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首页> 外文期刊>Ecotoxicology and Environmental Safety >The toxic effect of triclosan and methyl-triclosan on biological pathways revealed by metabolomics and gene expression in zebrafish embryos
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The toxic effect of triclosan and methyl-triclosan on biological pathways revealed by metabolomics and gene expression in zebrafish embryos

机译:三氯生和甲基三氯生对代谢组学和基因表达在斑马鱼胚胎中揭示的生物途径的毒性作用

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摘要

The omnipresence of antimicrobial triclosan (TCS) and by-products in aquatic environments is a threat to aquatic organisms. Traditionally, the adverse effects of TCS and its by-products have been evaluated by examining the phenotypic output relevant to predicting acute toxicity rather than studying the perturbation of biological pathways. Identifying alterations in the key pathways and molecular mechanisms caused by toxic chemicals helps researchers assess the ecological risks of TCS and its by-products to aquatic environments. In this study, we used metabolomics and reverse transcription qPCR to investigate the adverse effects of a wide range of concentrations of triclosan and its derivative methyl-triclosan (MTCS), ranging from relatively low environmentally relevant levels (ng/L) to high-dose concentrations (sublethal concentration), on zebrafish (Danio rerio) embryos. The metabolism and transcriptome analysis revealed changes in the metabolite and transcripts expression of zebrafish embryos after 96 h exposure at 30 mu g/L and 300 mu g/L of TCS, 400 mu g/L of MTCS and the TCS/MTCS mixture (30 mu g/L TCS + 3 mu g/L MTCS and 300 mu g/L TCS + 30 mu g/L MTCS). Significant dysregulations in the expression of the urea transporter (UT), glucose-6-phosphate dehydrogenase (G6PD), alanine transaminase (ALT), glutamate dehydrogenase (GDH), phosphoglucomutase (PGM), and fatty acid synthase (FASN), together with changes in alanine, urea, glucose, 6-phosphogluconalactone, and palmitic acid were observed in the TCS, MTCS, and TCS/MTCS treatments. Particularly, the MTCS treatment group showed fold changes in the mRNA expression of nitrogen metabolism, energy metabolism, and fatty acid synthesis, indicating a disruption of the zebrafish embryos' biological pathways. The changes in the metabolites and gene expressions induced by the TCS, MTCS and the TCS/MTCS mixture treatment demonstrate the pathway changes in starch and sucrose metabolism, nitrogen metabolism, fatty acid synthesis, and phenylalanine, tyrosine and tryptophan biosynthesis. Therefore, our study provides better insights into the risks of the parental compound (TCS) and its by-product (MTCS), as well as the perturbation in biological pathways induced by these two compounds in aquatic environments.
机译:水生环境中无处不在的抗菌三氯生(TCS)和副产物对水生生物构成威胁。传统上,通过检查与预测急性毒性有关的表型输出,而不是研究生物途径的扰动,来评估TCS及其副产物的不利影响。识别有毒化学物质引起的关键途径和分子机理的变化,有助于研究人员评估TCS及其副产物对水生环境的生态风险。在这项研究中,我们使用了代谢组学和逆转录定量PCR技术研究了三氯生及其衍生物甲基三氯生(MTCS)的浓度范围很广,从相对较低的环境相关水平(ng / L)到高剂量,均存在不良反应。浓度(亚致死浓度),在斑马鱼(Danio rerio)胚胎上。代谢和转录组分析显示,在30μg / L和300μg / L的TCS,400μg / L的MTCS和TCS / MTCS混合液中暴露96 h后,斑马鱼胚胎的代谢产物和转录物表达发生了变化(30 (微克/公升TCS + 3微克/公升MTCS和300微克/公升TCS + 30微克/公升MTCS)。尿素转运蛋白(UT),6-磷酸葡萄糖脱氢酶(G6PD),丙氨酸转氨酶(ALT),谷氨酸脱氢酶(GDH),磷酸葡糖变酶(PGM)和脂肪酸合酶(FASN)的表达明显异常在TCS,MTCS和TCS / MTCS处理中观察到丙氨酸,尿素,葡萄糖,6-磷酸葡萄糖醛内酯和棕榈酸的变化。尤其是,MTCS治疗组在氮代谢,能量代谢和脂肪酸合成的mRNA表达上显示出倍数变化,表明斑马鱼胚胎的生物途径受到破坏。 TCS,MTCS和TCS / MTCS混合处理诱导的代谢物和基因表达的变化表明淀粉和蔗糖代谢,氮代谢,脂肪酸合成以及苯丙氨酸,酪氨酸和色氨酸的生物合成途径发生变化。因此,我们的研究为了解母体化合物(TCS)及其副产物(MTCS)的风险,以及这两种化合物在水生环境中引起的生物途径扰动提供了更好的见识。

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