首页> 外文期刊>Annals of microbiology >The inhibitory effect of cadmium and/or mercury on soil enzyme activity, basal respiration, and microbial community structure in coal mine–affected agricultural soil
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The inhibitory effect of cadmium and/or mercury on soil enzyme activity, basal respiration, and microbial community structure in coal mine–affected agricultural soil

机译:镉和/或汞对土壤酶活性,基础呼吸和微生物群落结构的抑制作用 - 受煤矿区影响农业土壤

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Purpose The Cd and Hg contents in soils can be elevated due to coal mining. To estimate the effects of these two heavy metals on soil enzymes and the key microbial groups, coal mine–affected agricultural soils were cultured for 30?days with Cd and/or Hg. Methods Soil enzyme activities were measured by a colorimetric method, and microbial abundance was assessed according to real-time quantitative PCR analysis of the 16S rRNA and 18S rRNA genes. In addition, the microbial communities were analyzed by Illumina sequencing. Results Heavy metals inhibited soil enzyme activities. For example, both Cd and Hg decreased 25.52–34.89% of the soil catalase activity; the highest level of Hg (30?mg?kg_(?1)) decreased 76.50–89.88% of the soil urease activity and 85.60–92.92% of the soil dehydrogenase activity; and the soil acid phosphatase activity significantly decreased by 15.18–32.64% under all the levels of Cd and decreased 17.09–30.32% under the high levels of the Cd–Hg combination (>?3?mg?kg_(?1)). In addition, increased Cd levels affected bacterial number more than fungal abundance; however, addition of Hg alone decreased the bacterial number but increased the fungal abundance. Furthermore, the bacterial communities but not fungal communities were altered by heavy metals. A total of 23 highly sensitive genera and 16 highly resistant genera were identified. The sensitive genera were assigned to Actinobacteria, Acidobacteria, Candidate division WS3, Chloroflexi, Gemmatimonadetes, Proteobacteria, and Thermotogae, while the resistant genera were affiliated to Bacteroidetes and Proteobacteria. Conclusion Soils containing the highest level of the combination of Cd and Hg exhibited the lowest soil enzyme activities; bacterial communities were more sensitive to heavy metal contamination than fungi.
机译:目的,由于煤矿,土壤中的CD和Hg含量可以提高。为了估算这两种重金属对土壤酶的影响和关键的微生物群,煤矿受影响的农业土壤培养30?天,CD和/或Hg。方法采用比色法测量土壤酶活性,根据16S rRNA和18S rRNA基因的实时定量PCR分析评估微生物丰度。此外,通过illumina测序分析微生物群落。结果重金属抑制土壤酶活性。例如,Cd和Hg均降低了土壤过敏酶活性的25.52-34.89%;最高水平的Hg(30?mg?kg _(α1))降低了土壤尿素活性的76.50-89.88%,85.60-92.92%的土壤脱氢酶活性;在CD的所有水平下,土壤酸性磷酸酶活性显着降低了15.18-32.64%,在CD-Hg组合的高水平下减少了17.09-30.32%(> 3×mg?kg _(α1))。此外,增加CD水平影响细菌数量超过真菌丰度;然而,单独添加Hg降低细菌数,但增加了真菌丰度。此外,细菌群落但不是真菌社区被重金属改变。鉴定了总共23个高度敏感的永久性的15个高度抗性。将敏感的属分配给抗菌菌,抗酸杆菌,候选划分WS3,氯昔上,GemmatimonAdetes,植物和热量,而抗性属隶属于菌体和植物。结论含有最高水平的CD和HG组合的土壤表现出最低土壤酶活性;细菌群落对重金属污染比真菌更敏感。

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