The Competitive/Cooperative Dynamics of Sulfur Disproportionation Microbes and Methanogens in Geogenic High-Iodine Groundwater Systems.

IF 11.3 1区 环境科学与生态学 Q1 ENGINEERING, ENVIRONMENTAL
Yuxiao Xu,Yamin Deng,Jiangkai Xue,Hongchen Jiang,Yanxin Wang
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引用次数: 0

Abstract

The microbial transformation of iodine-bearing organic matter (OM) and iron (Fe) minerals is a critical process that controls the release of iodine (I) to groundwater. However, the roles of functional microbial types, OM molecular characteristics, and microbe-OM interactions in iodine mobilization remain unclear. In this study, groundwater samples with different iodine concentrations were collected from the central Yangtze River basins, China. Using 16S rRNA gene sequencing, we identified sulfur disproportionation and methanogenesis as dominant metabolic processes in relatively low-I (<300 μg/L) and high-I (>300 μg/L) groundwater, respectively. Sediment incubation experiments showed that combined sulfur disproportionation and methanogenesis can promote iodine release by 87.1%. Ultrahigh-resolution molecular characterization of the organic components revealed that sulfur-disproportionating microbes may selectively metabolize bioactive OM (e.g., aliphatic compounds and oxygen-poor highly unsaturated compounds), leaving recalcitrant OM (e.g., N-containing oxygen-rich highly unsaturated compounds, polyphenols, and polycyclic aromatic compounds) in groundwater, and methanogenic microbes preferentially consume bioactive OM in low-I groundwater and recalcitrant OM in high-I groundwater. Thus, a cooperative-competitive pattern between methanogens and sulfur disproportionating microorganisms may influence OM degradation and potentially contribute to iodine mobilization. This study highlights that the OM transformation process, driven by biological sulfur disproportionation and methanogenesis, promotes iodine enrichment in alluvial-lacustrine groundwater and improves our understanding of the genesis of geogenic high-iodine groundwater systems.
地源性高碘地下水系统中硫歧化微生物与产甲烷菌的竞争/合作动态
含碘有机物(OM)和铁(Fe)矿物的微生物转化是控制碘(I)向地下水释放的关键过程。然而,功能微生物类型、OM分子特征和微生物-OM相互作用在碘动员中的作用尚不清楚。本研究采集了长江流域中部不同浓度的地下水样本。通过16S rRNA基因测序,我们确定硫歧化和甲烷生成分别是相对低i (300 μg/L)地下水的优势代谢过程。沉积物培养实验表明,硫歧化和产甲烷联合作用可促进碘释放87.1%。有机组分的超高分辨率分子表征表明,硫歧化微生物可能选择性地代谢生物活性OM(如脂肪族化合物和贫氧高度不饱和化合物),在地下水中留下顽固性OM(如含n的富氧高度不饱和化合物、多酚和多环芳香族化合物)。产甲烷微生物在低i地下水中优先消耗生物活性有机质,在高i地下水中优先消耗难降解有机质。因此,产甲烷菌和硫歧化微生物之间的合作-竞争模式可能影响OM的降解,并可能有助于碘的动员。该研究强调了生物硫歧化和甲烷生成驱动的OM转化过程促进了冲积湖地下水中碘的富集,提高了我们对地源性高碘地下水系统成因的认识。
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来源期刊
环境科学与技术
环境科学与技术 环境科学-工程:环境
CiteScore
17.50
自引率
9.60%
发文量
12359
审稿时长
2.8 months
期刊介绍: Environmental Science & Technology (ES&T) is a co-sponsored academic and technical magazine by the Hubei Provincial Environmental Protection Bureau and the Hubei Provincial Academy of Environmental Sciences. Environmental Science & Technology (ES&T) holds the status of Chinese core journals, scientific papers source journals of China, Chinese Science Citation Database source journals, and Chinese Academic Journal Comprehensive Evaluation Database source journals. This publication focuses on the academic field of environmental protection, featuring articles related to environmental protection and technical advancements.
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