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Updated: Apr 19, 2026

Voltage-Dependent Potassium Current Recording on H9c2 Cardiomyocytes via the Whole-Cell Patch-Clamp Technique
Published on: November 11, 2022
The potassium current carried by TREK-1 channels in rat cardiac ventricular muscle
Mandy Bodnár1, Günter Schlichthörl, Jürgen Daut
1Institute of Physiology and Pathophysiology, Marburg University, 35037, Marburg, Germany.
Abstract:
We studied the potassium current flowing through TREK-1 channels in rat cardiac ventricular myocytes. We separated the TREK-1 current from other current components by blocking most other channels with a blocker cocktail. We tried to inhibit the TREK-1 current by activating protein kinase A (PKA) with a mixture of forskolin and isobutyl-methylxanthine (IBMX). Activation of PKA blocked an outwardly rectifying current component at membrane potentials positive to -40 mV. At 37 °C, application of forskolin plus IBMX reduced the steady-state outward current measured at positive voltages by about 52 %. Application of the potassium channel blockers quinidine or tetrahexylammonium also reduced the steady-state outward current by about 50 %. Taken together, our results suggest that the increase in temperature from 22 to 37 °C increased the TREK-1 current by a factor of at least 5 and that the average density of the TREK-1 current in rat cardiomyocytes at 37 °C is about 1.5 pA/pF at +30 mV. The contribution of TREK-1 to the action potential was assessed by using a dynamic patch clamp technique. After subtraction of simulated TREK-1 currents, action potential duration at 50 or 90 % repolarisation was increased by about 12 %, indicating that TREK-1 may be functionally important in rat ventricular muscle. During sympathetic stimulation, inhibition of TREK-1 channels via PKA is expected to prolong the action potential primarily in subendocardial myocytes; this may decrease the transmural dispersion of repolarisation and thus may serve to prevent the occurrence of arrhythmias.
Insights
TREK-1 potassium channels in rat heart cells are temperature-sensitive, with currents increasing significantly at body temperature. Inhibiting TREK-1 prolongs action potential duration, potentially preventing heart arrhythmias.
Area of Science:
- Cardiology
- Ion Channel Physiology
- Molecular Cardiology
Background:
- TREK-1 channels are potassium channels found in cardiac myocytes.
- Their role in cardiac electrophysiology, particularly at physiological temperatures, requires further elucidation.
Purpose of the Study:
- To characterize the properties of TREK-1 currents in rat cardiac ventricular myocytes.
- To investigate the functional impact of TREK-1 on cardiac action potentials and its modulation by protein kinase A (PKA).
Main Methods:
- Utilized electrophysiological techniques including voltage clamp and dynamic patch clamp in rat ventricular myocytes.
- Employed a blocker cocktail to isolate TREK-1 currents.
- Investigated PKA-mediated inhibition using forskolin and IBMX.
Main Results:
- TREK-1 currents exhibited significant outward rectification and were markedly increased at 37 °C compared to 22 °C.
- PKA activation by forskolin/IBMX inhibited TREK-1 currents by approximately 52%.
- Dynamic patch clamp revealed that TREK-1 contributes to action potential duration, with its inhibition increasing duration by ~12%.
Conclusions:
- TREK-1 channels are temperature-sensitive and play a functional role in regulating cardiac action potential duration in rat ventricular myocytes.
- PKA-mediated inhibition of TREK-1 may prolong action potentials, potentially reducing arrhythmogenic repolarization dispersion during sympathetic stimulation.
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