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本文引用的文献

1
Expression and function of dipeptidyl-aminopeptidase-like protein 6 as a putative beta-subunit of human cardiac transient outward current encoded by Kv4.3.二肽基氨基肽酶样蛋白6作为由Kv4.3编码的人类心脏瞬时外向电流假定β亚基的表达及功能
J Physiol. 2005 Jun 15;565(Pt 3):751-6. doi: 10.1113/jphysiol.2005.087312. Epub 2005 May 12.
2
Transient outward potassium current, 'Ito', phenotypes in the mammalian left ventricle: underlying molecular, cellular and biophysical mechanisms.哺乳动物左心室中的瞬时外向钾电流“Ito”表型:潜在的分子、细胞和生物物理机制
J Physiol. 2005 Nov 15;569(Pt 1):7-39. doi: 10.1113/jphysiol.2005.086223. Epub 2005 Apr 14.
3
Molecular physiology and modulation of somatodendritic A-type potassium channels.树突状A 型钾通道的分子生理学与调节
Mol Cell Neurosci. 2004 Dec;27(4):343-69. doi: 10.1016/j.mcn.2004.06.011.
4
Structure and function of Kv4-family transient potassium channels.Kv4家族瞬时钾通道的结构与功能
Physiol Rev. 2004 Jul;84(3):803-33. doi: 10.1152/physrev.00039.2003.
5
Activation properties of Kv4.3 channels: time, voltage and [K+]o dependence.Kv4.3通道的激活特性:时间、电压和细胞外钾离子浓度依赖性
J Physiol. 2004 Jun 15;557(Pt 3):705-17. doi: 10.1113/jphysiol.2003.058578. Epub 2004 Mar 5.
6
Regulation of Kv4.3 voltage-dependent gating kinetics by KChIP2 isoforms.KChIP2亚型对Kv4.3电压依赖性门控动力学的调节
J Physiol. 2004 May 15;557(Pt 1):19-41. doi: 10.1113/jphysiol.2003.058172. Epub 2004 Jan 14.
7
N-type inactivation features of Kv4.2 channel gating.Kv4.2通道门控的N型失活特征。
Biophys J. 2004 Jan;86(1 Pt 1):210-23. doi: 10.1016/S0006-3495(04)74097-7.
8
Two arginines in the cytoplasmic C-terminal domain are essential for voltage-dependent regulation of A-type K+ current in the Kv4 channel subfamily.
J Biol Chem. 2004 Feb 13;279(7):5450-9. doi: 10.1074/jbc.M302034200. Epub 2003 Nov 26.
9
C-type inactivation involves a significant decrease in the intracellular aqueous pore volume of Kv1.4 K+ channels expressed in Xenopus oocytes.C型失活涉及非洲爪蟾卵母细胞中表达的Kv1.4钾离子通道的细胞内水相孔体积显著减小。
J Physiol. 2003 Jun 15;549(Pt 3):683-95. doi: 10.1113/jphysiol.2002.034660. Epub 2003 May 2.
10
A-type potassium currents in smooth muscle.平滑肌中的A型钾电流。
Am J Physiol Cell Physiol. 2003 Mar;284(3):C583-95. doi: 10.1152/ajpcell.00301.2002.

Kv4.3失活的时间和电压依赖性成分。

Time- and voltage-dependent components of Kv4.3 inactivation.

作者信息

Wang Shimin, Bondarenko Vladimir E, Qu Yu-jie, Bett Glenna C L, Morales Michael J, Rasmusson Randall L, Strauss Harold C

机构信息

Department of Physiology and Biophysics, University at Buffalo, The State University of New York, School of Medicine and Biomedical Sciences, Buffalo, NY, USA.

出版信息

Biophys J. 2005 Nov;89(5):3026-41. doi: 10.1529/biophysj.105.059378. Epub 2005 Aug 12.

DOI:10.1529/biophysj.105.059378
PMID:16100281
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1366800/
Abstract

Kv4.3 inactivation is a complex multiexponential process, which can occur from both closed and open states. The fast component of inactivation is modulated by the N-terminus, but the mechanisms mediating the other components of inactivation are controversial. We studied inactivation of Kv4.3 expressed in Xenopus laevis oocytes, using the two-electrode voltage-clamp technique. Inactivation during 2000 ms pulses at potentials positive to the activation threshold was described by three exponents (46 +/- 3, 152 +/- 13, and 930 +/- 50 ms at +50 mV, n = 7) whereas closed-state inactivation (at potentials below threshold) was described by two exponents (1079 +/- 119 and 3719 +/- 307 ms at -40 mV, n = 9). The fast component of open-state inactivation was dominant at potentials positive to -20 mV. Negative to -30 mV, the intermediate and slow components dominated inactivation. Inactivation properties were dependent on pulse duration. Recovery from inactivation was strongly dependent on voltage and pulse duration. We developed an 11-state Markov model of Kv4.3 gating that incorporated a direct transition from the open-inactivated state to the closed-inactivated state. Simulations with this model reproduced open- and closed-state inactivation, isochronal inactivation relationships, and reopening currents. Our data suggest that inactivation can proceed primarily from the open state and that multiple inactivation components can be identified.

摘要

Kv4.3失活是一个复杂的多指数过程,可发生于关闭态和开放态。失活的快速成分受N端调节,但介导其他失活成分的机制仍存在争议。我们使用双电极电压钳技术研究了非洲爪蟾卵母细胞中表达的Kv4.3的失活情况。在高于激活阈值的电位下施加2000毫秒脉冲时的失活情况由三个指数描述(在+50 mV时为46±3、152±13和930±50毫秒,n = 7),而关闭态失活(在低于阈值的电位下)由两个指数描述(在-40 mV时为1079±119和3719±307毫秒,n = 9)。开放态失活的快速成分在高于-20 mV的电位时占主导。在低于-30 mV时,中间和慢速成分主导失活。失活特性取决于脉冲持续时间。从失活状态恢复强烈依赖于电压和脉冲持续时间。我们开发了一个Kv4.3门控的11态马尔可夫模型,该模型纳入了从开放失活态到关闭失活态的直接转变。用该模型进行的模拟重现了开放态和关闭态失活、等时失活关系以及重新开放电流。我们的数据表明,失活主要可从开放态进行,并且可以识别出多个失活成分。