头孢氨苄对硝化系统中亚硝酸盐积累、抗生素降解和微生物群落结构的影响。

Journal of hazardous materials Pub Date : 2024-10-05 Epub Date: 2024-08-04 DOI:10.1016/j.jhazmat.2024.135430
Zhiqiang Tang, Hong Liu, Yunxia Wang, Qi Wang, Li Zhang, Fangjiao An, Yongzhi Chen
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引用次数: 0

摘要

各种抗生素在临床和农业上的大量使用导致其在污水处理厂中的广泛使用。然而,有关抗生素对亚硝酸盐积累的影响、抗生素降解途径或硝化系统中微生物群落结构的研究却很少。本研究使用实验室规模的序批式反应器处理含有不同剂量(5、10、15 和 20 mg/L)头孢氨苄(CFX)的废水。结果表明,随着 CFX 浓度的增加,硝化性能逐渐受到抑制。氨氧化细菌(AOB)比亚硝酸盐氧化细菌(NOB)更耐受 CFX。在 15 毫克/升 CFX 的条件下,NOB 被完全抑制,而 AOB 则受到部分抑制。实现了部分亚硝酸盐化。CFX 可通过细菌共代谢降解为 2-hydroxy-3phenylpyrazine 和环己烷,随着硝化性能的降低,CFX 降解逐渐减少。随着 CFX 浓度的增加,硝化弧菌的数量也逐渐减少。Ferruginibacter 、Hydrogenophaga、Thauera 和 Pseudoxanthomonas 的相对丰度分别为 13.2 %、0.4 %、0.9 % 和 1.3 %,表明它们在抗生素降解中可能发挥作用。这些发现深入揭示了抗生素与微生物群落之间的相互作用,有助于更好地了解硝化系统中的抗生素降解情况。
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Impacts of cefalexin on nitrite accumulation, antibiotic degradation, and microbial community structure in nitrification systems.

The intensive use of various antibiotics for clinical and agricultural purposes has resulted in their widespread use in wastewater treatment plants. However, little research has been conducted on the effects of antibiotics on nitrite accumulation, antibiotic degradation pathways, or the microbial community structure in nitrification systems. In this study, a laboratory-scale sequencing batch reactor was used to treat wastewater containing cefalexin (CFX) at different doses (5, 10, 15, and 20 mg/L). The results showed that the nitrification performance was gradually inhibited with increasing CFX concentration. Ammonia-oxidizing bacteria (AOB) are more tolerant to CFX than nitrite-oxidizing bacteria (NOB). Under 15 mg/L of CFX, NOB were completely suppressed, whereas AOB were partially inhibited, as evidenced by an ammonium removal efficiency of 60 % and a 90 % of nitrite accumulation ratio. The partial nitritation was achieved. CFX can be degraded into 2-hydroxy-3phenylpyrazine and cyclohexane through bacterial co-metabolism, and CFX degradation gradually diminishes with decreasing nitrification performance. The abundance of Nitrospira gradually decreased with increasing CFX concentration. Ferruginibacter, Hydrogenophaga, Thauera, and Pseudoxanthomonas were detected at relative abundances of 13.2 %, 0.4 %, 0.9 %, and 1.3 %, respectively, indicating their potential roles in antibiotic degradation. These findings provide insight into the interactions between antibiotics and microbial communities, which are beneficial for a better understanding of antibiotic degradation in nitrification systems.

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