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1
Block of the lymphocyte K(+) channel mKv1.3 by the phenylalkylamine verapamil: kinetic aspects of block and disruption of accumulation of block by a single point mutation.苯烷基胺维拉帕米对淋巴细胞钾通道mKv1.3的阻断:阻断的动力学方面以及单点突变对阻断积累的破坏
Br J Pharmacol. 2000 Dec;131(7):1275-84. doi: 10.1038/sj.bjp.0703723.
2
Evidence for an internal phenylalkylamine action on the voltage-gated potassium channel Kv1.3.关于苯烷基胺对电压门控钾通道Kv1.3存在内在作用的证据。
Mol Pharmacol. 1996 Dec;50(6):1625-34.
3
The effect of deep pore mutations on the action of phenylalkylamines on the Kv1.3 potassium channel.深孔突变对苯烷基胺作用于Kv1.3钾通道的影响。
Br J Pharmacol. 1999 Jul;127(5):1065-74. doi: 10.1038/sj.bjp.0702599.
4
Mechanism of verapamil block of a neuronal delayed rectifier K channel: active form of the blocker and location of its binding domain.维拉帕米阻断神经元延迟整流钾通道的机制:阻滞剂的活性形式及其结合域的位置。
Br J Pharmacol. 1999 Apr;126(8):1699-706. doi: 10.1038/sj.bjp.0702477.
5
Mechanism of K+ channel block by verapamil and related compounds in rat alveolar epithelial cells.维拉帕米及相关化合物对大鼠肺泡上皮细胞钾通道的阻断机制
J Gen Physiol. 1995 Oct;106(4):745-79. doi: 10.1085/jgp.106.4.745.
6
Kinetic Aspects of Verapamil Binding (On-Rate) on Wild-Type and Six hKv1.3 Mutant Channels.维拉帕米与野生型及六种hKv1.3突变通道结合的动力学方面(结合速率)
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State-dependent verapamil block of the cloned human Ca(v)3.1 T-type Ca(2+) channel.克隆的人类Ca(v)3.1 T型钙通道的状态依赖性维拉帕米阻断
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8
Distinct effects of mutations in transmembrane segment IVS6 on block of L-type calcium channels by structurally similar phenylalkylamines.跨膜片段IVS6中的突变对结构相似的苯烷基胺阻断L型钙通道的不同影响。
Mol Pharmacol. 1996 Nov;50(5):1388-400.
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Dihydropyridine Ca2+ channel antagonists and agonists block Kv4.2, Kv4.3 and Kv1.4 K+ channels expressed in HEK293 cells.二氢吡啶类钙离子通道拮抗剂和激动剂可阻断在人胚肾293细胞(HEK293细胞)中表达的Kv4.2、Kv4.3和Kv1.4钾离子通道。
Br J Pharmacol. 2003 Jun;139(3):533-44. doi: 10.1038/sj.bjp.0705281.
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Effect of K+ and Rb+ on the action of verapamil on a voltage-gated K+ channel, hKv1.3: implications for a second open state?钾离子和铷离子对维拉帕米作用于电压门控钾通道hKv1.3的影响:对第二个开放状态有何启示?
Br J Pharmacol. 2009 Jul;157(5):757-68. doi: 10.1111/j.1476-5381.2009.00202.x. Epub 2009 Apr 9.

