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Updated: Aug 7, 2026

Voltage-Dependent Potassium Current Recording on H9c2 Cardiomyocytes via the Whole-Cell Patch-Clamp Technique
Published on: November 11, 2022
The cardiac hERG/IKr potassium channel as pharmacological target: structure, function, regulation, and clinical
1Department of Cardiology, Medical University Hospital Heidelberg, Im Neuenheimer Feld 410, D-69120 Heidelberg, Germany.
Insights
Human ether-a-go-go-related gene (hERG) potassium channels are vital for heart repolarization. Understanding hERG channel function and regulation offers new strategies for preventing and treating cardiac disorders caused by hERG dysfunction.
Area of Science:
- Cardiovascular Pharmacology
- Molecular Cardiology
- Ion Channel Physiology
Background:
- Human ether-a-go-go-related gene (hERG) potassium channels (hERG) are essential for cardiac action potential repolarization.
- hERG dysfunction, from genetic defects or drug interactions, causes Long QT Syndrome, increasing arrhythmia and sudden death risk.
- Drug-induced hERG blockade has led to market withdrawals, highlighting the need for better drug safety evaluations.
Purpose of the Study:
- To explore the molecular mechanisms underlying hERG channel inhibition and its clinical implications.
- To review recent findings on hERG mutations causing Short QT Syndrome.
- To discuss novel therapeutic strategies targeting hERG channel function for repolarization disorders.
Main Methods:
- Review of existing literature on hERG channel function, inhibition, and regulation.
- Analysis of studies investigating drug-channel interactions at the molecular level.
- Examination of genetic studies linking hERG mutations to cardiac syndromes.
Main Results:
- Detailed insights into the molecular basis of hERG current block, including drug binding sites and state-dependency.
- Identification of hERG mutations leading to increased channel activity and Short QT Syndrome.
- Emerging understanding of adrenergic regulation and potential therapeutic interventions for hERG-related disorders.
Conclusions:
- A deeper comprehension of hERG channel physiology and pathophysiology is crucial for cardiovascular safety.
- Understanding hERG mechanisms aids in designing safer drugs and developing novel antiarrhythmic therapies.
- Targeting hERG channel regulation offers promising avenues for managing life-threatening cardiac repolarization abnormalities.
Abstract:
Human ether-a-go-go-related gene (hERG) potassium channels conduct the rapid component of the delayed rectifier potassium current, IKr, which is crucial for repolarization of cardiac action potentials. Moderate hERG blockade may produce a beneficial class III antiarrhythmic effect. In contrast, a reduction in hERG currents due to either genetic defects or adverse drug effects can lead to hereditary or acquired long QT syndromes characterized by action potential prolongation, lengthening of the QT interval on the surface ECG, and an increased risk for "torsade de pointes" arrhythmias and sudden death. This undesirable side effect of non-antiarrhythmic compounds has prompted the withdrawal of several blockbuster drugs from the market. Studies on mechanisms of hERG channel inhibition provide significant insights into the molecular factors that determine state-, voltage-, and use-dependency of hERG current block. In addition, crucial properties of the high-affinity drug binding site in hERG and its interaction with drug molecules have been identified, providing the basis for more refined approaches in drug design, safety pharmacology and in silico modeling. Recently, mutations in hERG have been shown to cause current increase and hereditary short QT syndrome with a high risk for life-threatening arrhythmias. Finally, the discovery of adrenergic mechanisms of hERG channel regulation as well as the development of strategies to enhance hERG currents and to modify intracellular hERG protein processing may provide novel antiarrhythmic options in repolarization disorders. In conclusion, the increasing understanding of hERG channel function and molecular mechanisms of hERG current regulation could improve prevention and treatment of hERG-associated cardiac repolarization disorders.
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