4.7 Article

Microbial response and adaption to thallium contamination in soil profiles

期刊

JOURNAL OF HAZARDOUS MATERIALS
卷 423, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.jhazmat.2021.127080

关键词

Thallium; Microorganism; Ecological network; Microbial interactions; Biogeochemical cycles

资金

  1. National Natural Science Foundation of China [42173007, 41873015, 41773011, 41830753, 41877290]
  2. Guangdong Provincial Natural Science Foundation [2021B1515020078, 2021A1515011588, 2014A030313527]
  3. Science and Technology Planning Project of Guangdong Province, China [2020B1212060055]
  4. Scientific Research Projects in Colleges and Universities of Guangzhou Education Bureau, Guangzhou, China [201831803]

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This study investigated the co-occurrence patterns of bacterial communities in two different soil profiles near a typical Tl-bearing pyrite mine using 16S rRNA sequencing and network analysis. Results indicated that geochemical parameters were key in shaping microbial community distribution and that microbial modules were significantly associated with variations in Tl geochemical fractionation. The findings may aid in the development of bioremediation strategies for Tl-contaminated soils utilizing indigenous microbes.
Thallium (Tl) is a trace metal with high toxicity. Comprehensive investigation of spatial distribution of Tl and microorganism is still limited in soils from mining area. In this study, 16S rRNA sequencing and network analysis were used for deciphering the co-occurrence patterns of bacterial communities in two different types of soil profiles around a typical Tl-bearing pyrite mine. The results showed that geochemical parameters (such as pH, S, Tl, Fe and TOM) were the driving forces for shaping the vertical distribution of microbial community. According to network analysis, a wide diversity of microbial modules were present in both soil profiles and affected by depth, significantly associated with variations in Tl geochemical fractionation. Phylogenetic information further unveiled that the microbial modules were mainly dominated by Fe reducing bacteria (FeRB), Fe oxidizing bacteria (FeOB), S oxidizing bacteria and Mn reducing bacteria. The results of metagenome indicated that Fe, Mn and S cycle in soil are closely involved in the biogeochemical cycle of Tl. The findings of co-occurrence patterns in the bacterial network and correlation between microorganisms and different geochemical fractions of Tl may benefit the strategy of bioremediation of Tl-contaminated soils with indigenous microbes.

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