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首页> 外文期刊>Journal of Environmental Science and Health. A, Toxic/Hazardous Substances & Environmental Engineering >Degradation of the long-resistant pharmaceutical compounds carbamazepine and diatrizoate using mixed microbial culture
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Degradation of the long-resistant pharmaceutical compounds carbamazepine and diatrizoate using mixed microbial culture

机译:混合微生物培养法降解耐久药物卡马西平和泛影酸盐

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摘要

The microbial degradation of two recalcitrant pharmaceutical compounds, carbamazepine (CBZ) and diatrizoate (DTZ), was studied in laboratory batch experiments. We used a defined mixed microbial culture comprising four distinct microbial species that were previously known to have high decomposition capacity toward recalcitrant substances. Biological decomposition in liquid phase cultures for either CBZ or DTZ, or in a combination of the two, was conducted for 12days. DTZ and CBZ were degraded by 43.2% and 60%, respectively from an initial concentration of 100 mu g L-1. When degradation was assessed using a mixture of the two compounds, the initial degradation rates of CBZ and DTZ were lower than those observed in the single-compound study. However, the final cumulative removal efficiency was very similar. The extent of dissolved organic carbon (DOC) removal was correlated with the degradation of the pharmaceuticals.
机译:在实验室批量实验中研究了两种顽固性药物化合物卡马西平(CBZ)和泛影酸盐(DTZ)的微生物降解。我们使用了一种明确的混合微生物培养物,该培养物包含四种不同的微生物,这些微生物先前已知对难降解物质具有高分解能力。 CBZ或DTZ或两者结合在液相培养物中进行的生物分解进行了12天。从100μgL-1的初始浓度开始,DTZ和CBZ分别降解了43.2%和60%。当使用两种化合物的混合物评估降解时,CBZ和DTZ的初始降解率低于单化合物研究中观察到的降解率。但是,最终的累积去除效率非常相似。溶解的有机碳(DOC)去除的程度与药物的降解程度相关。

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