The effects of lead, copper, and iron corrosion products on antibiotic resistant bacteria and antibiotic resistance genes†

IF 3.5 Q3 ENGINEERING, ENVIRONMENTAL Environmental science. Advances Pub Date : 2024-04-24 DOI:10.1039/D4VA00026A
Veronika Folvarska, San Marie Thomson, Zihao Lu, Maya Adelgren, Adam Schmidt, Ryan J. Newton, Yin Wang and Patrick J. McNamara
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Abstract

Antibiotic resistance is a public health crisis. Antibiotic resistant bacteria (ARB) and antibiotic resistance genes (ARGs) are present in drinking water distribution systems. Metals are known selective pressures for antibiotic resistance, and metallic corrosion products are found within drinking water distribution systems due to the corrosion of metal pipes. While corrosion products are a source of metals, the impact of specific corrosion products on antibiotic resistance has not been investigated. The objective of this study was to determine the impact of six corrosion products—CuO, Cu2O, Pb5(PO4)3OH, β-PbO2, Fe3O4, and α-FeOOH—on the abundance of ARB and ARGs. Lab-scale microcosms were seeded with source water from Lake Michigan and amended with individual corrosion products. In general, copper and lead corrosion products increased antibiotic resistance, although not universally across different ARB and ARG types. Concentration and speciation of copper and lead corrosion products were found to have an impact on antibiotic resistance profiles. Meanwhile, iron corrosion products had minimal impact on antibiotic resistance. Overall, this study sheds light on how pipe materials may impact antibiotic resistance as a result of corrosion products.

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铅、铜和铁腐蚀产物对抗生素耐药细菌和抗生素耐药基因的影响
抗生素耐药性是一场公共卫生危机。抗生素耐药细菌 (ARB) 和抗生素耐药基因 (ARG) 存在于饮用水输配系统中。金属是抗生素耐药性的已知选择性压力,由于金属管道的腐蚀,在饮用水输水系统中发现了金属腐蚀产物。虽然腐蚀产物是金属的一种来源,但具体腐蚀产物对抗生素耐药性的影响尚未进行调查。本研究旨在确定六种腐蚀产物(CuO、Cu2O、Pb5(PO4)3OH、β-PbO2、Fe3O4 和 α-FeOOH)对 ARB 和 ARG 丰度的影响。在实验室规模的微生态系统中加入了密歇根湖的原水,并用各种腐蚀产物进行了修正。一般来说,铜和铅腐蚀产物会增加抗生素耐药性,但在不同的 ARB 和 ARG 类型中并不普遍。研究发现,铜和铅腐蚀产物的浓度和种类对抗生素耐药性特征有影响。同时,铁腐蚀产物对抗生素耐药性的影响很小。总之,这项研究揭示了管道材料如何因腐蚀产物而影响抗生素耐药性。
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