首页> 美国卫生研究院文献>The Journal of Neuroscience >State-Dependent Cross-Linking of the M2 and M3 Segments: Functional Basis for the Alignment of GABAA and Acetylcholine Receptor M3 Segments
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State-Dependent Cross-Linking of the M2 and M3 Segments: Functional Basis for the Alignment of GABAA and Acetylcholine Receptor M3 Segments

机译:状态相关的M2和M3区段的交联:GABAA和乙酰胆碱受体M3区段比对的功能基础

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摘要

Construction of a GABAA receptor homology model based on the acetylcholine (ACh) receptor structure is complicated by the low sequence similarity between GABAA and ACh M3 transmembrane segments that creates significant uncertainty in their alignment. We determined the orientation of the GABAA M2 and M3 transmembrane segments using disulfide cross-linking. The M2 residues α1M266 (11′) and α1T267 (12′) were mutated to cysteine in either wild type or single M3 cysteine mutant (α1V297C, α1A300C to α1A305C) backgrounds. We assayed spontaneous and induced disulfide bond formation. Reduction with DTT significantly potentiated GABA-induced currents in α1T267C-L301C and α1T267C-F304C. Copper phenanthroline-induced oxidation inhibited GABA-induced currents in these mutants and in α1T267C-A305C. Intrasubunit disulfide bonds formed between these Cys pairs, implying that the α-carbon separation was at most 5.6 Å. The reactive α1M3 residues (L301, F304, A305) lie on the same face of an α-helix. The unresponsive ones (A300, I302, E303) lie on the opposite face. In the resting state, the reactive side of α1M3 faces M2-α1T267. In conjunction with the ACh structure, our data indicate that alignment of GABAA and ACh M3 requires a single gap in the GABAA M2–M3 loop. In the presence of GABA, oxidation of α1T267C-L301C and α1T267C-F304C had no effect, but oxidation of α1T267C-A305C caused a significant increase in spontaneous channel opening. We infer that, as the channel opens, the distance and/or orientation between M2-α1T267 and M3-α1A305 changes such that the disulfide bond stabilizes the open state. This begins to define the conformational motion that M2 undergoes during channel opening.
机译:基于乙酰胆碱(ACh)受体结构的GABAA受体同源性模型的构建由于GABAA和ACh M3跨膜片段之间的低序列相似性而变得复杂,这在它们的比对中产生了很大的不确定性。我们使用二硫键交联确定了GABAA M2和M3跨膜片段的方向。在野生型或单个M3半胱氨酸突变体(α1V297C,α1A300C到α1A305C)的背景下,M2残基α1M266(11')和α1T267(12')突变为半胱氨酸。我们分析了自发的和诱导的二硫键形成。用DTT还原可显着增强α1T267C-L301C和α1T267C-F304C中GABA诱导的电流。在这些突变体和α1T267C-A305C中,菲咯啉铜诱导的氧化抑制了GABA诱导的电流。在这些Cys对之间形成亚单位内二硫键,这意味着α-碳间隔最大为5.6。反应性α1M3残基(L301,F304,A305)位于α螺旋的同一面上。没有反应的(A300,I302,E303)位于相反的面上。在静止状态下,α1M3的电抗侧面对M2-α1T267。结合ACh结构,我们的数据表明,GABAA和ACh M3的比对需要在GABAA M2-M3环中形成单个缺口。在存在GABA的情况下,α1T267C-L301C和α1T267C-F304C的氧化没有影响,但是α1T267C-A305C的氧化导致自发通道打开的明显增加。我们推断,随着通道的打开,M2-α1T267和M3-α1A305之间的距离和/或方向发生变化,从而使二硫键稳定了打开状态。这开始定义了通道打开期间M2经历的构象运动。

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