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Opening of an alternative ion permeation pathway in a nociceptor TRP channel.伤害感受性 TRP 通道中另类离子渗透途径的开启。
Nat Chem Biol. 2014 Mar;10(3):188-95. doi: 10.1038/nchembio.1428. Epub 2014 Jan 5.
2
TRPV1 structures in distinct conformations reveal activation mechanisms.不同构象的 TRPV1 结构揭示了其激活机制。
Nature. 2013 Dec 5;504(7478):113-8. doi: 10.1038/nature12823.
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Structure of the TRPV1 ion channel determined by electron cryo-microscopy.电子冷冻显微镜解析 TRPV1 离子通道结构。
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Single residues in the outer pore of TRPV1 and TRPV3 have temperature-dependent conformations.TRPV1 和 TRPV3 的外孔中的单个残基具有温度依赖的构象。
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Permeation and block of TRPV1 channels by the cationic lidocaine derivative QX-314.QX-314 作为一种正离子型利多卡因衍生物对 TRPV1 通道的渗透和阻断作用。
J Neurophysiol. 2013 Apr;109(7):1704-12. doi: 10.1152/jn.00012.2013. Epub 2013 Jan 9.
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Morphine hyperalgesia gated through microglia-mediated disruption of neuronal Cl⁻ homeostasis.吗啡痛觉过敏通过小胶质细胞介导的神经元 Cl⁻ 动态平衡破坏调控。
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Effect of cholesterol depletion on the pore dilation of TRPV1.胆固醇耗竭对 TRPV1 孔扩张的影响。
Mol Pain. 2013 Jan 2;9:1. doi: 10.1186/1744-8069-9-1.
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N-glycosylation determines ionic permeability and desensitization of the TRPV1 capsaicin receptor.N-糖基化决定 TRPV1 辣椒素受体的离子通透性和脱敏作用。
J Biol Chem. 2012 Jun 22;287(26):21765-72. doi: 10.1074/jbc.M112.342022. Epub 2012 May 8.
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Molecular and functional properties of P2X receptors--recent progress and persisting challenges.P2X 受体的分子和功能特性——最新进展和持续挑战。
Purinergic Signal. 2012 Sep;8(3):375-417. doi: 10.1007/s11302-012-9314-7. Epub 2012 May 1.
10
Selective disruption of high sensitivity heat activation but not capsaicin activation of TRPV1 channels by pore turret mutations.孔道转位突变选择性地破坏 TRPV1 通道对高灵敏度热激活而不是辣椒素激活的反应。
J Gen Physiol. 2012 Apr;139(4):273-83. doi: 10.1085/jgp.201110724. Epub 2012 Mar 12.

外孔结构域在瞬时受体电位香草酸亚型1对大阳离子的动态通透性中的作用。

Role of the outer pore domain in transient receptor potential vanilloid 1 dynamic permeability to large cations.

作者信息

Munns Clare H, Chung Man-Kyo, Sanchez Yuly E, Amzel L Mario, Caterina Michael J

机构信息

From the Departments of Neurosurgery, Biological Chemistry, and Neuroscience, Neurosurgery Pain Research Institute, and Center for Sensory Biology and.

the Department of Neural and Pain Sciences, University of Maryland School of Dentistry, Baltimore, Maryland 21201.

出版信息

J Biol Chem. 2015 Feb 27;290(9):5707-24. doi: 10.1074/jbc.M114.597435. Epub 2015 Jan 7.

DOI:10.1074/jbc.M114.597435
PMID:25568328
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4342482/
Abstract

Transient receptor potential vanilloid 1 (TRPV1) has been shown to alter its ionic selectivity profile in a time- and agonist-dependent manner. One hallmark of this dynamic process is an increased permeability to large cations such as N-methyl-D-glucamine (NMDG). In this study, we mutated residues throughout the TRPV1 pore domain to identify loci that contribute to dynamic large cation permeability. Using resiniferatoxin (RTX) as the agonist, we identified multiple gain-of-function substitutions within the TRPV1 pore turret (N628P and S629A), pore helix (F638A), and selectivity filter (M644A) domains. In all of these mutants, maximum NMDG permeability was substantially greater than that recorded in wild type TRPV1, despite similar or even reduced sodium current density. Two additional mutants, located in the pore turret (G618W) and selectivity filter (M644I), resulted in significantly reduced maximum NMDG permeability. M644A and M644I also showed increased and decreased minimum NMDG permeability, respectively. The phenotypes of this panel of mutants were confirmed by imaging the RTX-evoked uptake of the large cationic fluorescent dye YO-PRO1. Whereas none of the mutations selectively altered capsaicin-induced changes in NMDG permeability, the loss-of-function phenotypes seen with RTX stimulation of G618W and M644I were recapitulated in the capsaicin-evoked YO-PRO1 uptake assay. Curiously, the M644A substitution resulted in a loss, rather than a gain, in capsaicin-evoked YO-PRO1 uptake. Modeling of our mutations onto the recently determined TRPV1 structure revealed several plausible mechanisms for the phenotypes observed. We conclude that side chain interactions at a few specific loci within the TRPV1 pore contribute to the dynamic process of ionic selectivity.

摘要

瞬时受体电位香草酸亚型1(TRPV1)已被证明能以时间和激动剂依赖的方式改变其离子选择性特征。这一动态过程的一个标志是对大阳离子如N-甲基-D-葡糖胺(NMDG)的通透性增加。在本研究中,我们对TRPV1孔道结构域中的残基进行突变,以确定有助于动态大阳离子通透性的位点。使用树脂毒素(RTX)作为激动剂,我们在TRPV1孔道小塔(N628P和S629A)、孔螺旋(F638A)和选择性过滤器(M644A)结构域中鉴定出多个功能获得性替代。在所有这些突变体中,尽管钠电流密度相似甚至降低,但最大NMDG通透性显著高于野生型TRPV1中记录的值。另外两个位于孔道小塔(G618W)和选择性过滤器(M644I)中的突变体导致最大NMDG通透性显著降低。M644A和M644I还分别显示出最小NMDG通透性的增加和降低。通过对RTX诱发的大阳离子荧光染料YO-PRO1摄取进行成像,证实了这一组突变体的表型。虽然没有一个突变选择性地改变辣椒素诱导的NMDG通透性变化,但在辣椒素诱发的YO-PRO1摄取试验中重现了G618W和M644I经RTX刺激后的功能丧失表型。奇怪的是,M644A替代导致辣椒素诱发的YO-PRO1摄取减少而非增加。将我们的突变体映射到最近确定的TRPV1结构上,揭示了观察到的表型的几种可能机制。我们得出结论,TRPV1孔道内几个特定位点的侧链相互作用有助于离子选择性的动态过程。