Mechanism and Association between Microbial Nitrogen Transformation in Rhizosphere and Accumulation of Ciprofloxacin in Choysum (Brassica parachinensis)

根际 芸苔属 细菌 污染物 生物 硝化作用 反硝化 硝酸盐 微生物 植物 氮气 环境化学 化学 生态学 遗传学 有机化学
作者
Jian-Fang Yan,Lei Xiang,Biying Zhang,Can Tang,You-Qun Xie,Yan-Wen Li,Nai-Xian Feng,Bailin Liu,Hui Li,Quan-Ying Cai,Qing X. Li,Hai-Ming Zhao,Ce-Hui Mo
出处
期刊:Environmental Science & Technology [American Chemical Society]
卷期号:57 (42): 16053-16064 被引量:6
标识
DOI:10.1021/acs.est.3c04709
摘要

Rhizosphere microbiota are an important factor impacting plant uptake of pollutants. However, little is known about how microbial nitrogen (N) transformation in the rhizosphere affects the uptake and accumulation of antibiotics in plants. Here, we determined recruitment of N transformation functional bacteria upon ciprofloxacin (CIP) exposure, by comparing differences in assembly processes of both rhizospheric bacterial communities and N transformation between two choysum (Brassica parachinensis) varieties differing in CIP accumulation. The low accumulation variety (LAV) of CIP recruited more host bacteria (e.g., Nitrospiria and Nitrolancea) carrying nitrification genes (mainly nxrA) but fewer host bacteria carrying denitrification genes, especially narG, relative to the high accumulation variety (HAV) of CIP. The nxrA and narG abundance in the LAV rhizosphere were, respectively, 1.6-7.8 fold higher and 1.4-3.4 fold lower than those in the HAV rhizosphere. Considering that nitrate can decrease CIP uptake into choysum through competing for the proton motive force and energy, such specific bacteria recruitment in LAV favored the production and utilization of nitrate in its rhizosphere, thus limiting its CIP accumulation with 1.6-2.4 fold lower than the HAV. The findings give insight into the mechanism underlying low pollutant accumulation, filling the knowledge gap regarding the profound effects of rhizosphere microflora and N transformation processes on antibiotic accumulation in crops.
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