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Lovastatin blocks Kv1.3 channel in human T cells: a new mechanism to explain its immunomodulatory properties.洛伐他汀阻断人T细胞中的Kv1.3通道:一种解释其免疫调节特性的新机制。
Sci Rep. 2015 Nov 30;5:17381. doi: 10.1038/srep17381.
2
Loureirin B, an essential component of Sanguis Draxonis, inhibits Kv1.3 channel and suppresses cytokine release from Jurkat T cells.血竭素 B 是血竭的主要成分之一,它可以抑制 Kv1.3 通道,并抑制 Jurkat T 细胞细胞因子的释放。
Cell Biosci. 2014 Dec 12;4:78. doi: 10.1186/2045-3701-4-78. eCollection 2014.
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Physiological significance of delayed rectifier K(+) channels (Kv1.3) expressed in T lymphocytes and their pathological significance in chronic kidney disease.T淋巴细胞中表达的延迟整流钾通道(Kv1.3)的生理意义及其在慢性肾脏病中的病理意义。
J Physiol Sci. 2015 Jan;65(1):25-35. doi: 10.1007/s12576-014-0331-x. Epub 2014 Aug 6.
4
Potent suppression of Kv1.3 potassium channel and IL-2 secretion by diphenyl phosphine oxide-1 in human T cells.二苯膦氧化物-1 对人 T 细胞 Kv1.3 钾通道和 IL-2 分泌的强效抑制作用。
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5
Effect of K+ and Rb+ on the action of verapamil on a voltage-gated K+ channel, hKv1.3: implications for a second open state?钾离子和铷离子对维拉帕米作用于电压门控钾通道hKv1.3的影响:对第二个开放状态有何启示?
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6
Ion channel clustering enhances weak electric field detection by neutrophils: apparent roles of SKF96365-sensitive cation channels and myeloperoxidase trafficking in cellular responses.离子通道聚集增强中性粒细胞对弱电场的检测:SKF96365敏感阳离子通道和髓过氧化物酶转运在细胞反应中的明显作用。
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7
The voltage-gated potassium channel Kv1.3 regulates peripheral insulin sensitivity.电压门控钾通道Kv1.3调节外周胰岛素敏感性。
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8
Molecular proximity of Kv1.3 voltage-gated potassium channels and beta(1)-integrins on the plasma membrane of melanoma cells: effects of cell adherence and channel blockers.黑色素瘤细胞质膜上Kv1.3电压门控钾通道与β(1)整合素的分子接近性:细胞黏附和通道阻滞剂的作用
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本文引用的文献

1
Time course of TEA(+)-induced anomalous rectification in squid giant axons.茶(+)诱导的鱿鱼巨大轴突异常整流的时间进程。
J Gen Physiol. 1966 Nov;50(2):491-503. doi: 10.1085/jgp.50.2.491.
2
The effect of deep pore mutations on the action of phenylalkylamines on the Kv1.3 potassium channel.深孔突变对苯烷基胺作用于Kv1.3钾通道的影响。
Br J Pharmacol. 1999 Jul;127(5):1065-74. doi: 10.1038/sj.bjp.0702599.
3
Mechanism of verapamil block of a neuronal delayed rectifier K channel: active form of the blocker and location of its binding domain.维拉帕米阻断神经元延迟整流钾通道的机制:阻滞剂的活性形式及其结合域的位置。
Br J Pharmacol. 1999 Apr;126(8):1699-706. doi: 10.1038/sj.bjp.0702477.
4
Ca2+ channel block and inactivation: common molecular determinants.钙离子通道阻断与失活:共同的分子决定因素
Trends Pharmacol Sci. 1998 Nov;19(11):439-43. doi: 10.1016/s0165-6147(98)01258-9.
5
Verapamil block of the delayed rectifier K current in chick embryo dorsal root ganglion neurons.维拉帕米对鸡胚背根神经节神经元延迟整流钾电流的阻断作用
Pflugers Arch. 1998 Mar;435(4):503-10. doi: 10.1007/s004240050545.
6
Ion channels in the immune system as targets for immunosuppression.免疫系统中的离子通道作为免疫抑制的靶点。
Curr Opin Biotechnol. 1997 Dec;8(6):749-56. doi: 10.1016/s0958-1669(97)80130-9.
7
Molecular mechanism of use-dependent calcium channel block by phenylalkylamines: role of inactivation.苯烷基胺对使用依赖性钙通道的阻断作用的分子机制:失活的作用。
Proc Natl Acad Sci U S A. 1997 Nov 25;94(24):13323-8. doi: 10.1073/pnas.94.24.13323.
8
Molecular determinants of high affinity phenylalkylamine block of L-type calcium channels in transmembrane segment IIIS6 and the pore region of the alpha1 subunit.跨膜区IIIS6及α1亚基孔区中L型钙通道高亲和力苯烷基胺阻断的分子决定因素。
J Biol Chem. 1997 Jul 25;272(30):18759-65. doi: 10.1074/jbc.272.30.18759.
9
Blockade of the voltage-gated potassium channel Kv1.3 inhibits immune responses in vivo.电压门控钾通道Kv1.3的阻断在体内抑制免疫反应。
J Immunol. 1997 Jun 1;158(11):5120-8.
10
Kinetics and state-dependent effects of verapamil on cardiac L-type calcium channels.维拉帕米对心脏L型钙通道的动力学及状态依赖性效应
Naunyn Schmiedebergs Arch Pharmacol. 1997 Jan;355(1):79-86. doi: 10.1007/pl00004921.

