Modulation of voltage-dependent K + channel activity by the muscarinic receptor antagonist solifenacin in native coronary arterial smooth muscle cells

Several muscarinic receptor antagonists have been reported to modulate vascular voltage-dependent K + (Kv) channels; however, the electrophysiological effects of solifenacin on these channels have not been fully characterized.We used the whole-cell patch-clamp technique to examine the effects of solifenacin on Kv currents in rabbit coronary arterial smooth muscle cells.Solifenacin suppressed arterial Kv currents in a concentration-dependent manner, with half-maximal inhibitory concentration (IC 50 ) of 14.59 ± 4.78 μM and a Hill coefficient of 0.84 ± 0.15.Although 30 μM solifenacin did not significantly affect steady-state activation, it produced a pronounced leftward shift in the steady-state inactivation curve.These findings imply that solifenacin inhibits Kv channels through interaction with the inactivation gating machinery.Consistent with this interpretation, solifenacin displayed use (state)-dependent inhibition: repetitive stimulation at 1 Hz progressively reduced current amplitude, and the recovery time constant from inactivation was significantly prolonged.To determine the Kv subtypes involved, subtype-selective inhibitors were applied.The inhibitory effect of solifenacin was not significantly modified by the Kv2.1 inhibitor stromatoxin-1 or the Kv7 inhibitor linopirdine.By contrast, pretreatment with the Kv1.5 inhibitor DPO-1 partially attenuated inhibition of peak currents but had minimal effect on steady-state inhibition.These results indicate that solifenacin targets multiple Shaker-related (Kv1.x)channel subtypes, with Kv1.5 making a substantial contribution to the observed current suppression.Solifenacin inhibits arterial Kv channels in a concentration-and use (inactivated state)-dependent manner by modulating inactivation gating, predominantly involving the Kv1.5 subtype.

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Publication Details

Journal
Korean Journal of Physiology and Pharmacology
Published
2026-09-14
DOI
https://doi.org/10.4196/kjpp.26.211
Primary Topic
Ion channel regulation and function
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article
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article

Modulation of voltage-dependent K + channel activity by the muscarinic receptor antagonist solifenacin in native coronary arterial smooth muscle cells

Hongzoo Park, Se Jin Lee, Sooa Lee, Jin Ryeol An et al.
Korean Journal of Physiology and Pharmacology
Ion channel regulation and function
article

Modulation of voltage-dependent K + channel activity by the muscarinic receptor antagonist solifenacin in native coronary arterial smooth muscle cells

Hongzoo Park, Se Jin Lee, Sooa Lee, Jin Ryeol An, Seokhun Jeong, Wanjoo Chun, Sunghun Na, Won Sun Park, SeungJoo Kim, Hye Ryung Kim, Daeun Shin, Jin-Hee Han, Eun-Taek Han
article en

Abstract

Several muscarinic receptor antagonists have been reported to modulate vascular voltage-dependent K + (Kv) channels; however, the electrophysiological effects of solifenacin on these channels have not been fully characterized.We used the whole-cell patch-clamp technique to examine the effects of solifenacin on Kv currents in rabbit coronary arterial smooth muscle cells.Solifenacin suppressed arterial Kv currents in a concentration-dependent manner, with half-maximal inhibitory concentration (IC 50 ) of 14.59 ± 4.78 μM and a Hill coefficient of 0.84 ± 0.15.Although 30 μM solifenacin did not significantly affect steady-state activation, it produced a pronounced leftward shift in the steady-state inactivation curve.These findings imply that solifenacin inhibits Kv channels through interaction with the inactivation gating machinery.Consistent with this interpretation, solifenacin displayed use (state)-dependent inhibition: repetitive stimulation at 1 Hz progressively reduced current amplitude, and the recovery time constant from inactivation was significantly prolonged.To determine the Kv subtypes involved, subtype-selective inhibitors were applied.The inhibitory effect of solifenacin was not significantly modified by the Kv2.1 inhibitor stromatoxin-1 or the Kv7 inhibitor linopirdine.By contrast, pretreatment with the Kv1.5 inhibitor DPO-1 partially attenuated inhibition of peak currents but had minimal effect on steady-state inhibition.These results indicate that solifenacin targets multiple Shaker-related (Kv1.x)channel subtypes, with Kv1.5 making a substantial contribution to the observed current suppression.Solifenacin inhibits arterial Kv channels in a concentration-and use (inactivated state)-dependent manner by modulating inactivation gating, predominantly involving the Kv1.5 subtype.

Korean Journal of Physiology and Pharmacology
Kangwon National University (KR), Dongguk University (KR), Kangwon National University Hospital (KR)
Openalex Percentile: Top 18%
Ion channel regulation and function
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