首页> 外文期刊>Environmental Science & Technology >Transcriptomic and Network Analyses Reveal Mechanistic-Based Biomarkers of Endocrine Disruption in the Marine Mussel, Mytilus edulis
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Transcriptomic and Network Analyses Reveal Mechanistic-Based Biomarkers of Endocrine Disruption in the Marine Mussel, Mytilus edulis

机译:转录组学和网络分析揭示了基于机理的海洋贻贝中的内分泌干扰生物标志物。

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摘要

Transcriptomics, high-throughput assays, and adverse outcome pathways (AOP) are promising approaches applied to toxicity monitoring in the 21st century, but development of these methods is challenging for nonmodel organisms and emerging contaminants. For example, Endocrine Disrupting Compounds (EDCs) may cause reproductive impairments and feminization of male bivalves; however, the mechanism linked to this adverse outcome is unknown. To develop mechanism-based biomarkers that may be linked through an AOP, we exposed Mytilus edulis to 17-alpha-ethinylestradiol (5 and 50 ng/L) and 4-nonylphenol (1 and 100 mu g/L) for 32 and 39 days. When mussels were exposed to these EDCs, we found elevated female specific transcripts and significant female-skewed sex ratios using a RT-qPCR assay. We performed gene expression analysis on digestive gland tissue using an M. edulis microarray and through network and targeted analyses identified the nongenomic estrogen signaling pathway and steroidogenesis pathway as the likely mechanisms of action for a putative AOP. We also identified several homologues to genes within the vertebrate steroidogenesis pathway including the cholesterol side chain cleavage complex. From this AOP, we designed the Coastal Biosensor for Endocrine Disruption (C-BED) assay which was confirmed in the laboratory and tested in the field.
机译:转录组学,高通量分析和不良结局途径(AOP)是在21世纪用于毒性监测的有前途的方法,但是这些方法的开发对于非模型生物和新出现的污染物具有挑战性。例如,内分泌干扰化合物(EDC)可能会导致男性双壳类动物的生殖功能障碍和女性化。但是,与这种不良结果相关的机制尚不清楚。为了开发可能通过AOP链接的基于机制的生物标记,我们将Mytilus edulis暴露于17-α-乙炔雌二醇(5和50 ng / L)和4-壬基苯酚(1和100μg / L)32天和39天。当贻贝暴露于这些EDC时,我们使用RT-qPCR分析法发现雌性特定转录本升高,雌性性别比显着升高。我们使用可食的分支杆菌微阵列并通过网络对消化腺组织进行了基因表达分析,并进行了针对性分析,确定了非基因组雌激素信号传导途径和类固醇生成途径是可能的AOP作用机制。我们还确定了脊椎动物类固醇生成途径内基因的几个同源物,包括胆固醇侧链裂解复合物。通过此AOP,我们设计了用于内分泌干扰的沿海生物传感器(C-BED)测定法,该测定法已在实验室中确认并在现场进行了测试。

著录项

  • 来源
    《Environmental Science & Technology》 |2018年第16期|9419-9430|共12页
  • 作者单位

    Univ Massachusetts Boston, Sch Environm, Boston, MA 02125 USA;

    Univ Massachusetts Boston, Sch Environm, Boston, MA 02125 USA;

    Univ Florida, Ctr Environm & Human Toxicol, Gainesville, FL 32611 USA;

    Univ Florida, Ctr Environm & Human Toxicol, Gainesville, FL 32611 USA;

    Univ Massachusetts Boston, Sch Environm, Boston, MA 02125 USA;

    Univ Massachusetts Boston, Sch Environm, Boston, MA 02125 USA;

  • 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
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  • 入库时间 2022-08-17 13:56:44

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