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Molecular Determinants of Agonist Selectivity in Glutamate-Gated Chloride Channels Which Likely Explain the Agonist Selectivity of the Vertebrate Glycine and GABAA-ρ Receptors

机译:谷氨酸门控氯离子通道中激动剂选择性的分子决定因素这可能解释了脊椎动物甘氨酸和GABAA-ρ受体的激动剂选择性。

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Orthologous Cys-loop glutamate-gated chloride channels (GluClR’s) have been cloned and described electrophysiologically and pharmacologically in arthropods and nematodes (both members of the invertebrate ecdysozoan superphylum). Recently, GluClR’s from Aplysia californica (a mollusc from the lophotrochozoan superphylum) have been cloned and similarly studied. In spite of sharing a common function, the ecdysozoan and lophotrochozoan receptors have been shown by phylogenetic analyses to have evolved independently. The recent crystallization of the GluClR from C. elegans revealed the binding pocket of the nematode receptor. An alignment of the protein sequences of the nematode and molluscan GluClRs showed that the Aplysia receptor does not contain all of the residues defining the binding mode of the ecdysozoan receptor. That the two receptors have slightly different binding modes is not surprising since earlier electrophysiological and pharmacological experiments had suggested that they were differentially responsive to certain agonists. Knowledge of the structure of the C. elegans GluClR has permitted us to generate a homology model of the binding pocket of the Aplysia receptor. We have analyzed the differences between the two binding modes and evaluated the relative significance of their non-common residues. We have compared the GluClRs electrophysiologically and pharmacologically and we have used site-directed mutagenesis on both receptor types to test predictions made from the model. Finally, we propose an explanation derived from the model for why the nematode receptors are gated only by glutamate, whereas the molluscan receptors can also be activated by β-alanine, GABA and taurine. Like the Aplysia receptor, the vertebrate glycine and GABAA-ρ receptors also respond to these other agonists. An alignment of the sequences of the molluscan and vertebrate receptors shows that the reasons we have given for the ability of the other agonists to activate the Aplysia receptor also explain the agonist profile seen in the glycine and GABAA-ρ receptors.
机译:直向同源的半胱氨酸谷氨酸门控氯离子通道(GluClR's)已在节肢动物和线虫(无脊椎动物蜕皮超动物的两个成员)中被电生理学和药理学描述。最近,已经克隆并相似地研究了来自加州Ap的GluClR(一种来自甜菜次生孢子的软体动物)。尽管具有共同的功能,但蜕皮动物和次滋养动物受体已通过系统发育分析表明是独立进化的。最近从秀丽隐杆线虫结晶的GluClR揭示了线虫受体的结合口袋。线虫和软体动物GluClRs的蛋白质序列的比对表明,Aplysia受体不包含定义蜕皮动物受体结合模式的所有残基。这两种受体的结合方式略有不同并不奇怪,因为早期的电生理和药理实验表明它们对某些激动剂的反应不同。秀丽隐杆线虫GluClR的结构知识使我们能够生成海ly受体结合口袋的同源模型。我们分析了两种结合模式之间的差异,并评估了它们非常见残基的相对重要性。我们已经在电生理学和药理学上比较了GluClRs,并且我们对两种受体类型都使用了定点诱变来测试由模型得出的预测。最后,我们提出一个从模型得出的解释,说明为什么线虫受体仅被谷氨酸门控,而软体动物受体也可以被β-丙氨酸,GABA和牛磺酸激活。像Aplysia受体一样,脊椎动物的甘氨酸和GABAA-ρ受体也对这些其他激动剂产生反应。软体动物和脊椎动物受体序列的比对表明,我们给出的其他激动剂激活Aplysia受体能力的原因也解释了在甘氨酸和GABAA-ρ受体中看到的激动剂谱。

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