Stability of N-type inactivation and the coupling between N-type and C-type inactivation in the Aplysia Kv1 channel.

IF 2.9 4区 医学 Q2 PHYSIOLOGY Pflugers Archiv : European journal of physiology Pub Date : 2024-10-01 Epub Date: 2024-07-15 DOI:10.1007/s00424-024-02982-5
Tokunari Iwamuro, Kazuki Itohara, Yasuo Furukawa
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Abstract

The voltage-dependent potassium channels (Kv channels) show several different types of inactivation. N-type inactivation is a fast inactivating mechanism, which is essentially an open pore blockade by the amino-terminal structure of the channel itself or the auxiliary subunit. There are several functionally discriminatable slow inactivation (C-type, P-type, U-type), the mechanism of which is supposed to include rearrangement of the pore region. In some Kv1 channels, the actual inactivation is brought about by coupling of N-type and C-type inactivation (N-C coupling). In the present study, we focused on the N-C coupling of the Aplysia Kv1 channel (AKv1). AKv1 shows a robust N-type inactivation, but its recovery is almost thoroughly from C-type inactivated state owing to the efficient N-C coupling. In the I8Q mutant of AKv1, we found that the inactivation as well as its recovery showed two kinetic components apparently correspond to N-type and C-type inactivation. Also, the cumulative inactivation which depends on N-type mechanism in AKv1 was hindered in I8Q, suggesting that N-type inactivation of I8Q is less stable. We also found that Zn 2 + specifically accelerates C-type inactivation of AKv1 and that H382 in the pore turret is involved in the Zn 2 + binding. Because the region around Ile 8 (I8) in AKv1 has been suggested to be involved in the pre-block binding of the amino-terminal structure, our results strengthen a hypothesis that the stability of the pre-block state is important for stable N-type inactivation as well as the N-C coupling in the Kv1 channel inactivation.

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plysia Kv1 通道中 N 型失活的稳定性以及 N 型和 C 型失活之间的耦合。
电压依赖性钾通道(Kv 通道)有几种不同的失活类型。N 型失活是一种快速失活机制,其本质是通道本身或辅助亚基的氨基端结构对开放孔的阻断。有几种在功能上可区分的慢速失活(C 型、P 型、U 型),其机制应该包括孔区的重新排列。在某些 Kv1 通道中,实际的失活是由 N 型和 C 型失活耦合(N-C 耦合)引起的。在本研究中,我们重点研究了plysia Kv1 通道(AKv1)的 N-C 耦合。AKv1 表现出强烈的 N 型失活,但由于高效的 N-C 耦合,它几乎可以从 C 型失活状态完全恢复。在 AKv1 的 I8Q 突变体中,我们发现其失活和恢复表现出明显对应于 N 型和 C 型失活的两种动力学成分。此外,AKv1 中依赖于 N 型机制的累积失活在 I8Q 中受到阻碍,这表明 I8Q 的 N 型失活不太稳定。我们还发现,Zn 2 + 能特异性地加速 AKv1 的 C 型失活,孔转塔中的 H382 参与了 Zn 2 + 的结合。由于 AKv1 中 Ile 8(I8)周围的区域被认为参与了氨基末端结构的前阻断结合,我们的结果加强了一种假设,即前阻断状态的稳定性对于稳定的 N 型失活以及 Kv1 通道失活中的 N-C 耦合非常重要。
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来源期刊
CiteScore
8.80
自引率
2.20%
发文量
121
审稿时长
4-8 weeks
期刊介绍: Pflügers Archiv European Journal of Physiology publishes those results of original research that are seen as advancing the physiological sciences, especially those providing mechanistic insights into physiological functions at the molecular and cellular level, and clearly conveying a physiological message. Submissions are encouraged that deal with the evaluation of molecular and cellular mechanisms of disease, ideally resulting in translational research. Purely descriptive papers covering applied physiology or clinical papers will be excluded. Papers on methodological topics will be considered if they contribute to the development of novel tools for further investigation of (patho)physiological mechanisms.
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Correction to: Persistent sodium currents in neurons: potential mechanisms and pharmacological blockers. Alteration of Piezo1 signaling in type 2 diabetic mice: focus on endothelium and BKCa channel. Persistent sodium currents in neurons: potential mechanisms and pharmacological blockers. Stability of N-type inactivation and the coupling between N-type and C-type inactivation in the Aplysia Kv1 channel. Decoding influences of indoor temperature and light on neural activity: entropy analysis of electroencephalographic signals.
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