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Updated: May 22, 2026

Reconstitution of a Kv Channel into Lipid Membranes for Structural and Functional Studies
Published on: July 13, 2013
Effects of dapoxetine on cloned Kv1.5 channels expressed in CHO cells
Imju Jeong1, Shin Hee Yoon, Sang June Hahn
1Department of Physiology, Medical Research Center, College of Medicine, The Catholic University of Korea, 505 Banpo-dong, Socho-gu, Seoul 137-701, South Korea.
Abstract:
The effects of dapoxetine were examined on cloned Kv1.5 channels stably expressed in Chinese hamster ovary cells using the whole-cell patch clamp technique. Dapoxetine decreased the peak amplitude of Kv1.5 currents and accelerated the decay rate of current inactivation in a concentration-dependent manner with an IC ( 50 ) of 11.6 μM. Kinetic analysis of the time-dependent effects of dapoxetine on Kv1.5 current decay yielded the apparent association (k (+1 )) and dissociation (k (-1 )) rate constants of 2.8 μM(-1) s(-1) and 34.2 s(-1), respectively. The theoretical K ( D ) value, derived by k (-1 )/k (+1 ), yielded 12.3 μM, which was reasonably similar to the IC ( 50 ) value obtained from the concentration-response curve. Dapoxetine decreased the tail current amplitude and slowed the deactivation process of Kv1.5, which resulted in a tail crossover phenomenon. The block by dapoxetine is voltage-dependent and steeply increased at potentials between -10 and +10 mV, which correspond to the voltage range of channel activation. At more depolarized potentials, a weaker voltage dependence was observed (δ=0.31). Dapoxetine had no effect on the steady-state activation of Kv1.5 but shifted the steady-state inactivation curves in a hyperpolarizing direction. Dapoxetine produced a use-dependent block of Kv1.5 at frequencies of 1 and 2 Hz and slowed the time course for recovery of inactivation. These effects were reversible after washout of the drug. Our results indicate that dapoxetine blocks Kv1.5 currents by interacting with the channel in both the open and inactivated states of the channel.
Insights
Dapoxetine concentration-dependently blocks Kv1.5 channels, affecting inactivation and deactivation. These reversible effects suggest dapoxetine interacts with open and inactivated Kv1.5 channel states.
Area of Science:
- Molecular Pharmacology
- Ion Channel Physiology
Background:
- Kv1.5 channels are crucial for cardiac repolarization.
- Modulation of Kv1.5 channel activity can impact cardiac electrophysiology.
Purpose of the Study:
- To investigate the effects of dapoxetine on cloned Kv1.5 channels.
- To characterize the mechanism of dapoxetine's interaction with Kv1.5 channels.
Main Methods:
- Whole-cell patch clamp technique on Chinese hamster ovary cells expressing Kv1.5.
- Concentration-response, kinetic, and voltage-dependence analyses were performed.
Main Results:
- Dapoxetine inhibited Kv1.5 currents in a concentration-dependent manner (IC50 = 11.6 μM).
- It accelerated inactivation, slowed deactivation, and caused a use-dependent block.
- Dapoxetine shifted steady-state inactivation curves hyperpolarizing and interacted with open/inactivated states.
Conclusions:
- Dapoxetine is a potent blocker of cloned Kv1.5 channels.
- The drug exhibits voltage-dependent and use-dependent block characteristics.
- Findings suggest dapoxetine's potential to modulate cardiac electrical activity via Kv1.5 channel interaction.
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