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分子动力学模拟描绘了整个人类芳香烃受体的结构运动,影响其与配体和 HSP90 的结合。

Molecular dynamics simulations depict structural motions of the whole human aryl hydrocarbon receptor influencing its binding of ligands and HSP90.

机构信息

Laboratorio de Biofísica y Biocatálisis, Sección de Estudios de Posgrago e Investigación. Escuela Superior de Medicina, Instituto Politécnico Nacional. Plan de San Luis y Díaz Mirón s/n, Ciudad de México, Mexico.

Laboratorio de Diseño y Desarrollo de Nuevos Fármacos e Innovación Biotecnológica, Seccion de Estudios de Posgrado. Escuela Superior de Medicina, Instituto Politécnico Nacional, Plan de San Luis y Díaz Mirón, México City, Mexico.

出版信息

J Biomol Struct Dyn. 2023;41(22):13138-13153. doi: 10.1080/07391102.2023.2171132. Epub 2023 Jan 27.

Abstract

The aryl hydrocarbon receptor (AhR) has broad biological functions when its ligands activate it; the non-binding interactions with AhR have not been fully elucidated due to the absence of a complete tridimensional (3D) structure. Therefore, utilization of the whole 3D structure from Homo sapiens AhR by in silico studies will allow us to better study and analyze the binding mode of its full and partial agonists, and antagonists, as well as its interaction with the HSP90 chaperone. The 3D AhR structure was obtained from I-TASSER and subjected to molecular dynamics (MD) simulations to obtain different structural conformations and determine the most populated AhR conformer by clustering analyses. The AhR-3D structures selected from MD simulations and those from clustering analyses were used to achieve docking studies with some of its ligands and protein-protein docking with HSP90. Once the AhR-3D structure was built, its Ramachandran maps and energy showed a well-qualified 3D model. MD simulations showed that the per-Arnt-Sim homology (PAS) PAS A, PAS B, and Q domains underwent conformational changes, identifying the conformation when agonists were binding also, and HSP90 was binding near the PAS A, PAS B, and Q domains. However, when antagonists are binding, HSP90 does not bind near the PAS A, PAS B, and Q domains. These studies show that the complex agonist-AhR-HSP90 can be formed, but this complex is not formed when an antagonist is binding. Knowing the conformations when the ligands bind to AHR and the behavior of HSP90 allows for an understanding of its activity.Communicated by Ramaswamy H. Sarma.

摘要

芳香烃受体 (AhR) 的配体激活后具有广泛的生物学功能;由于缺乏完整的三维 (3D) 结构,其与 AhR 的非结合相互作用尚未得到充分阐明。因此,通过计算机研究利用来自智人 AhR 的整个 3D 结构,将使我们能够更好地研究和分析其完全和部分激动剂、拮抗剂的结合模式,以及与 HSP90 伴侣的相互作用。从 I-TASSER 获得 3D AhR 结构,并进行分子动力学 (MD) 模拟,以获得不同的结构构象,并通过聚类分析确定最常见的 AhR 构象。从 MD 模拟和聚类分析中选择的 AhR 3D 结构用于与一些配体进行对接研究,并与 HSP90 进行蛋白-蛋白对接。一旦构建了 AhR 3D 结构,其 Ramachandran 图谱和能量显示出一个合格的 3D 模型。MD 模拟表明,Per-Arnt-Sim 同源 (PAS) PAS A、PAS B 和 Q 结构域发生构象变化,确定了配体结合时的构象,同时 HSP90 也结合在 PAS A、PAS B 和 Q 结构域附近。然而,当结合拮抗剂时,HSP90 不会结合在 PAS A、PAS B 和 Q 结构域附近。这些研究表明,复合物激动剂-AhR-HSP90 可以形成,但当结合拮抗剂时,这种复合物不会形成。了解配体与 AhR 结合时的构象以及 HSP90 的行为,可以理解其活性。由 Ramaswamy H. Sarma 传达。

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