Department of Physiology, Institute of Bioscience and Biotechnology, BK21 plus Graduate Program, Kangwon National University College of Medicine, Hyoja-Dong, Chuncheon, 200-701, Korea.
Naunyn Schmiedebergs Arch Pharmacol. 2023 Nov;396(11):3149-3161. doi: 10.1007/s00210-023-02521-6. Epub 2023 May 11.
Ifenprodil has been known to reduce cardiac contractility and cerebral vasodilation by antagonizing α-adrenergic and N-methyl D-aspartate receptor-mediated intracellular signals. This study aimed to investigate the direct effect of ifenprodil on the human voltage-gated Kv1.5 channel (hKv1.5) by using a Xenopus oocyte expression system and a two-microelectrode voltage clamp technique. The amplitudes of hKv1.5 currents, including peak and steady state, were suppressed in a concentration-dependent manner (IC; 43.1 and 35.5 μM, respectively) after 6 min of ifenprodil treatment. However, these effects were ~ 80% reversed by washout, suggesting that ifenprodil directly inhibited the hKv1.5 independent of membrane receptors or intracellular signals. The inhibition rate of steady state showed voltage dependence, wherein the rates increased according to test voltage depolarization. Ifenprodil reduced the time constants of hKv1.5 inactivation but has higher effects on activation. hKv1.5 inhibition by ifenprodil showed use dependency because the drug more rapidly reduced the current at the higher activation frequencies, and subsequent reduction in frequency after high activation frequency caused a partial channel block relief. Therefore, ifenprodil directly blocked the hKv1.5 in an open state and accelerated the time course of the channel inactivation, which provided a biophysical mechanism for the hKv1.5 blocking effects of ifenprodil.
异氟烷通过拮抗α-肾上腺素能和 N-甲基-D-天冬氨酸受体介导的细胞内信号,已知可降低心肌收缩力和脑血管扩张。本研究旨在通过使用非洲爪蟾卵母细胞表达系统和双电极电压钳技术,研究异氟烷对人电压门控 Kv1.5 通道(hKv1.5)的直接作用。在 6 分钟的异氟烷处理后,hKv1.5 电流的幅度(包括峰值和稳态)以浓度依赖性方式被抑制(IC50 分别为 43.1 和 35.5 μM)。然而,这些作用在洗脱后有 ~ 80%被逆转,表明异氟烷直接抑制 hKv1.5,而不依赖于膜受体或细胞内信号。稳态抑制率表现出电压依赖性,其中随着测试电压去极化,速率增加。异氟烷降低了 hKv1.5 失活的时间常数,但对激活的影响更高。异氟烷对 hKv1.5 的抑制表现出使用依赖性,因为药物在较高的激活频率下更快地降低电流,而在高激活频率后降低频率会导致部分通道阻断缓解。因此,异氟烷直接阻断 hKv1.5 的开放状态并加速通道失活的时程,这为异氟烷对 hKv1.5 的阻断作用提供了一种生物物理机制。