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Screening of potential oestrogen receptor a agonists in pesticides via in silico, in vitro and in vivo methods

机译:筛选潜在的雌激素受体在硅,体外和体内筛选杀虫剂中的激动剂

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摘要

In modern agricultural management, the use of pesticides is indispensable. Due to their massive use worldwide, pesticides represent a latent risk to both humans and the environment. In the present study, 1056 frequently used pesticides were screened for oestrogen receptor (ER) agonistic activity by using in silico methods. We found that 72 and 47 pesticides potentially have ER agonistic activity by the machine learning methods random forest (RF) and deep neural network (DNN), respectively. Among endocrinedisrupting chemicals (EDCs), 14 have been reported as EDCs or ER agonists by previous studies. We selected 3 reported and 7 previously unreported pesticides from 76 potential ER agonists to further assess ERa agonistic activity. All 10 selected pesticides exhibited ERa agonistic activity in human cells or zebrafish. In the dual-luciferase reporter gene assays, six pesticides exhibited ERa agonistic activity. Additionally, nine pesticides could induce mRNA expression of the pS2 and NRF1 genes in MCF-7 cells, and seven pesticides could induce mRNA expression of the vtg1 and vtg2 genes in zebrafish. Importantly, the remaining 48 out of 76 potential ER agonists, none of which have previously been reported to have endocrine-disrupting effects or oestrogenic activity, should be of great concern. Our screening results can inform environmental protection goals and play an important role in environmental protection and early warnings to human health. (C) 2020 Elsevier Ltd. All rights reserved.
机译:在现代农业管理中,使用杀虫剂是必不可少的。由于他们在全球范围内使用,农药代表人类和环境的潜在风险。在本研究中,通过在硅方法中使用1056种常用的农药用于雌激素受体(ER)激动活性。我们发现,72和47个农药可能通过机器学习方法随机森林(RF)和深神经网络(DNN)具有易毒性的活动。在内分泌型化学品(EDC)中,14次以前的研究报告为EDC或ER激动剂。我们选择3报道,76个潜在的eR激动剂的7个以前未报告的农药,以进一步评估时代的激动活动。所有10种选定的农药在人体细胞或斑马鱼中表现出时代的激动活性。在双荧光素酶报告基因测定中,六种农药表现出时代的激动活性。另外,九种农药可以诱导MCF-7细胞中PS2和NRF1基因的mRNA表达,七种农药可以诱导斑马鱼中VTG1和VTG2基因的mRNA表达。重要的是,剩余的48分中的76个潜在的呃激动剂,均未据报道,据报道具有内分泌破坏效应或雌激素的活动,应该是非常关注的。我们的筛选结果可以为环境保护目标通知环境保护目标,并在环境保护和早期警告中发挥重要作用。 (c)2020 elestvier有限公司保留所有权利。

著录项

  • 来源
    《Environmental Pollution》 |2021年第2期|116015.1-116015.10|共10页
  • 作者单位

    Xiamen Univ Sch Life Sci State Key Lab Cellular Stress Biol Xiangan South Rd Xiamen 361005 Fujian Peoples R China;

    Xiamen Univ Sch Life Sci State Key Lab Cellular Stress Biol Xiangan South Rd Xiamen 361005 Fujian Peoples R China;

    Xiamen Univ Sch Life Sci State Key Lab Cellular Stress Biol Xiangan South Rd Xiamen 361005 Fujian Peoples R China;

    Xiamen Univ Sch Life Sci State Key Lab Cellular Stress Biol Xiangan South Rd Xiamen 361005 Fujian Peoples R China;

    Xiamen Univ Sch Life Sci State Key Lab Cellular Stress Biol Xiangan South Rd Xiamen 361005 Fujian Peoples R China;

    Zhejiang Univ Technol Coll Environm Hangzhou 310014 Zhejiang Peoples R China;

    Xiamen Univ Sch Life Sci State Key Lab Cellular Stress Biol Xiangan South Rd Xiamen 361005 Fujian Peoples R China;

    Xiamen Univ Sch Life Sci State Key Lab Cellular Stress Biol Xiangan South Rd Xiamen 361005 Fujian Peoples R China|Xiamen Univ State Key Lab Marine Environm Sci Xiamen 361005 Fujian Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Pesticides; ER alpha agonists; Machine learning; Molecular docking; Zebrafish (Danio rerio);

    机译:杀虫剂;ER alpha激动剂;机器学习;分子对接;斑马鱼(Danio Rerio);

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