苯烷基胺维拉帕米对淋巴细胞钾通道mKv1.3的阻断:阻断的动力学方面以及单点突变对阻断积累的破坏

Block of the lymphocyte K(+) channel mKv1.3 by the phenylalkylamine verapamil: kinetic aspects of block and disruption of accumulation of block by a single point mutation.

作者信息

Röbe R J, Grissmer S

机构信息

Department of Applied Physiology, University of Ulm, Albert-Einstein-Allee 11, 89081 Ulm, Germany.

出版信息

Br J Pharmacol. 2000 Dec;131(7):1275-84. doi: 10.1038/sj.bjp.0703723.

DOI:10.1038/sj.bjp.0703723
PMID:11090098
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1572478/
Abstract
  1. Phenylalkylamines (PAA) usually known for their action on L-type Ca(2+) channels potently block the C-type inactivating lymphocyte Kv1.3 channel resulting in inhibition of activation of T lymphocytes. In order to design PAAs blocking Kv1.3 specifically over L-type Ca(2+) channels, we investigated the state-dependent manner of mKv1. 3 block by the PAA verapamil. 2. Verapamil seems to have access to the open state (OB) and, once bound to the channel, the channel-verapamil complex is absorbed into a slowly recovering state. This state was proposed to be the inactivated blocked state (IB). Here we present a quantitative description of the transition into this state and provide evidence for the IB state through experiments with an inactivation lacking mutant channel. Since the inactivated state cannot be reached in this case the IB state cannot be reached either. 3. We show that the transition OB-->IB is accelerated by verapamil most likely through a mechanism involving the reduction of [K(+)] at an inactivation modulating low affinity binding site for K(+) at the outer vestibule. 4. Measurements of the voltage-dependence of the off-rate constants for verapamil suggest that verapamil can reach the channel in its neutral form and might get partially protonated while bound. Thus only those verapamil molecules that are protonated can more easily dissociate at hyperpolarizing voltages. 5. Since open block kinetics were shown to be similar for wild type mKv1.3 and the H404T mutant mKv1.3 channel, and since the block of the H404T mutant channels by verapamil could be described exactly by a simple three-state open block model, the mutant channel could serve as a screening channel to determine open block affinities of new PAA derivatives in high through-put experiments.
摘要
  1. 苯烷基胺(PAA)通常因其对L型Ca(2+)通道的作用而闻名,它能有效阻断C型失活的淋巴细胞Kv1.3通道,从而抑制T淋巴细胞的激活。为了设计能特异性阻断Kv1.3而非L型Ca(2+)通道的PAA,我们研究了PAA维拉帕米对mKv1.3的状态依赖性阻断方式。2. 维拉帕米似乎能够进入开放状态(OB),一旦与通道结合,通道 - 维拉帕米复合物会进入一个缓慢恢复的状态。这个状态被认为是失活阻断状态(IB)。在此,我们对向该状态的转变进行了定量描述,并通过对缺乏失活功能的突变通道进行实验,为IB状态提供了证据。由于在这种情况下无法达到失活状态,所以也无法达到IB状态。3.我们表明,维拉帕米最有可能通过一种机制加速OB向IB的转变,该机制涉及在外膜前庭处一个对K(+)具有失活调节作用的低亲和力结合位点处降低[K(+)]浓度。4. 对维拉帕米解离速率常数的电压依赖性测量表明,维拉帕米能够以中性形式到达通道,并且在结合时可能会部分质子化。因此,只有那些质子化的维拉帕米分子在超极化电压下更容易解离。5. 由于野生型mKv1.3和H404T突变型mKv1.3通道的开放阻断动力学相似,并且由于维拉帕米对H404T突变通道的阻断可以通过一个简单的三态开放阻断模型精确描述,所以该突变通道可以作为筛选通道,在高通量实验中确定新的PAA衍生物的开放阻断亲和力。