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地下水在矿业-农业复合区的抗基因积累:对地下矿物与陆地农业相互作用的宏基因组分析的见解。

Groundwater resistant gene accumulation in mining-agriculture complex zones: Insights from metagenomic analysis of subterranean mineral and terrestrial agricultural interactions.

机构信息

School of Environment and Spatial Informatics, China University of Mining and Technology, Xuzhou, 221116, China.

School of Environment and Spatial Informatics, China University of Mining and Technology, Xuzhou, 221116, China.

出版信息

Environ Res. 2024 Dec 15;263(Pt 2):120138. doi: 10.1016/j.envres.2024.120138. Epub 2024 Oct 10.

DOI:10.1016/j.envres.2024.120138
PMID:39393455
Abstract

During the Mining-Agriculture Complex Areas, the mining and agriculture activities could lead to an excessive presence of sulfate content in the regional groundwater. Sulfate exhibits the potential to influence the positive accumulation of RGs, although its mechanisms remain inadequately explored. To address this gap, this study analyzed the RGs buildup mechanisms in the groundwater of the mining-agriculture complex area. Results showed a widespread presence of antibiotic resistance genes (ARGs) and metal resistance genes (MRGs), especially in coal-seams crevice groundwater. And iron and sulfur are primary environmental factors conducive to RGs accumulation through a synergistic interaction. Microbial annotation of gene sets sourced from coal-seams crevice groundwater samples unveiled part of sulfur-metabolizing microorganisms that were hosts of both ARGs and MRGs. Mechanistic insights revealed that iron may stimulates reactive oxygen species (ROS) generation, facilitating RGs accumulation, while adjusting sulfur metabolism and the synthesis of iron-sulfur clusters, thereby augmenting microbial growth which as predominant hosts of RGs, thereby intensifying the buildup of RGs.

摘要

在采矿-农业复合区,采矿和农业活动可能导致区域地下水中硫酸盐含量过高。硫酸盐有可能影响 RG 的正向积累,尽管其机制尚未得到充分探索。为了解决这一差距,本研究分析了采矿-农业复合区地下水中 RG 的积累机制。结果表明,抗生素抗性基因 (ARGs) 和金属抗性基因 (MRGs) 广泛存在,尤其是在煤层裂隙地下水中。铁和硫是通过协同作用促进 RG 积累的主要环境因素。源自煤层裂隙地下水样本的基因集的微生物注释揭示了部分硫代谢微生物,它们是 ARGs 和 MRGs 的宿主。机制研究表明,铁可能会刺激活性氧物质 (ROS) 的产生,促进 RG 的积累,同时调节硫代谢和铁硫簇的合成,从而促进微生物的生长,作为 RG 的主要宿主,从而加剧 RG 的积累。

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