首页> 外文期刊>Environmental Science & Technology >Characterization of Nitrate-Dependent As(Ⅲ)-Oxidizing Communities in Arsenic-Contaminated Soil and Investigation of Their Metabolic Potentials by the Combination of DNA-Stable Isotope Probing and Metagenomics
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Characterization of Nitrate-Dependent As(Ⅲ)-Oxidizing Communities in Arsenic-Contaminated Soil and Investigation of Their Metabolic Potentials by the Combination of DNA-Stable Isotope Probing and Metagenomics

机译:硝酸盐依赖性的表征为(Ⅲ) - 氧化砷污染土壤的群体和DNA稳定同位素探测和偏心组合的组合对其代谢潜力的研究

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摘要

Arsenite (As(Ⅲ)) oxidation has important environmental implications by decreasing both the mobility and toxicity of As in the environment. Microbe-mediated nitrate-dependent As(Ⅲ) oxidation (NDAO) may be an important process for As(Ⅲ) oxidation in anoxic environments. Our current knowledge of nitrate-dependent As(Ⅲ)-oxidizing bacteria (NDAB), however, is largely based on isolates, and thus, the diversity of NDAB may be underestimated. In this study, DNA-stable isotope probing (SIP) with ~(13)C-labeled NaHCO_3 as the sole carbon source, amplicon sequencing, and shotgun metagenomics were combined to identify NDAB and investigate their NDAO metabolism. As(Ⅲ) oxidation was observed in the treatment amended with nitrate, while no obvious As(Ⅲ) oxidation was observed without nitrate addition. The increase in the gene copies of aioA in the nitrate-amended treatment suggested that As(Ⅲ) oxidation was mediated by microorganisms containing the aioA genes. Furthermore, diverse putative NDAB were identified in the As-contaminated soil cultures, such as Azoarcus, Rhodanobacter, Pseudomonas, and Burkholderiales-related bacteria. Metagenomic analysis further indicated that most of these putative NDAB contained genes for As(Ⅲ) oxidation and nitrate reduction, confirming their roles in NDAO. The identification of novel putative NDAB expands current knowledge regarding the diversity of NDAB. The current study also suggests the proof of concept of using DNA-SIP to identify the slow-growing NDAB.
机译:砷酸盐(如(Ⅲ))氧化通过降低环境中的流动性和毒性具有重要的环境影响。微生物介导的硝酸盐依赖于(Ⅲ)氧化(NDAO)可以是缺氧环境中的(Ⅲ)氧化的重要过程。然而,我们目前依赖于(Ⅲ) - 氧化细菌(NDAB)的知识主要基于分离物,因此,NDAB的多样性可能被低估。在该研究中,将DNA稳定同位素探测(SIP)用〜(13)C-标记的NaHCO_3作为唯一的碳源,扩增子测序和霰弹枪组织,以鉴定NDAB并研究其NDAO代谢。由于(Ⅲ)在用硝酸盐修正的处理中观察到氧化,而在没有硝酸盐的情况下观察到(Ⅲ)氧化则无明显氧化。硝酸盐修正治疗中AiOA基因拷贝的增加表明,由于(Ⅲ)氧化由含有AiOA基因的微生物介导。此外,在污染的土壤培养物中鉴定了各种推定的NDAB,例如氮杂神经血清,罗马杆菌,假单胞菌和伯克霍尔群体相关细菌。 Metagenomic分析进一步表明,大多数推定的NDAB含有氧化和硝酸盐还原的基因,证实了它们在NDAO中的作用。识别新推出的NDAB扩大了关于NDAB多样性的当前知识。目前的研究还表明,使用DNA-SIP识别缓慢生长的NDAB的概念证明。

著录项

  • 来源
    《Environmental Science & Technology》 |2020年第12期|7366-7377|共12页
  • 作者单位

    Guangdong Key Laboratory of Integrated Agro-environmental Pollution Control and Management Guangdong Institute of Eco-environmental Science & Technology Guangdong Academy of Sciences Guangzhou 510650 China National-Regional Joint Engineering Research Center for Soil Pollution Control and Remediation in South China Guangzhou 510650 China Guangdong-Hong Kong-Macao Joint Laboratory for Environmental Pollution and Control Guangzhou 510650 China;

    Guangdong Key Laboratory of Integrated Agro-environmental Pollution Control and Management Guangdong Institute of Eco-environmental Science & Technology Guangdong Academy of Sciences Guangzhou 510650 China School of Chemistry and Environmental Engineering Wuhan Institute of Technology Wuhan 430205 China;

    Department of Biochemistry and Microbiology Rutgers University New Brunswick New Jersey 08901 United States;

    Department of Environmental Sciences The State University of New Jersey New Brunswick New Jersey 08901 United States;

    Guangdong Key Laboratory of Integrated Agro-environmental Pollution Control and Management Guangdong Institute of Eco-environmental Science & Technology Guangdong Academy of Sciences Guangzhou 510650 China National-Regional Joint Engineering Research Center for Soil Pollution Control and Remediation in South China Guangzhou 510650 China Guangdong-Hong Kong-Macao Joint Laboratory for Environmental Pollution and Control Guangzhou 510650 China;

    Guangdong Key Laboratory of Integrated Agro-environmental Pollution Control and Management Guangdong Institute of Eco-environmental Science & Technology Guangdong Academy of Sciences Guangzhou 510650 China National-Regional Joint Engineering Research Center for Soil Pollution Control and Remediation in South China Guangzhou 510650 China Guangdong-Hong Kong-Macao Joint Laboratory for Environmental Pollution and Control Guangzhou 510650 China;

    Guangdong Key Laboratory of Integrated Agro-environmental Pollution Control and Management Guangdong Institute of Eco-environmental Science & Technology Guangdong Academy of Sciences Guangzhou 510650 China National-Regional Joint Engineering Research Center for Soil Pollution Control and Remediation in South China Guangzhou 510650 China Guangdong-Hong Kong-Macao Joint Laboratory for Environmental Pollution and Control Guangzhou 510650 China;

    Guangdong Key Laboratory of Integrated Agro-environmental Pollution Control and Management Guangdong Institute of Eco-environmental Science & Technology Guangdong Academy of Sciences Guangzhou 510650 China National-Regional Joint Engineering Research Center for Soil Pollution Control and Remediation in South China Guangzhou 510650 China Guangdong-Hong Kong-Macao Joint Laboratory for Environmental Pollution and Control Guangzhou 510650 China;

    Guangdong Key Laboratory of Integrated Agro-environmental Pollution Control and Management Guangdong Institute of Eco-environmental Science & Technology Guangdong Academy of Sciences Guangzhou 510650 China National-Regional Joint Engineering Research Center for Soil Pollution Control and Remediation in South China Guangzhou 510650 China Guangdong-Hong Kong-Macao Joint Laboratory for Environmental Pollution and Control Guangzhou 510650 China;

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