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本文引用的文献

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Structural modeling of the AhR:ARNT complex in the bHLH-PASA-PASB region elucidates the key determinants of dimerization.AhR:ARNT复合物在bHLH-PASA-PASB区域的结构建模阐明了二聚化的关键决定因素。
Mol Biosyst. 2017 May 2;13(5):981-990. doi: 10.1039/c7mb00005g.
2
A novel AhR ligand, 2AI, protects the retina from environmental stress.一种新型 AhR 配体 2AI 可保护视网膜免受环境应激。
Sci Rep. 2016 Jul 1;6:29025. doi: 10.1038/srep29025.
3
Deciphering Dimerization Modes of PAS Domains: Computational and Experimental Analyses of the AhR:ARNT Complex Reveal New Insights Into the Mechanisms of AhR Transformation.解析PAS结构域的二聚化模式:对芳烃受体(AhR):芳烃受体核转运蛋白(ARNT)复合物的计算和实验分析揭示了AhR转化机制的新见解。
PLoS Comput Biol. 2016 Jun 13;12(6):e1004981. doi: 10.1371/journal.pcbi.1004981. eCollection 2016 Jun.
4
In vitro and in silico evaluation of transactivation potencies of avian AHR1 and AHR2 by endogenous ligands: Implications for the physiological role of avian AHR2.内源性配体对禽类芳香烃受体1(AHR1)和芳香烃受体2(AHR2)反式激活能力的体外和计算机模拟评估:对禽类AHR2生理作用的启示
Comp Biochem Physiol C Toxicol Pharmacol. 2016 Sep;187:1-9. doi: 10.1016/j.cbpc.2016.03.011. Epub 2016 Apr 7.
5
Structural integration in hypoxia-inducible factors.缺氧诱导因子的结构整合。
Nature. 2015 Aug 20;524(7565):303-8. doi: 10.1038/nature14883. Epub 2015 Aug 5.
6
Adaptation of the human aryl hydrocarbon receptor to sense microbiota-derived indoles.人类芳烃受体发生适应性变化以感知微生物群衍生的吲哚。
Sci Rep. 2015 Aug 3;5:12689. doi: 10.1038/srep12689.
7
Isoform-Selective and Stereoselective Inhibition of Hypoxia Inducible Factor-2.缺氧诱导因子-2 的同工型选择性和立体选择性抑制。
J Med Chem. 2015 Aug 13;58(15):5930-41. doi: 10.1021/acs.jmedchem.5b00529. Epub 2015 Jul 30.
8
An Aryl Hydrocarbon Receptor from the Salamander Ambystoma mexicanum Exhibits Low Sensitivity to 2,3,7,8-Tetrachlorodibenzo-p-dioxin.来自美西钝口螈的芳烃受体对2,3,7,8-四氯二苯并对二噁英表现出低敏感性。
Environ Sci Technol. 2015 Jun 2;49(11):6993-7001. doi: 10.1021/acs.est.5b01299. Epub 2015 May 21.
9
Anti-androgen flutamide suppresses hepatocellular carcinoma cell proliferation via the aryl hydrocarbon receptor mediated induction of transforming growth factor-β1.抗雄激素氟他胺通过芳烃受体介导的转化生长因子-β1的诱导来抑制肝癌细胞增殖。
Oncogene. 2015 Dec 10;34(50):6092-104. doi: 10.1038/onc.2015.55. Epub 2015 Apr 13.
10
In silico analysis of the interaction of avian aryl hydrocarbon receptors and dioxins to decipher isoform-, ligand-, and species-specific activations.计算机模拟分析禽类芳香烃受体与二恶英的相互作用,以揭示同工型、配体和物种特异性的激活。
Environ Sci Technol. 2015 Mar 17;49(6):3795-804. doi: 10.1021/es505733f. Epub 2015 Mar 3.

芳烃受体(AhR)结构及相互作用的分子建模能够揭示配体依赖性激活和转化机制。

Molecular modeling of the AhR structure and interactions can shed light on ligand-dependent activation and transformation mechanisms.

作者信息

Bonati Laura, Corrada Dario, Tagliabue Sara Giani, Motta Stefano

机构信息

Department of Earth and Environmental Sciences, University of Milano-Bicocca, Piazza della Scienza 1, 20126 Milan, Italy.

出版信息

Curr Opin Toxicol. 2017 Feb;2:42-49. doi: 10.1016/j.cotox.2017.01.011. Epub 2017 Feb 1.

DOI:10.1016/j.cotox.2017.01.011
PMID:28497129
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5421400/
Abstract

Molecular modeling has given important contributions to elucidation of the main stages in the AhR signal transduction pathway. Despite the lack of experimentally determined structures of the AhR functional domains, information derived from homologous systems has been exploited for modeling their structure and interactions. Homology models of the AhR PASB domain have provided information on the binding cavity and contributed to elucidate species-specific differences in ligand binding. Molecular Docking simulations of the ligand binding process have given insights into differences in binding of diverse agonists, antagonists, and selective AhR modulators, and their application to virtual screening of large databases of compounds have allowed identification of novel AhR ligands. Recently available structural information on protein-protein and protein-DNA complexes of other bHLH-PAS systems has opened the way for modeling the AhR:ARNT dimer structure and investigating the mechanisms of AhR transformation and DNA binding. Future research directions should include simulation of the protein dynamics to obtain a more reliable description of intermolecular interactions involved in signal transmission.

摘要

分子建模为阐明芳烃受体(AhR)信号转导途径的主要阶段做出了重要贡献。尽管缺乏AhR功能域的实验确定结构,但源自同源系统的信息已被用于对其结构和相互作用进行建模。AhR PASB结构域的同源模型提供了关于结合腔的信息,并有助于阐明配体结合中的物种特异性差异。配体结合过程的分子对接模拟深入了解了不同激动剂、拮抗剂和选择性AhR调节剂结合的差异,并且将其应用于化合物大型数据库的虚拟筛选,已能够鉴定新型AhR配体。最近获得的关于其他bHLH-PAS系统的蛋白质-蛋白质和蛋白质-DNA复合物的结构信息,为建模AhR:ARNT二聚体结构以及研究AhR转化和DNA结合机制开辟了道路。未来的研究方向应包括模拟蛋白质动力学,以获得对信号转导中涉及的分子间相互作用更可靠的描述。