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人类多巴胺D2受体(D2R)活性和非活性状态的建模与蛋白质工程研究以及药物/受体相互作用的研究

Modeling and protein engineering studies of active and inactive states of human dopamine D2 receptor (D2R) and investigation of drug/receptor interactions.

作者信息

Salmas Ramin Ekhteiari, Yurtsever Mine, Stein Matthias, Durdagi Serdar

机构信息

Department of Chemistry, Istanbul Technical University, Istanbul, Turkey.

出版信息

Mol Divers. 2015 May;19(2):321-32. doi: 10.1007/s11030-015-9569-3. Epub 2015 Feb 5.

Abstract

Homology model structures of the dopamine D2 receptor (D2R) were generated starting from the active and inactive states of β2-adrenergic crystal structure templates. To the best of our knowledge, the active conformation of D2R was modeled for the first time in this study. The homology models are built and refined using MODELLER and ROSETTA programs. Top-ranked models have been validated with ligand docking simulations and in silico Alanine-scanning mutagenesis studies. The derived extra-cellular loop region of the protein models is directed toward the binding site cavity which is often involved in ligand binding. The binding sites of protein models were refined using induced fit docking to enable the side-chain refinement during ligand docking simulations. The derived models were then tested using molecular modeling techniques on several marketed drugs for schizophrenia. Alanine-scanning mutagenesis and molecular docking studies gave similar results for marketed drugs tested. We believe that these new D2 receptor models will be very useful for a better understanding of the mechanisms of action of drugs to be targeted to the binding sites of D2Rs and they will contribute significantly to drug design studies involving G-protein-coupled receptors in the future.

摘要

多巴胺 D2 受体(D2R)的同源模型结构是从β2 - 肾上腺素能晶体结构模板的活性和非活性状态开始生成的。据我们所知,本研究首次对 D2R 的活性构象进行了建模。同源模型使用 MODELLER 和 ROSETTA 程序构建和优化。排名靠前的模型已通过配体对接模拟和计算机丙氨酸扫描诱变研究进行了验证。蛋白质模型推导的细胞外环区域指向通常参与配体结合的结合位点腔。蛋白质模型的结合位点使用诱导契合对接进行了优化,以便在配体对接模拟过程中对侧链进行优化。然后使用分子建模技术在几种治疗精神分裂症的上市药物上对推导的模型进行了测试。对于所测试的上市药物,丙氨酸扫描诱变和分子对接研究得出了相似的结果。我们相信,这些新的 D2 受体模型将非常有助于更好地理解靶向 D2R 结合位点的药物作用机制,并且它们将在未来对涉及 G 蛋白偶联受体的药物设计研究做出重大贡献。

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