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Prediction of binding affinity and efficacy of thyroid hormone receptor ligands using QSAR and structure based modeling methods

机译:使用QSAR和基于结构的建模方法预测甲状腺激素受体配体的结合亲和力和功效

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摘要

The thyroid hormone receptor (THR) is an important member of the nuclear receptor family that can be activated by endocrine disrupting chemicals (EDC). Quantitative Structure-Activity Relationship (QSAR) models have been developed to facilitate the prioritization of THR-mediated EDC for the experimental validation. The largest database of binding affinities available at the time of the study for ligand binding domain (LBD) of THRβ was assembled to generate both continuous and classification QSAR models with an external accuracy of R2=0.55 and CCR=0.76, respectively. In addition, for the first time a QSAR model was developed to predict binding affinities of antagonists inhibiting the interaction of coactivators with the AF-2 domain of THRβ (R2=0.70). Furthermore, molecular docking studies were performed for a set of THRβ ligands (57 agonists and 15 antagonists of LBD, 210 antagonists of the AF-2 domain, supplemented by putative decoyson-binders) using several THRβ structures retrieved from the Protein Data Bank. We found that two agonist-bound THRβ conformations could effectively discriminate their corresponding ligands from presumed non-binders. Moreover, one of the agonist conformations could discriminate agonists from antagonists. Finally, we have conducted virtual screening of a chemical library compiled by the EPA as part of the Tox21 program to identify potential THRβ-mediated EDCs using both QSAR models and docking. We concluded that the library is unlikely to have any EDC that would bind to the THRβ. Models developed in this study can be employed either to identify environmental chemicals interacting with the THR or, conversely, to eliminate the THR-mediated mechanism of action for chemicals of concern.
机译:甲状腺激素受体(THR)是核受体家族的重要成员,可以被内分泌干扰物(EDC)激活。已经开发了定量结构-活性关系(QSAR)模型,以促进通过THR介导的EDC进行实验验证的优先次序。组装研究时可获得的最大的THRβ配体结合域(LBD)结合亲和力数据库,以生成连续和分类QSAR模型,外部精度为R 2 = 0.55和CCR分别为0.76。此外,首次建立了QSAR模型以预测抑制共激活因子与THRβ的AF-2域相互作用的拮抗剂的结合亲和力(R 2 = 0.70)。此外,使用从蛋白质数据库中检索到的几种THRβ结构,对一组THRβ配体(57种激动剂和15种LBD拮抗剂,210种AF-2结构域拮抗剂,并辅以推定的诱饵/非结合剂进行补充)进行了分子对接研究。 。我们发现两个激动剂结合的THRβ构象可以有效地将其相应的配体与假定的非结合剂区分开。而且,一种激动剂构象可以将激动剂与拮抗剂区分开。最后,我们对作为Tox21计划一部分的EPA汇编的化学文库进行了虚拟筛选,以使用QSAR模型和对接来识别潜在的THRβ介导的EDC。我们得出的结论是,该文库不太可能具有任何可与THRβ结合的EDC。这项研究中开发的模型可以用于识别与THR相互作用的环境化学物质,或者相反地,可以消除THR介导的有关化学物质的作用机理。

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