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氯非铵及其叔胺类似物LY97241对人EAG1和人ERG1钾通道的抑制作用。

Inhibition of hEAG1 and hERG1 potassium channels by clofilium and its tertiary analogue LY97241.

作者信息

Gessner Guido, Heinemann Stefan H

机构信息

Research Unit Molecular and Cellular Biophysics, Medical Faculty of the Friedrich Schiller University-Jena, Drackendorfer Strasse 1, D-07747 Jena, Germany.

出版信息

Br J Pharmacol. 2003 Jan;138(1):161-71. doi: 10.1038/sj.bjp.0705025.

Abstract

1 We investigated the inhibition of hEAG1 potassium channels, expressed in mammalian cells and Xenopus oocytes, by several blockers that have previously been reported to be blockers of hERG1 channels. 2 In the whole-cell mode of mammalian cells, LY97241 was shown to be a potent inhibitor of both hEAG1 and hERG1 channels (IC(50) of 4.9 and 2.2 nM, respectively). Clofilium, E4031, and haloperidol apparently inhibited hEAG1 channels with lower potency than hERG1 channels, but they cannot be considered hERG1-specific. 3 The block of hEAG1 channels by LY97241 and clofilium was time-, use-, and voltage-dependent, best explained by an open-channel block mechanism. 4 Both drugs apparently bind from the intracellular side of the membrane at (a) specific site(s) within the central cavity of the channel pore. They can be trapped by closure of the activation gate. 5 In inside-out patches from Xenopus oocytes, hEAG1 block by clofilium was stronger than by LY97241 (IC(50) of 0.8 and 1.9 nM, respectively). In addition, hEAG1 block by clofilium was much faster than by LY97241 although there was no difference in the voltage dependence of the on-rate of block. 6 Physico-chemical differences of clofilium and the weak base LY97241 determine the access of the drugs to the binding site and thereby the influence of the recording mode on the apparent block potencies. This phenomenon must be considered when assessing the inhibitory action of drugs on ion channels.

摘要
  1. 我们研究了几种先前报道为hERG1通道阻滞剂的药物对在哺乳动物细胞和非洲爪蟾卵母细胞中表达的hEAG1钾通道的抑制作用。2. 在哺乳动物细胞的全细胞模式下,LY97241被证明是hEAG1和hERG1通道的有效抑制剂(IC50分别为4.9和2.2 nM)。氯非铵、E4031和氟哌啶醇对hEAG1通道的抑制作用明显低于对hERG1通道的抑制作用,但不能认为它们是hERG1特异性的。3. LY97241和氯非铵对hEAG1通道的阻断具有时间、使用和电压依赖性,最能通过开放通道阻断机制来解释。4. 两种药物显然都从膜的胞内侧在通道孔中央腔内的特定位点结合。它们可被激活门的关闭所捕获。5. 在非洲爪蟾卵母细胞的内向外膜片中,氯非铵对hEAG1的阻断作用强于LY97241(IC50分别为0.8和1.9 nM)。此外,氯非铵对hEAG1的阻断速度比LY97241快得多,尽管阻断开启速率的电压依赖性没有差异。6. 氯非铵和弱碱LY97241的物理化学差异决定了药物进入结合位点的情况,从而决定了记录模式对表观阻断效力的影响。在评估药物对离子通道的抑制作用时必须考虑这一现象。

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