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Microbial community functional structure in response to antibiotics in pharmaceutical wastewater treatment systems

抗生素 微生物种群生物学 生物 细菌 微生物学 污水处理 抗生素耐药性 废水 木质素过氧化物酶 生物化学 过氧化物酶 遗传学 环境工程 工程类
作者
Yu Zhang,Jianping Xie,Miao Liu,Zhe Tian,Zhili He,Joy D. Van Nostrand,Ren Liren,Jizhong Zhou,Min Yang
出处
期刊:Water Research [Elsevier BV]
卷期号:47 (16): 6298-6308 被引量:117
标识
DOI:10.1016/j.watres.2013.08.003
摘要

It is widely demonstrated that antibiotics in the environment affect microbial community structure. However, direct evidence regarding the impacts of antibiotics on microbial functional structures in wastewater treatment systems is limited. Herein, a high-throughput functional gene array (GeoChip 3.0) in combination with quantitative PCR and clone libraries were used to evaluate the microbial functional structures in two biological wastewater treatment systems, which treat antibiotic production wastewater mainly containing oxytetracycline. Despite the bacteriostatic effects of antibiotics, the GeoChip detected almost all key functional gene categories, including carbon cycling, nitrogen cycling, etc., suggesting that these microbial communities were functionally diverse. Totally 749 carbon-degrading genes belonging to 40 groups (24 from bacteria and 16 from fungi) were detected. The abundance of several fungal carbon-degrading genes (e.g., glyoxal oxidase ( glx ), lignin peroxidase or ligninase ( lip ), manganese peroxidase ( mnp ), endochitinase, exoglucanase_genes) was significantly correlated with antibiotic concentrations (Mantel test; P < 0.05), showing that the fungal functional genes have been enhanced by the presence of antibiotics. However, from the fact that the majority of carbon-degrading genes were derived from bacteria and diverse antibiotic resistance genes were detected in bacteria, it was assumed that many bacteria could survive in the environment by acquiring antibiotic resistance and may have maintained the position as a main player in nutrient removal. Variance partitioning analysis showed that antibiotics could explain 24.4% of variations in microbial functional structure of the treatment systems. This study provides insights into the impacts of antibiotics on microbial functional structure of a unique system receiving antibiotic production wastewater, and reveals the potential importance of the cooperation between fungi and bacteria with antibiotic resistance in maintaining the stability and performance of the systems. • Microbial communities treating antibiotic wastewater were functionally diverse. • The role of fungal functional genes was enhanced by antibiotics. • Antibiotic resistant bacteria played a main role in carbon degradation.
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