首页> 美国卫生研究院文献>Protein Science : A Publication of the Protein Society >Predicted structure of the extracellular region of ligand-gated ion-channel receptors shows SH2-like and SH3-like domains forming the ligand-binding site.
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Predicted structure of the extracellular region of ligand-gated ion-channel receptors shows SH2-like and SH3-like domains forming the ligand-binding site.

机译:配体门控离子通道受体的胞外区的预测结构显示形成配体结合位点的类SH2和类SH3域。

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摘要

Fast synaptic neurotransmission is mediated by ligand-gated ion-channel (LGIC) receptors, which include receptors for acetylcholine, serotonin, GABA, glycine, and glutamate. LGICs are pentamers with extracellular ligand-binding domains and form integral membrane ion channels that are selective for cations (acetylcholine and serotonin 5HT3 receptors) or anions (GABAA and glycine receptors and the invertebrate glutamate-binding chloride channel). They form a protein superfamily with no sequence similarity to any protein of known structure. Using a 1D-3D structure mapping approach, we have modeled the extracellular ligand-binding domain based on a significant match with the SH2 and SH3 domains of the biotin repressor structure. Refinement of the model based on knowledge of the large family of SH2 and SH3 structures, sequence alignments, and use of structure templates for loop building, allows the prediction of both monomer and pentamer models. These are consistent with medium-resolution electron microscopy structures and with experimental structure/function data from ligand-binding, antibody-binding, mutagenesis, protein-labeling and subunit-linking studies, and glycosylation sites. Also, the predicted polarity of the channel pore calculated from electrostatic potential maps of pentamer models of superfamily members is consistent with known ion selectivities. Using the glycine receptor alpha 1 subunit, which forms homopentamers, the monomeric and pentameric models define the agonist and antagonist (strychnine) binding sites to a deep crevice formed by an extended loop, which includes the invariant disulfide bridge, between the SH2 and SH3 domains. A detailed binding site for strychnine is reported that is in strong agreement with known structure/function data. A site for interaction of the extracellular ligand-binding domain with the activation of the M2 transmembrane helix is also suggested.
机译:快速的突触神经传递是通过配体门控离子通道(LGIC)受体介导的,其中包括乙酰胆碱,血清素,GABA,甘氨酸和谷氨酸的受体。 LGIC是具有细胞外配体结合结构域的五聚体,并形成对阳离子(乙酰胆碱和5-羟色胺5HT3受体)或阴离子(GABAA和甘氨酸受体以及无脊椎动物谷氨酸结合氯离子通道)有选择性的完整膜离子通道。它们形成蛋白质超家族,与任何已知结构的蛋白质没有序列相似性。使用1D-3D结构映射方法,我们基于与生物素阻遏物结构的SH2和SH3结构域的显着匹配,对细胞外配体结合结构域进行了建模。基于对SH2和SH3大家族的知识,序列比对以及使用结构模板进行环构建来完善模型,可以预测单体模型和五聚体模型。这些与中等分辨率的电子显微镜结构以及配体结合,抗体结合,诱变,蛋白质标记和亚基连接研究以及糖基化位点的实验结构/功能数据一致。而且,由超家族成员的五聚体模型的静电势图计算出的通道孔的预测极性与已知的离子选择性一致。使用形成均戊二烯的甘氨酸受体α1亚基,单体模型和五聚体模型定义了激动剂和拮抗剂(司可宁)结合位点,该位点由SH2和SH3结构域之间的延伸环(包括不变的二硫键)形成的深裂隙。据报道,士的宁的一个详细的结合位点与已知的结构/功能数据非常吻合。还提出了细胞外配体结合结构域与M2跨膜螺旋的激活相互作用的位点。

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