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本文引用的文献

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Refined structure of the nicotinic acetylcholine receptor at 4A resolution.4埃分辨率下烟碱型乙酰胆碱受体的精细结构。
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Charged amino acids of the N-terminal domain are involved in coupling binding and gating in alpha7 nicotinic receptors.α7烟碱型受体N端结构域的带电荷氨基酸参与结合与门控偶联。
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Differential protein mobility of the gamma-aminobutyric acid, type A, receptor alpha and beta subunit channel-lining segments.γ-氨基丁酸A型受体α和β亚基通道内衬片段的差异蛋白质迁移率
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Evaluation of a proposed mechanism of ligand-gated ion channel activation in the GABAA and glycine receptors.γ-氨基丁酸A型(GABAA)受体和甘氨酸受体中配体门控离子通道激活的一种拟议机制的评估。
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Coupling of agonist binding to channel gating in an ACh-binding protein linked to an ion channel.与离子通道相连的乙酰胆碱结合蛋白中激动剂结合与通道门控的偶联。
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Alanine-scanning mutagenesis in the signature disulfide loop of the glycine receptor alpha 1 subunit: critical residues for activation and modulation.甘氨酸受体α1亚基标志性二硫键环中的丙氨酸扫描诱变:激活和调节的关键残基
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A fluorophore attached to nicotinic acetylcholine receptor beta M2 detects productive binding of agonist to the alpha delta site.附着于烟碱型乙酰胆碱受体βM2的荧光团可检测激动剂与αδ位点的有效结合。
Proc Natl Acad Sci U S A. 2004 Jul 6;101(27):10195-200. doi: 10.1073/pnas.0301885101. Epub 2004 Jun 24.
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Cys-loop receptors: new twists and turns.半胱氨酸环受体:新的变化与转折
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9
Mechanisms of channel gating of the ligand-gated ion channel superfamily inferred from protein structure.从蛋白质结构推断配体门控离子通道超家族的通道门控机制。
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Gating dynamics of the acetylcholine receptor extracellular domain.乙酰胆碱受体胞外结构域的门控动力学
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β1-β2环在5-羟色胺3型受体门控中的作用。

A role for the beta 1-beta 2 loop in the gating of 5-HT3 receptors.

作者信息

Reeves David C, Jansen Michaela, Bali Moez, Lemster Thomas, Akabas Myles H

机构信息

Department of Physiology and Biophysics, Albert Einstein College of Medicine, Yeshiva University, Bronx, New York 10461, USA.

出版信息

J Neurosci. 2005 Oct 12;25(41):9358-66. doi: 10.1523/JNEUROSCI.1045-05.2005.

DOI:10.1523/JNEUROSCI.1045-05.2005
PMID:16221844
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6725699/
Abstract

Based on the Torpedo acetylcholine receptor structure, Unwin and colleagues (Miyazawa et al., 2003; Unwin, 2005) hypothesized that the transduction of agonist binding to channel gate opening involves a "pin-into-socket" interaction between alphaV46 at the tip of the extracellular beta1-beta2 loop and the transmembrane M2 segment and M2-M3 loop. We mutated to cysteine the aligned positions in the 5-HT3A and 5-HT3B subunit beta1-beta2 loops K81 and Q70, respectively. The maximal 5-HT-activated currents in receptors containing 5-HT3A/K81C or 5-HT3B/Q70C were markedly reduced compared with wild type. Desensitization of wild-type currents involved fast and slow components. Mutant currents desensitized with only the fast time constant. Reaction with several methanethiosulfonate reagents potentiated currents to wild-type levels, but reaction with other more rigid thiol-reactive reagents caused inhibition. Single-channel conductances of wild type, K81C, and K81C after modification were similar. We tested the proximity of K81C to the M2-M3 loop by mutating M2-M3 loop residues to cysteine in the K81C background. Disulfide bonds formed in 5-HT3A/K81C/A304C and 5-HT3A/K81C/I305C when coexpressed with 5-HT3B. We conclude that in the resting state, K81 is not in a hydrophobic pocket as suggested by the pin-into-socket hypothesis. K81 interacts with the extracellular end of M2 and plays a critical role in channel opening and in the return from fast desensitization. We suggest that during channel activation, beta1-beta2 loop movement moves M2 and the M2-M3 loop so that the M2 segments rotate/translate away from the channel axis, thereby opening the lumen. Recovery from fast desensitization requires the interaction between K81 and the extracellular end of M2.

摘要

基于电鳐乙酰胆碱受体结构,昂温及其同事(宫泽等人,2003年;昂温,2005年)推测,激动剂结合向通道门开放的转导涉及细胞外β1-β2环末端的αV46与跨膜M2段及M2-M3环之间的“销插入槽”相互作用。我们分别将5-HT3A和5-HT3B亚基β1-β2环中的对齐位置K81和Q70突变为半胱氨酸。与野生型相比,含有5-HT3A/K81C或5-HT3B/Q70C的受体中5-HT激活的最大电流显著降低。野生型电流的脱敏涉及快速和慢速成分。突变电流仅以快速时间常数脱敏。与几种甲硫基磺酸盐试剂反应可使电流增强至野生型水平,但与其他更刚性的硫醇反应试剂反应则会导致抑制。野生型、K81C以及修饰后的K81C的单通道电导相似。我们通过在K81C背景中将M2-M3环残基突变为半胱氨酸来测试K81C与M2-M3环的接近程度。当与5-HT3B共表达时,在5-HT3A/K81C/A304C和5-HT3A/K81C/I305C中形成了二硫键。我们得出结论,在静息状态下,K81并不像“销插入槽”假说所暗示的那样处于疏水口袋中。K81与M2的细胞外末端相互作用,在通道开放和从快速脱敏恢复过程中起关键作用。我们认为,在通道激活过程中,β1-β2环的移动会使M2和M2-M3环移动,从而使M2段旋转/平移远离通道轴,进而打开管腔。从快速脱敏恢复需要K81与M2的细胞外末端相互作用。