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Coupled reversion and stream-hyporheic exchange processes increase environmental persistence of trenbolone metabolites

机译:反向结合和流-液交换过程增加了群勃龙代谢产物的环境持久性

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Existing regulatory frameworks for aquatic pollutants in the United States are idealized, often lacking mechanisms to account for contaminants characterized by (1) bioactivity of both the parent and transformation products and (2) reversible transformations (that is, metastable products) driven by chemical or physical heterogeneities. Here, we modelled a newly discovered product-to-parent reversion pathway for trenbolone acetate (TBA) metabolites. We show increased exposure to the primary metabolite, 17α-trenbolone (17α-TBOH), and elevated concentrations of the still-bioactive primary photoproduct hydroxylated 17α-TBOH, produced via phototransformation and then converted back to 17α-trenbolone in perpetually dark hyporheic zones that exchange continuously with surface water photic zones. The increased persistence equates to a greater potential hazard from parent-product joint bioactivity at locations and times when reversion is a dominant trenbolone fate pathway. Our study highlights uncertainties and vulnerabilities with current paradigms in risk characterization.
机译:美国现有的水生污染物监管框架已经过理想化,通常缺乏机制来说明以下特征的污染物:(1)母体和转化产物的生物活性,以及​​(2)由化学或化学驱动的可逆转化(即亚稳产物)物理异质性。在这里,我们模拟了新发现的醋酸群勃龙(TBA)代谢物的产物-母体回复途径。我们显示,通过光转化产生的初级代谢产物17α-群勃龙(17α-TBOH)的暴露增加,并且仍具有生物活性的初级光产物羟基化17α-TBOH的浓度升高,然后在永久性黑暗的低渗区将其转化回17α-群勃龙。与地表水的光学区域不断交换。持久性的提高等同于在返原是群勃龙重要的命运途径的位置和时间,母产品联合生物活性的潜在危害更大。我们的研究突出了当前风险表征范式的不确定性和脆弱性。

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