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首页> 外文期刊>The Journal of biological chemistry >Conformational Transitions Underlying Pore Opening and Desensitization in Membrane-embedded Gloeobacter violaceus Ligand-gated Ion Channel (GLIC)
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Conformational Transitions Underlying Pore Opening and Desensitization in Membrane-embedded Gloeobacter violaceus Ligand-gated Ion Channel (GLIC)

机译:构象过渡孔隙开口和膜嵌入式紫杉杆菌的脱敏,紫色镶嵌离子通道(GLIC)

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Direct structural insight into the mechanisms underlying activation and desensitization remain unavailable for the pentameric ligand-gated channel family. Here, we report the structural rearrangements underlying gating transitions in membrane-embedded GLIC, a prokaryotic homologue, using site-directed spin labeling and electron paramagnetic resonance (EPR) spectroscopy. We particularly probed the conformation of pore-lining second transmembrane segment (M2) under conditions that favor the closed and the ligand-bound desensitized states. The spin label mobility, intersubunit spin-spin proximity, and the solvent-accessibility parameters in the two states clearly delineate the underlying protein motions within M2. Our results show that during activation the extracellular hydrophobic region undergoes major changes involving an outward translational movement, away from the pore axis, leading to an increase in the pore diameter, whereas the lower end of M2 remains relatively immobile. Most notably, during desensitization, the intervening polar residues in the middle of M2 move closer to form a solvent-occluded barrier and thereby reveal the location of a distinct desensitization gate. In comparison with the crystal structure of GLIC, the structural dynamics of the channel in a membrane environment suggest a more loosely packed conformation with water-accessible intrasubunit vestibules penetrating from the extracellular end all the way to the middle of M2 in the closed state. These regions have been implicated to play a major role in alcohol and drug modulation. Overall, these findings represent a key step toward understanding the fundamentals of gating mechanisms in this class of channels.
机译:直接结构洞察潜在的激活和脱敏的机制仍然不可用的通道门控通道家族。在这里,我们报告了膜嵌入式GLIC,原核同源物中的底层门控转变的结构重排,使用现场定向的旋转标记和电子顺磁共振(EPR)光谱。我们特别探讨了在有利于关闭的条件下的孔隙衬里第二跨膜段(M2)的构象和配体结合的脱敏状态。旋转标签迁移率,梭突间旋转旋转接近度和两种状态的溶剂可接近参数明确描绘了M2内的潜在蛋白质运动。我们的研究结果表明,在激活过程中,细胞外疏水区域经历涉及向外平移运动的主要变化,远离孔隙轴,导致孔径的增加,而M2的下端仍然相对不动。最值得注意的是,在脱敏期间,M2中间中间的介入极性残留物更靠近形成溶剂闭塞屏障,从而揭示了不同的脱敏栅极的位置。与GLIC的晶体结构相比,膜环境中通道的结构动力学表明,与闭合状态的渗透到外细胞外,与水中的可接近的intrAsubunit前院具有更松散的包装构象。这些区域涉及在酒精和药物调制中发挥重要作用。总体而言,这些发现代表了了解这类渠道中的门控机制的基础知识。

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