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3D modeling, ligand binding and activation studies of the cloned mouse delta, mu; and kappa opioid receptors.

机译:克隆的小鼠三角洲的3D建模,配体结合和激活研究;和κ阿片受体。

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Refined 3D models of the transmembrane domains of the cloned delta, mu and kappa opioid receptors belonging to the superfamily of G-protein coupled receptors (GPCRs) were constructed from a multiple sequence alignment using the alpha carbon template of rhodopsin recently reported. Other key steps in the procedure were relaxation of the 3D helix bundle by unconstrained energy optimization and assessment of the stability of the structure by performing unconstrained molecular dynamics simulations of the energy optimized structure. The results were stable ligand-free models of the TM domains of the three opioid receptors. The ligand-free delta receptor was then used to develop a systematic and reliable procedure to identify and assess putative binding sites that would be suitable for similar investigation of the other two receptors and GPCRs in general. To this end, a non-selective, 'universal' antagonist, naltrexone, and agonist, etorphine, were used as probes. These ligands were first docked in all sites of the model delta opioid receptor which were sterically accessible and to which the protonated amine of the ligands could be anchored to a complementary proton-accepting residue. Using these criteria, nine ligand-receptor complexes with different binding pockets were identified and refined by energy minimization. The properties of all these possible ligand-substrate complexes were then examined for consistency with known experimental results of mutations in both opioid and other GPCRs. Using this procedure, the lowest energy agonist-receptor and antagonist-receptor complexes consistent with these experimental results were identified. These complexes were then used to probe the mechanism of receptor activation by identifying differences in receptor conformation between the agonist and the antagonist complex during unconstrained dynamics simulation. The results lent support to a possible activation mechanism of the mouse delta opioid receptor similar to that recently proposed for several other GPCRs. They also allowed the selection of candidate sites for future mutagenesis experiments.
机译:使用最近报道的视紫红质的α碳模板,通过多重序列比对,构建了属于G蛋白偶联受体(GPCR)超家族的克隆的delta,mu和kappa类阿片受体跨膜结构域的精制3D模型。该过程中的其他关键步骤是通过不受约束的能量优化来松弛3D螺旋束,以及通过对能量优化的结构执行不受约束的分子动力学模拟来评估结构的稳定性。结果是三个阿片受体的TM域的稳定的无配体模型。然后,将不含配体的δ受体用于开发系统的可靠程序,以鉴定和评估推定的结合位点,该位点通常适用于其他两种受体和GPCR的类似研究。为此,将非选择性的“通用”拮抗剂纳曲酮和激动剂依托啡用作探针。首先将这些配体停泊在模型δ阿片样物质受体的所有位点上,这些位点是空间可及的,并且配体的质子化胺可以锚定至互补的质子接受残基上。使用这些标准,通过能量最小化鉴定并纯化了九种具有不同结合口袋的配体-受体复合物。然后检查所有这些可能的配体-底物复合物的性质是否与阿片样物质和其他GPCR中突变的已知实验结果一致。使用该程序,确定了与这些实验结果一致的最低能量的激动剂-受体和拮抗剂-受体复合物。然后,通过在不受约束的动力学模拟过程中识别激动剂和拮抗剂复合物之间的受体构象差异,将这些复合物用于探测受体激活机制。该结果为小鼠δ阿片受体的可能激活机制提供了支持,该激活机制与最近针对其他几种GPCR提出的类似。他们还允许为将来的诱变实验选择候选位点。

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