Ministry of Education Key Laboratory of Integrated Regulation and Resources Development on Shallow Lakes, College of Environment, Hohai University, Nanjing 210098, People's Republic of China.
Ministry of Education Key Laboratory of Integrated Regulation and Resources Development on Shallow Lakes, College of Environment, Hohai University, Nanjing 210098, People's Republic of China.
Sci Total Environ. 2019 Feb 25;653:705-713. doi: 10.1016/j.scitotenv.2018.10.354. Epub 2018 Nov 2.
In this study, we investigated the effects of copper oxide (CuO) NPs on freshwater sediment biofilms in terms of the functional properties and microbial community structure. Biofilms were incubated in microcosms and CuO NPs (1 mg/L uncoated and humic-acid-coated) were exposed with Cu (Cu(NO)) as the positive control. As determined from DO (dissolved oxygen) microelectrodes measurements, a high-DO region emerged inside the biofilms after 5-day exposure to CuO NPs compared with those before NP additions, which suggested CuO NPs inhibit the oxygen respiration activity. These results were consistent with the decreased heterotrophic respiration. CuO NPs significantly altered the bacterial community composition and decreased the abundances of Anaerolineaceae, Acidobacteria, Aminicenantes, and Anaerolinea. Functional analysis from PICRUSt (Phylogenetic Investigation of Communities by Reconstruction of Unobserved States)-predicted metagenomes indicated that bacterial genera depleted by CuO NP treatments were related to carbohydrate and glycan biosynthesis and metabolism, and biosynthesis of other secondary metabolites. These functional profiles combined with the decreased activities of extracellular enzymes, β-glucosidase (GLU) and l-leucine aminopeptidase (LAP), suggested that the introduction of CuO NPs exhibit negative effects on the biogeochemical processes and the cycling of carbon and nitrogen in biofilm systems. Whereas these toxic effects of CuO NPs could be mitigated when the aquatic environment is enriched with natural organic matters such as humic acid.
在这项研究中,我们研究了氧化铜 (CuO) NPs 对淡水沉积物生物膜的功能特性和微生物群落结构的影响。生物膜在微宇宙中孵育,并暴露于 CuO NPs(1mg/L 未涂层和腐殖酸涂层)和 Cu(Cu(NO))作为阳性对照。从溶解氧(DO)微电极测量结果来看,与添加 NP 之前相比,在 5 天暴露于 CuO NPs 后,生物膜内部出现了高 DO 区域,这表明 CuO NPs 抑制了氧气呼吸活性。这些结果与异养呼吸减少一致。CuO NPs 显著改变了细菌群落组成,降低了 Anaerolineaceae、Acidobacteria、Aminicenantes 和 Anaerolinea 的丰度。来自 PICRUSt(通过重建未观察状态的群落进行系统发育分析)预测宏基因组的功能分析表明,CuO NP 处理耗尽的细菌属与碳水化合物和聚糖生物合成和代谢以及其他次生代谢物的生物合成有关。这些功能谱结合胞外酶β-葡萄糖苷酶 (GLU) 和 l-亮氨酸氨肽酶 (LAP) 的活性降低,表明 CuO NPs 的引入对生物膜系统中碳和氮的生物地球化学过程和循环表现出负面影响。然而,当水生环境富含天然有机物(如腐殖酸)时,CuO NPs 的这些毒性作用可以得到缓解。