Metagenomics and Stable Isotopes Uncover the Augmented Sulfide-Driven Autotrophic Denitrification in a Seasonally Hypoxic, Sulfate-Abundant Reservoir.

IF 10.8 1区 环境科学与生态学 Q1 ENGINEERING, ENVIRONMENTAL 环境科学与技术 Pub Date : 2024-08-13 Epub Date: 2024-07-31 DOI:10.1021/acs.est.4c00248
Mengdi Yang, Qianli Luo, Zhongya Fan, Fantang Zeng, Lu Huang, Shiyuan Ding, Gaoyang Cui, Dongli Li, Gangjian Wei, Cong-Qiang Liu, Xiao-Dong Li
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Abstract

The mechanism governing sulfur cycling in nitrate reduction within sulfate-rich reservoirs during seasonal hypoxic conditions remains poorly understood. This study employs nitrogen and oxygen isotope fractionation in nitrate, along with metagenomic sequencing to elucidate the intricacies of the coupled sulfur oxidation and nitrate reduction process in the water column. In the Aha reservoir, a typical seasonally stratified water body, we observed the coexistence of denitrification, bacterial sulfide oxidation, and bacterial sulfate reduction in hypoxic conditions. This is substantiated by the presence of abundant N/S-related genes (nosZ and aprAB/dsrAB) and fluctuations in N/S species. The lower 15εNO3/18εNO3 ratio (0.60) observed in this study, compared to heterotrophic denitrification, strongly supports the occurrence of sulfur-driven denitrification. Furthermore, we found a robust positive correlation between the metabolic potential of bacterial sulfide oxidation and denitrification (p < 0.05), emphasizing the role of sulfide produced via sulfate reduction in enhancing denitrification. Sulfide-driven denitrification relied on ∑S2- as the primary electron donor preferentially oxidized by denitrification. The pivotal genus, Sulfuritalea, emerged as a central player in both denitrification and sulfide oxidation processes in hypoxic water bodies. Our study provides compelling evidence that sulfides assume a critical role in regulating denitrification in hypoxic water within an ecosystem where their contribution to the overall nitrogen cycle was previously underestimated.

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元基因组学和稳定同位素揭示了一个季节性缺氧、硫酸盐丰富的水库中硫化物驱动的自养反硝化作用的增强。
在季节性缺氧条件下,富含硫酸盐的水库硝酸盐还原过程中的硫循环机制仍然鲜为人知。本研究利用硝酸盐中的氮和氧同位素分馏以及元基因组测序来阐明水体中硫氧化和硝酸盐还原耦合过程的复杂性。阿哈水库是一个典型的季节性分层水体,在缺氧条件下,我们观察到反硝化、细菌硫化物氧化和细菌硫酸盐还原共存的现象。大量 N/S 相关基因(nosZ 和 aprAB/dsrAB)的存在以及 N/S 物种的波动证实了这一点。与异养反硝化作用相比,本研究中观察到的 15εNO3/18εNO3 比率(0.60)较低,这有力地支持了硫驱动反硝化作用的发生。此外,我们还发现细菌硫化物氧化代谢潜能与反硝化之间存在很强的正相关性(p < 0.05),强调了通过硫酸盐还原产生的硫化物在增强反硝化过程中的作用。硫化物驱动的反硝化作用依赖于∑S2-作为反硝化作用优先氧化的主要电子供体。在缺氧水体的反硝化和硫化物氧化过程中,关键的硫藻属(Sulfuritalea)扮演了核心角色。我们的研究提供了令人信服的证据,证明硫化物在缺氧水体的反硝化过程中起着至关重要的调节作用。
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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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