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冷大气压等离子体(CAPP)处理对水中抗生素残留降解的评估

Assessment of Cold Atmospheric Pressure Plasma (CAPP) Treatment for Degradation of Antibiotic Residues in Water.

作者信息

Wielogorska Ewa, Flynn Padrig B, Meneely Julie, Thompson Thomas P, Graham William G, Gilmore Brendan F, Elliott Christopher T

机构信息

Institute for Global Food Security, Queen's University Belfast, Belfast BT9 5DL, UK.

School of Pharmacy, Queen's University Belfast, Belfast BT9 7BL, UK.

出版信息

Antibiotics (Basel). 2023 Jun 28;12(7):1115. doi: 10.3390/antibiotics12071115.

Abstract

The presence of antibiotic residues in water is linked to the emergence of antibiotic resistance globally and necessitates novel decontamination strategies to minimize antibiotic residue exposure in both the environment and food. A holistic assessment of cold atmospheric pressure plasma technology (CAPP) for β-lactam antibiotic residue removal is described in this study. CAPP operating parameters including plasma jet voltage, gas composition and treatment time were optimized, with highest β-lactam degradation efficiencies obtained for a helium jet operated at 6 kV. Main by-products detected indicate pH-driven peroxidation as a main mechanism of CAPP-induced decomposition of β-lactams. No in vitro hepatocytotoxicity was observed in HepG2 cells following exposure to treated samples, and exposed to CAPP-degraded β-lactams did not exhibit resistance development. In surface water, over 50% decrease in antibiotic levels was achieved after only 5 min of treatment. However, high dependence of treatment efficiency on residue concentration, pH and presence of polar macromolecules was observed.

摘要

水中抗生素残留的存在与全球抗生素耐药性的出现有关,因此需要新的去污策略,以尽量减少环境和食品中抗生素残留的暴露。本研究描述了对冷大气压等离子体技术(CAPP)去除β-内酰胺类抗生素残留的全面评估。对包括等离子体射流电压、气体成分和处理时间在内的CAPP操作参数进行了优化,在6 kV运行的氦气射流中获得了最高的β-内酰胺降解效率。检测到的主要副产物表明,pH驱动的过氧化是CAPP诱导β-内酰胺分解的主要机制。在暴露于处理后的样品后,HepG2细胞未观察到体外肝细胞毒性,并且暴露于CAPP降解的β-内酰胺类物质中未出现耐药性发展。在地表水中,仅处理5分钟后抗生素水平就降低了50%以上。然而,观察到处理效率高度依赖于残留浓度、pH值和极性大分子的存在。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d14b/10376056/4b62eadbd676/antibiotics-12-01115-g001.jpg

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