锂自养型硝酸盐还原铁(II)氧化增殖培养物催化的厌氧氨氧化与铁(III)还原作用。

IF 10.8 1区 环境科学与生态学 Q1 ECOLOGY
Hong-Bin Zhang, He-Fei Wang, Jia-Bo Liu, Zhen Bi, Ruo-Fei Jin, Tian Tian
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引用次数: 0

摘要

在过去的二十年里,氮/铁转化细菌处于生物地球化学新发现的前沿,如厌氧氨氧化与铁还原(feammox)和锂自养型硝酸盐还原亚铁氧化(NRFeOx)。这些新发现不断扩大我们对自然界氮/铁循环的认识,同时也凸显了重新认识相关微生物功能特性的必要性。在这里,作为一项原理验证,我们报告了令人信服的证据,证明 NRFeOx 富集培养物能够催化 Feammox 过程。我们的研究结果表明,在 pH 值为 4.0 和 8.0 时,NRFeOx 培养物分别通过还原螯合 NTA-Fe(III)和难溶性含铁(III)矿物(γ-FeOOH),将 NH4+ 主要氧化为氮气。在 NRFeOx 培养物中,Rhodanobacter 的铁(II)氧化细菌和未分类酸细菌群的铁(III)还原细菌共存。它们的相对丰度受补充铁源的动态调节。元基因组分析表明,NRFeOx 培养物含有一整套反硝化基因和氨氧化基因。此外,还发现了许多编码细胞外电子传递相关蛋白或其同源物的基因,这些基因促进了该培养物对细胞外铁的还原。从更广泛的意义上讲,这项研究揭示了特定微生物群在通过多种途径推动氮转化方面尚未开发的潜力,并突出了微生物铁代谢在完整的生物地球化学氮循环中的重要作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Anaerobic ammonium oxidation coupled to iron(III) reduction catalyzed by a lithoautotrophic nitrate-reducing iron(II) oxidizing enrichment culture.

The last two decades have seen nitrogen/iron-transforming bacteria at the forefront of new biogeochemical discoveries, such as anaerobic ammonium oxidation coupled to ferric iron reduction (feammox) and lithoautotrophic nitrate-reducing ferrous iron-oxidation (NRFeOx). These emerging findings continue to expand our knowledge of the nitrogen/iron cycle in nature and also highlight the need to re-understand the functional traits of the microorganisms involved. Here, as a proof-of-principle, we report compelling evidence for the capability of an NRFeOx enrichment culture to catalyze the feammox process. Our results demonstrate that the NRFeOx culture predominantly oxidizes NH4+ to nitrogen gas, by reducing both chelated nitrilotriacetic acid (NTA)-Fe(III) and poorly soluble Fe(III)-bearing minerals (γ-FeOOH) at pH 4.0 and 8.0, respectively. In the NRFeOx culture, Fe(II)-oxidizing bacteria of Rhodanobacter and Fe(III)-reducing bacteria of unclassified_Acidobacteriota coexisted. Their relative abundances were dynamically regulated by the supplemented iron sources. Metagenomic analysis revealed that the NRFeOx culture contained a complete set of denitrifying genes along with hao genes for ammonium oxidation. Additionally, numerous genes encoding extracellular electron transport-associated proteins or their homologs were identified, which facilitated the reduction of extracellular iron by this culture. More broadly, this work lightens the unexplored potential of specific microbial groups in driving nitrogen transformation through multiple pathways and highlights the essential role of microbial iron metabolism in the integral biogeochemical nitrogen cycle.

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来源期刊
ISME Journal
ISME Journal 环境科学-生态学
CiteScore
22.10
自引率
2.70%
发文量
171
审稿时长
2.6 months
期刊介绍: The ISME Journal covers the diverse and integrated areas of microbial ecology. We encourage contributions that represent major advances for the study of microbial ecosystems, communities, and interactions of microorganisms in the environment. Articles in The ISME Journal describe pioneering discoveries of wide appeal that enhance our understanding of functional and mechanistic relationships among microorganisms, their communities, and their habitats.
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