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首页> 外文期刊>Environmental Science and Pollution Research >Effects of PVP-coated silver nanoparticles on enzyme activity, bacterial and archaeal community structure and function in a yellow-brown loam soil
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Effects of PVP-coated silver nanoparticles on enzyme activity, bacterial and archaeal community structure and function in a yellow-brown loam soil

机译:PVP涂层银纳米粒子对黄褐色壤土土壤酶活性,细菌和古群落结构及功能的影响

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摘要

The undesirable effects of silver nanoparticles (AgNPs) on soil environment have caused much concern. The previous studies, however, focused on sandy soil, with little known on others. In present study, the effects of polyvinylpyrrolidone-coated AgNPs (0, 1, 10, and 100 mg kg(- 1) soil) on enzyme activities (urease and dehydrogenase), ammonia-oxidizing bacteria (AOB) and archaea (AOA), bacterial and archaeal communities, and microbial function profile in a yellow-brown loam soil were investigated. The significant dose-response inhibitions of AgNPs on enzyme activities were observed, with dehydrogenase more susceptible to AgNPs. Both of bacterial and archaeal amoA genes were reduced by AgNPs above 10 mg kg(- 1), with AOB more susceptible to AgNPs than AOA. AgNPs at 100 mg kg(- 1) caused reductions on the dominant Nitrosospira and Nitrosomonas, and even disappearance on Nitrosovibrio, while increase on Nitrososphaera significantly. AgNPs also changed bacterial and archaeal community structure. Exposure to AgNPs at 100 mg kg(- 1) caused significant increases by 186.79% and 44.89% for Bacteroidetes and Proteobacteria, while decreases by 47.82%, 44.09%, 43.67%, and 80.44% for Actinobacteria, Chloroflexi, Planctomycetes, and Verrucomicrobia, respectively. Moreover, three dominant archaeal phyla (Thaumarchaeota, Euryarchaeota, and Parvarchaeota) were also reduced in the presence of AgNPs, especially Thaumarchaeota with the significant reduction of 13.71%. PICRUSt prediction revealed that AgNPs indeed had the potential to change soil microbial community's functional contributions. It must be cautious on the interference of AgNPs to soil ecological functions in the future.
机译:银纳米粒子(的AgNPs)对土壤环境的不良影响,引起了许多关注。以前的研究,但是,专注于沙质土壤,很少对别人知道。在本研究中,聚乙烯吡咯烷酮 - 涂覆的AgNPs的效果(0,1,10,和100毫克公斤( - 1)土)上的酶活性(脲酶和脱氢酶),氨氧化细菌(AOB)和古菌(AOA),在黄棕色壤土细菌和古细菌群落和微生物功能的个人资料进行了调查。未观察到对酶活性的AgNPs的显著剂量 - 反应的抑制,与脱氢酶的AgNPs更敏感。两者的细菌和古AMOA基因通过减少的AgNPs高于10毫克公斤( - 1),与AOB到的AgNPs比AOA更敏感。的AgNPs以100mg公斤( - 1)上的主导Nitrosospira和亚硝化单胞,并在亚硝化甚至消失引起的减少,而在Nitrososphaera增加显著。的AgNPs也改变了细菌和古细菌群落结构。暴露于在100的AgNPs毫克公斤( - 1)引起的186.79%和44.89%对拟杆菌和变形菌显著的增加,而由47.82%,44.09%,43.67%,以及80.44%为放线菌,绿弯菌门,浮霉菌门,和疣微菌门减小,分别。此外,三个显性古细菌类群(Thaumarchaeota,广古菌门,和Parvarchaeota)也与显著减少13.71%减少的AgNPs的存在,尤其是Thaumarchaeota。 PICRUSt预测表明,确实的AgNPs不得不改变土壤微生物群落的功能贡献的潜力。它必须是对的AgNPs今后的干扰,土壤生态功能谨慎。

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