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J Gen Physiol. 2018 Aug 6;150(8):1059-1061. doi: 10.1085/jgp.201812068. Epub 2018 Jul 3.
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本文引用的文献

1
A forward genetic screen identifies chaperone CNX-1 as a conserved biogenesis regulator of K channels.正向遗传学筛选鉴定伴侣蛋白 CNX-1 为 K 通道生物发生的保守调控因子。
J Gen Physiol. 2018 Aug 6;150(8):1189-1201. doi: 10.1085/jgp.201812025. Epub 2018 Jun 25.
2
BKIP-1, an auxiliary subunit critical to SLO-1 function, inhibits SLO-2 potassium channel in vivo.BKIP-1 是 SLO-1 功能的关键辅助亚基,在体内抑制 SLO-2 钾通道。
Sci Rep. 2017 Dec 19;7(1):17843. doi: 10.1038/s41598-017-18052-z.
3
Behavioral Deficits Following Withdrawal from Chronic Ethanol Are Influenced by SLO Channel Function in .慢性乙醇戒断后的行为缺陷受SLO通道功能的影响 。 (原文结尾处的“in.”似乎不完整,你可以检查一下是否有遗漏信息,以便更准确地理解和翻译。)
Genetics. 2017 Jul;206(3):1445-1458. doi: 10.1534/genetics.116.193102. Epub 2017 May 25.
4
ERG-28 controls BK channel trafficking in the ER to regulate synaptic function and alcohol response in .ERG-28控制内质网中BK通道的转运,以调节……中的突触功能和酒精反应。
Elife. 2017 Feb 7;6:e24733. doi: 10.7554/eLife.24733.
5
Tetrameric Assembly of K Channels Requires ER-Located Chaperone Proteins.四聚体钾通道的形成需要内质网定位的伴侣蛋白。
Mol Cell. 2017 Jan 5;65(1):52-65. doi: 10.1016/j.molcel.2016.10.027. Epub 2016 Dec 1.
6
The role of the BK channel in ethanol response behaviors: evidence from model organism and human studies.BK 通道在乙醇反应行为中的作用:来自模式生物和人类研究的证据。
Front Physiol. 2014 Sep 9;5:346. doi: 10.3389/fphys.2014.00346. eCollection 2014.
7
Dystrobrevin controls neurotransmitter release and muscle Ca(2+) transients by localizing BK channels in Caenorhabditis elegans.肌联蛋白通过在秀丽隐杆线虫中定位 BK 通道来控制神经递质释放和肌肉 Ca(2+)瞬变。
J Neurosci. 2011 Nov 30;31(48):17338-47. doi: 10.1523/JNEUROSCI.3638-11.2011.
8
The dystrophin-associated protein complex maintains muscle excitability by regulating Ca(2+)-dependent K(+) (BK) channel localization.肌营养不良蛋白相关蛋白复合物通过调节钙依赖性钾 (BK) 通道定位来维持肌肉兴奋性。
J Biol Chem. 2011 Sep 23;286(38):33501-10. doi: 10.1074/jbc.M111.227678. Epub 2011 Jul 27.
9
A novel auxiliary subunit critical to BK channel function in Caenorhabditis elegans.一种在秀丽隐杆线虫中对 BK 通道功能至关重要的新型辅助亚基。
J Neurosci. 2010 Dec 8;30(49):16651-61. doi: 10.1523/JNEUROSCI.3211-10.2010.
10
An alpha-catulin homologue controls neuromuscular function through localization of the dystrophin complex and BK channels in Caenorhabditis elegans.一种 alpha-catulin 同源物通过定位肌营养不良复合物和 BK 通道控制秀丽隐杆线虫的神经肌肉功能。
PLoS Genet. 2010 Aug 26;6(8):e1001077. doi: 10.1371/journal.pgen.1001077.

钙网织蛋白被揭示为一种醚-α-go-go 伴侣,可使突变蠕虫恢复活力。

Calnexin revealed as an ether-a-go-go chaperone by getting mutant worms up and going.

机构信息

Institute for Neuroscience, Institute for Cellular and Molecular Biology, Center for Learning and Memory, Waggoner Center for Alcohol and Addiction Research, Department of Neuroscience, The University of Texas at Austin, Austin, TX

出版信息

J Gen Physiol. 2018 Aug 6;150(8):1059-1061. doi: 10.1085/jgp.201812068. Epub 2018 Jul 3.

DOI:10.1085/jgp.201812068
PMID:29970410
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6080892/
Abstract

The role of ion channels in cell excitability was first revealed in a series of voltage clamp experiments by Hodgkin and Huxley in the 1950s. However, it was not until the 1970s that patch-clamp recording ushered in a revolution that allowed physiologists to witness how ion channels flicker open and closed at angstrom scale and with microsecond resolution. The unexpectedly tight seal made by the patch pipette in the whole-cell configuration later allowed molecular biologists to suck up the insides of identified cells to unveil their unique molecular contents. By refining these techniques, researchers have scrutinized the surface and contents of excitable cells in detail over the past few decades. However, these powerful approaches do not discern which molecules are responsible for the dynamic control of the genesis, abundance, and subcellular localization of ion channels. In this dark territory, teams of unknown and poorly understood molecules guide specific ion channels through translation, folding, and modification, and then they shuttle them toward and away from distinct membrane domains via different subcellular routes. A central challenge in understanding these processes is the likelihood that these diverse regulatory molecules may be specific to ion channel subtypes, cell types, and circumstance. In work described in this issue, Bai et al. (2018. https://doi.org/10.1085/jgp.201812025) begin to shed light on the biogenesis of UNC-103, a K channel found in .

摘要

离子通道在细胞兴奋性中的作用最早是在 20 世纪 50 年代由 Hodgkin 和 Huxley 的一系列电压钳实验中揭示的。然而,直到 20 世纪 70 年代,膜片钳记录才迎来了一场革命,使生理学家能够观察到离子通道如何在埃尺度上以微秒分辨率闪烁开放和关闭。随后,全细胞构型中的膜片钳形成的出人意料的紧密密封,使分子生物学家能够吸取已鉴定细胞的内部,以揭示其独特的分子内容。通过改进这些技术,研究人员在过去几十年中详细研究了可兴奋细胞的表面和内容。然而,这些强大的方法并不能区分哪些分子负责离子通道的动态控制,包括其生成、丰度和亚细胞定位。在这个黑暗的领域中,一群未知且了解甚少的分子引导特定的离子通道进行翻译、折叠和修饰,然后通过不同的亚细胞途径将它们运送到特定的膜区域,并远离该区域。理解这些过程的一个核心挑战是,这些不同的调节分子可能是特定于离子通道亚型、细胞类型和环境的。在本期杂志中,Bai 等人(2018. https://doi.org/10.1085/jgp.201812025)开始揭示 UNC-103 的生物发生过程,UNC-103 是一种在 中发现的钾通道。