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Soil minerals and organic matters affect ARGs transformation by changing the morphology of plasmid and bacterial responses

  • Hongyu Shi
  • , Xinyi Hu
  • , Jin Zhang
  • , Wenxuan Li
  • , Jiang Xu
  • , Baolan Hu
  • , Liping Ma*
  • , Liping Lou*
  • *此作品的通讯作者
  • Zhejiang University
  • Key Laboratory of Water Pollution Control and Environmental Safety of Zhejiang Province

科研成果: 期刊稿件文章同行评审

摘要

Soil environment is a vital place for the occurrence and spread of antibiotic resistant bacteria (ARB) and antibiotic resistance genes (ARGs). Extracellular DNA-mediated transformation is an important pathway for ARGs horizontal transfer and widely exists in soil environment. However, little information is available on how common soil components affect ARGs transformation. Here, three minerals (quartz, kaolinite, and montmorillonite) and three organic matters (humic acid, biochar, and soot) were selected as typical soil components. A small amount in suspension (0.2 g/L) of most soil components (except for quartz and montmorillonite) promoted transformant production by 1.1–1.6 folds. For a high amount (8 g/L), biochar significantly promoted transformant production to 1.5 times, kaolinite exerted a 30 % inhibitory effect. From the perspective of plasmid, biochar induced a higher proportion of supercoiled plasmid than kaolinite; more dissolved organic matter and metal ions facilitated plasmid aggregation under the near-neutral pH, thus promoted transformation. As for the influence of materials on recipient, although biochar and kaolinite both increased reactive oxygen species (ROS) level and membrane permeability, biochar up-regulated more ROS related genes, resulting in intracellular ROS production and up-regulating the expression of carbohydrate metabolism and transformation related genes. While kaolinite inhibited transformation mainly by causing nutrient deficiency.

源语言英语
期刊论文编号131727
期刊Journal of Hazardous Materials
457
DOI
出版状态已出版 - 5 9月 2023

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