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缺氧水中乏氧光合微生物的暗有氧硫化物氧化作用。

Dark aerobic sulfide oxidation by anoxygenic phototrophs in anoxic waters.

机构信息

Department of Biogeochemistry, Max Planck Institute for Marine Microbiology, 28359, Bremen, Germany.

Department of Environmental Systems Science, Institute of Biogeochemistry and Pollutant Dynamics, Swiss Federal Institute of Technology Zurich, 8092, Zurich, Switzerland.

出版信息

Environ Microbiol. 2019 May;21(5):1611-1626. doi: 10.1111/1462-2920.14543. Epub 2019 Mar 4.

Abstract

Anoxygenic phototrophic sulfide oxidation by green and purple sulfur bacteria (PSB) plays a key role in sulfide removal from anoxic shallow sediments and stratified waters. Although some PSB can also oxidize sulfide with nitrate and oxygen, little is known about the prevalence of this chemolithotrophic lifestyle in the environment. In this study, we investigated the role of these phototrophs in light-independent sulfide removal in the chemocline of Lake Cadagno. Our temporally resolved, high-resolution chemical profiles indicated that dark sulfide oxidation was coupled to high oxygen consumption rates of ~9 μM O ·h . Single-cell analyses of lake water incubated with CO in the dark revealed that Chromatium okenii was to a large extent responsible for aerobic sulfide oxidation and it accounted for up to 40% of total dark carbon fixation. The genome of Chr. okenii reconstructed from the Lake Cadagno metagenome confirms its capacity for microaerophilic growth and provides further insights into its metabolic capabilities. Moreover, our genomic and single-cell data indicated that other PSB grow microaerobically in these apparently anoxic waters. Altogether, our observations suggest that aerobic respiration may not only play an underappreciated role in anoxic environments but also that organisms typically considered strict anaerobes may be involved.

摘要

绿硫细菌和紫硫细菌(PSB)的贫氧光养型硫化物氧化作用在缺氧浅沉积物和分层水中的硫化物去除中起着关键作用。尽管一些 PSB 也可以用硝酸盐和氧气氧化硫化物,但对于这种化能自养生活方式在环境中的普遍性知之甚少。在这项研究中,我们研究了这些光养生物在卡达戈湖化学层中无光依赖型硫化物去除中的作用。我们的时间分辨、高分辨率化学剖面表明,暗硫化物氧化与高达 9 μM O ·h 的高耗氧速率相关。用 CO 在黑暗中培养的湖水的单细胞分析表明,Chromatium okenii 在很大程度上负责有氧硫化物氧化,它占总暗碳固定的高达 40%。从卡达戈湖宏基因组重建的 Chr. okenii 基因组证实了其微好氧生长的能力,并进一步深入了解了其代谢能力。此外,我们的基因组和单细胞数据表明,其他 PSB 在这些明显缺氧的水中微好氧生长。总的来说,我们的观察结果表明,有氧呼吸不仅可能在缺氧环境中起着被低估的作用,而且通常被认为是严格厌氧菌的生物可能也参与其中。

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