Literature DB >> 33297275

Investigating the molecular mechanism of hydroxylated bromdiphenyl ethers to inhibit the thyroid hormone sulfotransferase SULT1A1.

Guangcai Ma1, Liming Geng1, Yuchen Lu1, Xiaoxuan Wei1, Haiying Yu2.   

Abstract

Hydroxylated bromodiphenyl ethers (OH-BDEs) have raised great concern due to their potential endocrine disrupting effects on humans. In vitro experiments have indicated OH-BDEs can inhibit the activity of thyroid hormone (TH) sulfotransferases (SULTs); however, the molecular mechanism has not been investigated in depth. In this work, we employed 17 OH-BDEs with five or fewer Br atoms, and performed integrated computational simulations to unravel the possible inhibition mechanism of OH-BDEs on human SULT1A1. The molecular docking results demonstrate that OH-BDEs form hydrogen bonds with residues Lys106 and His108, and the neutral OH-BDEs show comparable binding energies with their anionic counterparts. The further hybrid quantum mechanical/molecular mechanical (QM/MM) calculations unravel a metabolic mechanism of OH-BDEs comprised by proton abstraction and sulfation steps. This mechanism is involved in the SULT1A1 inhibition by some OH-BDEs comprised of three or fewer Br atoms, while other OH-BDEs likely only form ternary complexes to competitively inhibit SULT1A1 activity. Moreover, the effect of the hydroxyl group of OH-BDEs on SULT1A1 inhibition potential follows the order of ortho-OH BDE > meta-OH BDE > para-OH BDE. These results provide an insight into the inhibition mechanism of OH-BDEs to SULT1A1 at the molecular level, which are beneficial in illuminating the molecular initiating events involved in the TH disruption of OH-BDEs.
Copyright © 2020 Elsevier Ltd. All rights reserved.

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Keywords:  Inhibition mechanism; Molecular docking; OH-BDEs; QM/MM; Thyroid hormone (TH) sulfotransferase

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Year:  2020        PMID: 33297275     DOI: 10.1016/j.chemosphere.2020.128353

Source DB:  PubMed          Journal:  Chemosphere        ISSN: 0045-6535            Impact factor:   7.086


  1 in total

1.  Computational Insight into Biotransformation Profiles of Organophosphorus Flame Retardants to Their Diester Metabolites by Cytochrome P450.

Authors:  Yue Jia; Tingji Yao; Guangcai Ma; Qi Xu; Xianglong Zhao; Hui Ding; Xiaoxuan Wei; Haiying Yu; Zhiguo Wang
Journal:  Molecules       Date:  2022-04-28       Impact factor: 4.927

  1 in total

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