新疆奎屯河流域地下水中砷代谢相关微生物代谢特征及影响因素
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1.新疆农业大学水利与土木工程学院;2.新疆水利工程安全与水灾害防治重点实验室;3.新疆兵团勘测设计院集团股份有限公司

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新疆维吾尔自治区自然科学基金青年科学(2022D01B86);新疆自治区高校基本科研业务费科研项目(XJEDU2022J008);新疆维吾尔自治区重大专项(2023A02002-1);国家自然科学(41762018)


Metabolic Characteristics and Influencing Factors of Arsenic-Metabolizing Microorganisms in Groundwater of the Kuytun River Basin,Xinjiang
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    摘要:

    【目的】地下水中的砷浓度和形态受到微生物活动的显著影响和调控。奎屯河流域是典型的高砷区,而对奎屯河流域该区地下水中的砷代谢相关微生物代谢特征的研究尚显匮乏。【方法】本研究在奎屯河流域采集了11组地下水样本进行宏基因组测序,分析高砷和低砷地下水化学特征以及砷代谢相关微生物的群落结构和功能基因与环境因子之间的关联。【结果】结果表明,本研究区地下水的优势菌门为Proteobacteria(变形菌门)、Actinobacteria(放线菌门)、Planctomycetota(浮霉菌门)。在属水平上,低砷组样品的微生物群落展现出显著的物种丰富度和多样性优势。Nitrosomonas(亚硝化单胞菌属)、Thiobacillus(硫杆菌属)、Sulfuritalea的丰度与总砷呈显著正相关。参与氮循环的微生物会间接影响砷代谢过程。本研究共注释到砷甲基化功能基因、As(III)氧化功能基因、As(V)还原功能基因及As运输功能基因共12种。As(总砷)与arsC1(砷酸盐还原基因)和arsH(有机砷氧化基因)呈显著负相关,与AS3MT(亚砷酸甲基转移基因)呈显著正相关。【结论】砷浓度会抑制砷代谢微生物群落和功能基因的丰度和多样性,对微生物群落结构具有选择压力,使具有砷抗性的微生物在高砷环境中富集。研究区地下水微生物存在多种砷代谢途径,包括ArsJ(有机砷外排通透酶)和GAPDH(甘油醛-3-磷酸脱氢酶)构成的As(V)外排系统等,砷甲基化是该流域高砷地下水中微生物砷代谢的主要途径。砷代谢微生物群落和功能基因与总砷之间的关系受到多种环境因素的调控和影响,而不是受单因子调控。本研究通过筛选具有砷代谢能力的微生物种群及其关键功能基因,不仅深化了我们对砷代谢机制的理解,还为砷污染的生物修复技术提供了新策略。

    Abstract:

    【Objective】The concentration and speciation of arsenic in groundwater are significantly influenced and regulated by microbial activities. The Kuitun River Basin is a typical high-arsenic area, yet research on the metabolic characteristics of arsenic-metabolizing microorganisms in groundwater from this region remains scarce.【Methods】In this study, 11 groundwater samples were collected from the Kuitun River Basin for metagenomic sequencing. The chemical characteristics of high- and low-arsenic groundwater were analyzed, along with the associations between the community structure and functional genes of arsenic-metabolizing microorganisms and environmental factors.【Result】The results indicated that the dominant bacterial phyla in the groundwater of the study area were Proteobacteria, Actinobacteria, and Planctomycetota. At the genus level, the microbial communities in low-arsenic samples exhibited significant species richness and diversity advantages. The abundances of Nitrosomonas, Thiobacillus, and Sulfuritalea were significantly positively correlated with total arsenic. Microorganisms involved in the nitrogen cycle can indirectly affect the arsenic metabolism process. A total of 12 functional genes related to arsenic methylation, arsenite (As(III)) oxidation, arsenate (As(V)) reduction, and arsenic transport were annotated in this study. Total arsenic (As) was significantly negatively correlated with arsC1 (arsenate reductase gene) and arsH (organic arsenical oxidase gene), and significantly positively correlated with AS3MT (arsenic methyltransferase gene).【Conclusion】Arsenic concentrations can inhibit the abundance and diversity of arsenic-metabolizing microbial communities and functional genes, exerting selective pressure on the microbial community structure and enriching arsenic-resistant microorganisms in high-arsenic environments. Multiple arsenic metabolism pathways exist among groundwater microorganisms in the study area, including the As(V) efflux system composed of ArsJ (organic arsenical efflux permease) and GAPDH (glyceraldehyde-3-phosphate dehydrogenase). Arsenic methylation is the primary pathway of microbial arsenic metabolism in high-arsenic groundwater in this basin. The relationship between arsenic-metabolizing microbial communities and functional genes and total arsenic is regulated and influenced by multiple environmental factors, rather than by a single factor. By screening microbial populations with arsenic metabolism capabilities and their key functional genes, this study not only deepened our understanding of arsenic metabolism mechanisms but also provided new strategies for bioremediation technologies for arsenic contamination.

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  • 收稿日期:2024-11-28
  • 最后修改日期:2025-07-14
  • 录用日期:2024-12-25
  • 在线发布日期: 2025-04-17
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