Department of Biological Sciences, University of Calgary, 2500 University Drive NW, Calgary, Alberta, T2N 1N4, Canada.
Department of Biological Sciences, University of Calgary, 2500 University Drive NW, Calgary, Alberta, T2N 1N4, Canada.
Environ Res. 2021 Nov;202:111665. doi: 10.1016/j.envres.2021.111665. Epub 2021 Jul 10.
The antidepressant venlafaxine can be found at levels nearing μg/L in waterways receiving municipal wastewater effluent, exposing non-target organisms, such as fish, to this chemical. We showed previously that zygotic exposure to venlafaxine alters neurodevelopment and behaviour in zebrafish (Danio rerio) larvae. Here, we tested the hypothesis that the zygotic deposition of venlafaxine disrupts endocrine pathways related to growth in zebrafish. This was carried out by microinjecting embryos (1-4 cell stage) with either 0, 1, or 10 ng venlafaxine. Zygotic venlafaxine deposition reduced the growth of fish after 30 days post-fertilization. Specific growth rate was particularly impacted by 1 ng venlafaxine. This growth retardation corresponded with the disruption of endocrine pathways involved in growth and metabolism. Venlafaxine exposed embryos displayed reduced transcript abundance of key genes involved in anabolic hormone action. Early-life venlafaxine exposure also reduced whole-body insulin and glucose content in juveniles. Target-tissue glucose uptake measurements indicated that high venlafaxine deposition preferentially increased glucose uptake to the brain. Zygotic venlafaxine did not affect feed intake nor altered the transcript abundance of key feeding-related peptides. Taken together, zygotic venlafaxine deposition compromises zebrafish growth by disrupting multiple endocrine pathways, and this study has identified key markers for potential use in risk assessment.
抗抑郁药文拉法辛在接收城市废水的水道中可以达到μg/L 级水平,使非目标生物(如鱼类)暴露于这种化学物质之下。我们之前已经表明,胚胎期暴露于文拉法辛会改变斑马鱼(Danio rerio)幼鱼的神经发育和行为。在这里,我们检验了这样一个假设,即文拉法辛的胚胎沉积会破坏与鱼类生长相关的内分泌途径。这是通过将胚胎(1-4 细胞期)显微注射 0、1 或 10ng 文拉法辛来实现的。胚胎期文拉法辛沉积会降低受精后 30 天鱼的生长。1ng 文拉法辛特别影响特定生长率。这种生长迟缓与参与生长和代谢的内分泌途径的破坏有关。暴露于文拉法辛的胚胎显示出参与合成代谢激素作用的关键基因的转录丰度降低。早期生命中文拉法辛暴露还降低了幼鱼的全身胰岛素和葡萄糖含量。靶组织葡萄糖摄取测量表明,高文拉法辛沉积优先增加大脑的葡萄糖摄取。胚胎期文拉法辛沉积既不影响采食量,也不改变关键摄食相关肽的转录丰度。总之,胚胎期文拉法辛沉积通过破坏多种内分泌途径来损害斑马鱼的生长,并且本研究已经确定了潜在用于风险评估的关键标记物。