[Pollution Characteristics and Driving Factors of Antibiotic Resistance Genes in Dexing Copper Mine]

Huan Jing Ke Xue. 2022 Feb 8;43(2):1089-1096. doi: 10.13227/j.hjkx.202105243.
[Article in Chinese]

Abstract

Environmental antibiotic resistance genes (ARGs) are a type of emerging pollutant that has been widely concerning. However, investigations into the contamination of ARGs in mining areas have been scarce. Here, the types, abundances, and influencing factors of ARGs and mobile genetic elements (MGEs) were investigated in soil/sediment of the Dexing copper mine area in June 2019 by using high-throughput quantitative polymerase chain reaction (HT-qPCR). Furthermore, the influence of heavy metals and MGEs factors on ARGs was studied using the multivariate statistical analysis method. The results showed that there were a variety of ARGs in the Dexing copper mining area, and the maximum detected number of ARGs was 70. At the relative abundance level, the relative abundance of individual sites reached 0.085. In the Dexing copper mine, multidrug, MLSB, β-lactamases, tetracycline, and aminoglycoside resistance genes were the dominant ARG classes based on their numbers. The efflux pump was the most dominant resistance mechanism, followed by antibiotic deactivation and cellular protection. There was a significant positive correlation between the abundance of ARGs and MGEs (P<0.05), and TnpA04 and Inti1 were the most important MEGs in Dexing copper mine samples, indicating that horizontal gene transfer might be an important mechanism for the spread of environmental ARGs. The results of Pearson correlation analysis and RDA analysis showed that the content of Cu was significantly positively correlated with the detected numbers and abundance of ARGs (P<0.05), suggesting that the high content of Cu in the Dexing copper mining area might be an important driving factor for the formation of ARGs.

Keywords: Dexing copper mine; antibiotic resistance genes (ARGs); driving factors; heavy metals; high-throughput quantitative polymerase chain reaction (HT-qPCR).

MeSH terms

  • Anti-Bacterial Agents* / pharmacology
  • Copper* / toxicity
  • Drug Resistance, Microbial / genetics
  • Genes, Bacterial / genetics
  • Soil

Substances

  • Anti-Bacterial Agents
  • Soil
  • Copper