrial selectivity of Wenxin Keli is attributed to differences in steady-state inactivation, resting membrane potential, and diastolic intervals between atrial and ventricular cells.
- These properties explain Wenxin Keli's efficacy and safety in suppressing atrial fibrillation.
- The study provides mechanistic insights into the antiarrhythmic action of Wenxin Keli.
Introduction:
Atrial-selective inhibition of cardiac sodium channel current (INa) and INa-dependent parameters has been shown to contribute to the safe and effective management of atrial fibrillation. The present study was designed to examine the basis for the atrial-selective actions of Wenxin Keli.
Methods:
Whole cell INa was recorded at room temperature in canine atrial and ventricular myocytes. Trains of 40 pulses were elicited over a range of pulse durations and interpulse intervals to determine tonic and use-dependent block. A Markovian model for INa that incorporates interaction of Wenxin Keli with different states of the channel was developed to examine the basis for atrial selectivity of the drug.
Results:
Our data indicate that Wenxin Keli does not bind significantly to either closed or open states of the sodium channel, but binds very rapidly to the inactivated state of the channel and dissociates rapidly from the closed state. Action potentials recorded from atrial and ventricular preparations in the presence of 5g/L Wenxin Keli were introduced into the computer model in current clamp mode to simulate the effects on maximum upstroke velocity (Vmax). The model predicted much greater inhibition of Vmax in atrial vs. ventricular cells at rapid stimulation rates.
Conclusion:
Our findings suggest that atrial selectivity of Wenxin Keli to block INa is due to more negative steady-state inactivation, less negative resting membrane potential, and shorter diastolic intervals in atrial vs. ventricular cells at rapid activation rates. These actions of Wenxin Keli account for its relatively safe and effective suppression of atrial fibrillation.
Related Concept Videos
The Role of Ion Channels in Neuronal Computation
Sometimes a single EPSP is strong enough to induce an action potential in the postsynaptic neuron. However, multiple presynaptic inputs must often create EPSPs around the same time for the postsynaptic neuron to be sufficiently depolarized to fire an action potential.
Voltage-gated Ion Channels
Generally, all voltage-gated ion channels have a 'voltage-sensing domain' that spans the lipid bilayer. The charged residues in the sensor move in response to the membrane potential changes that open the channel allowing ions movement. There are several types of...
Depolarizing Blockers: Mechanism of Action
Succinylcholine is the most commonly used depolarizing blocker. Chemically, it constitutes two molecules of acetylcholine joined together by an acetate methyl group. They act on the receptors in the same way as acetylcholine. Because succinylcholine...
Antihypertensive Drugs: Action of Calcium Channel Blockers
Antiarrhythmic Drugs: Class I Agents as Sodium Channel Blockers
Class 1A Antiarrhythmic Drugs: These drugs work by moderately blocking sodium channels,...
Antiarrhythmic Drugs: Class III Agents as Potassium Channel Blockers

