Suppr超能文献

E2.65A 突变破坏了 SB269652 在多巴胺 D2 和 D3 受体上的动态结合构象。

The E2.65A mutation disrupts dynamic binding poses of SB269652 at the dopamine D2 and D3 receptors.

机构信息

Computational Chemistry and Molecular Biophysics Unit, Molecular Targets and Medications Discovery Branch, National Institute on Drug Abuse-Intramural Research Program, National Institutes of Health, Baltimore, Maryland, United States.

Molecular Neuropharmacology Section, National Institute of Neurologic Disorders and Stroke, National Institutes of Health, Bethesda, Maryland, United States.

出版信息

PLoS Comput Biol. 2018 Jan 16;14(1):e1005948. doi: 10.1371/journal.pcbi.1005948. eCollection 2018 Jan.

Abstract

The dopamine D2 and D3 receptors (D2R and D3R) are important targets for antipsychotics and for the treatment of drug abuse. SB269652, a bitopic ligand that simultaneously binds both the orthosteric binding site (OBS) and a secondary binding pocket (SBP) in both D2R and D3R, was found to be a negative allosteric modulator. Previous studies identified Glu2.65 in the SBP to be a key determinant of both the affinity of SB269652 and the magnitude of its cooperativity with orthosteric ligands, as the E2.65A mutation decreased both of these parameters. However, the proposed hydrogen bond (H-bond) between Glu2.65 and the indole moiety of SB269652 is not a strong interaction, and a structure activity relationship study of SB269652 indicates that this H-bond may not be the only element that determines its allosteric properties. To understand the structural basis of the observed phenotype of E2.65A, we carried out molecular dynamics simulations with a cumulative length of ~77 μs of D2R and D3R wild-type and their E2.65A mutants bound to SB269652. In combination with Markov state model analysis and by characterizing the equilibria of ligand binding modes in different conditions, we found that in both D2R and D3R, whereas the tetrahydroisoquinoline moiety of SB269652 is stably bound in the OBS, the indole-2-carboxamide moiety is dynamic and only intermittently forms H-bonds with Glu2.65. Our results also indicate that the E2.65A mutation significantly affects the overall shape and size of the SBP, as well as the conformation of the N terminus. Thus, our findings suggest that the key role of Glu2.65 in mediating the allosteric properties of SB269652 extends beyond a direct interaction with SB269652, and provide structural insights for rational design of SB269652 derivatives that may retain its allosteric properties.

摘要

多巴胺 D2 和 D3 受体(D2R 和 D3R)是抗精神病药物和药物滥用治疗的重要靶点。SB269652 是一种双位配体,可同时结合 D2R 和 D3R 的正构结合位点(OBS)和次要结合口袋(SBP),被发现为负变构调节剂。先前的研究表明,SBP 中的 Glu2.65 是决定 SB269652 亲和力和与正构配体协同作用程度的关键决定因素,因为 E2.65A 突变降低了这两个参数。然而,提议的 Glu2.65 与 SB269652 的吲哚部分之间的氢键(H-bond)不是一个强相互作用,并且对 SB269652 的构效关系研究表明,该氢键可能不是决定其变构性质的唯一因素。为了了解 E2.65A 观察到的表型的结构基础,我们对 D2R 和 D3R 野生型及其 E2.65A 突变体与 SB269652 结合进行了累积长度约 77 μs 的分子动力学模拟。结合 Markov 状态模型分析,并通过在不同条件下表征配体结合模式的平衡,我们发现,在 D2R 和 D3R 中,虽然 SB269652 的四氢异喹啉部分稳定地结合在 OBS 中,但吲哚-2-羧酰胺部分是动态的,仅间歇性地与 Glu2.65 形成氢键。我们的结果还表明,E2.65A 突变显著影响 SBP 的整体形状和大小,以及 N 端的构象。因此,我们的发现表明,Glu2.65 在介导 SB269652 的变构性质中的关键作用超出了与 SB269652 的直接相互作用,并为理性设计可能保留其变构性质的 SB269652 衍生物提供了结构见解。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验