Dipartimento di Scienze dell'Ambiente e del Territorio, Università degli Studi di Milano-Bicocca, Piazza della Scienza 1, 20126 Milano, Italy.
J Chem Inf Model. 2011 Nov 28;51(11):2868-81. doi: 10.1021/ci2001617. Epub 2011 Nov 2.
The aryl hydrocarbon receptor (AhR) is a ligand-dependent, basic helix-loop-helix Per-ARNT-Sim (PAS) containing transcription factor that can bind and be activated by structurally diverse chemicals, including the toxic environmental contaminant 2,3,7,8-tetrachlorodibenzo-p-dioxin (TCDD). As no experimentally determined structures of the AhR ligand binding domain (LBD) are available and previous homology models were only derived from apo template structures, we developed a new model based on holo X-ray structures of the hypoxia-inducible factor 2α (HIF-2α) PAS B domain, targeted to improve the accuracy of the binding site for molecular docking applications. We experimentally confirmed the ability of two HIF-2α crystallographic ligands to bind to the mAhR with relatively high affinity and demonstrated that they are AhR agonists, thus justifying the use of the holo HIF-2α structures as templates. A specific modeling/docking approach was proposed to predict the binding modes of AhR ligands in the modeled LBD. It was validated by comparison of the calculated and the experimental binding affinities of active THS ligands and TCDD for the mAhR and by functional activity analysis using several mAhR mutants generated on the basis of the modeling results. Finally the ability of the proposed approach to reproduce the different affinities of TCDD for AhRs of different species was confirmed, and a first test of its reliability in virtual screening is carried out by analyzing the correlation between the calculated and experimental binding affinities of a set of 14 PCDDs.
芳香烃受体 (AhR) 是一种配体依赖性的基本螺旋-环-螺旋 Per-ARNT-Sim (PAS) 结构域转录因子,能够与结构多样的化学物质结合并被其激活,包括有毒的环境污染物 2,3,7,8-四氯二苯并对二恶英 (TCDD)。由于没有可获得的 AhR 配体结合域 (LBD) 的实验确定结构,并且先前的同源建模仅源自无配体模板结构,因此我们开发了一种新的模型,该模型基于低氧诱导因子 2α (HIF-2α) PAS B 结构域的全蛋白 X 射线结构,旨在提高结合位点的准确性,以便于分子对接应用。我们通过实验证实了两种 HIF-2α 晶体学配体与 mAhR 结合的相对高亲和力,并证明它们是 AhR 激动剂,因此证明使用全蛋白 HIF-2α 结构作为模板是合理的。提出了一种特定的建模/对接方法来预测 AhR 配体在建模的 LBD 中的结合模式。通过比较活性 THS 配体和 TCDD 与 mAhR 的计算和实验结合亲和力,以及基于建模结果生成的几个 mAhR 突变体的功能活性分析,对其进行了验证。最后,证实了该方法能够重现 TCDD 对不同物种 AhR 的不同亲和力,并通过分析一组 14 种多氯二苯并对二恶英的计算和实验结合亲和力之间的相关性,对其在虚拟筛选中的可靠性进行了首次测试。