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A dynamic microbial sulfur cycle in a serpentinizing continental ophiolite

机译:蛇形欧式蛋白质中动态微生物硫循环

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Serpentinization is the hydration and oxidation of ultramafic rock, which occurs as oceanic lithosphere is emplaced onto continental margins (ophiolites), and along the seafloor as faulting exposes this mantle-derived material to circulating hydrothermal fluids. This process leads to distinctive fluid chemistries as molecular hydrogen (H-2) and hydroxyl ions (OH-) are produced and reduced carbon compounds are mobilized. Serpentinizing ophiolites also serve as a vector to transport sulfur compounds from the seafloor onto the continents. We investigated hyperalkaline, sulfur-rich, brackish groundwater in a serpentinizing continental ophiolite to elucidate the role of sulfur compounds in fuelling in situ microbial activities. Here we illustrate that key sulfur-cycling taxa, including Dethiobacter, Desulfitispora and 'Desulforudis', persist throughout this extreme environment. Biologically catalysed redox reactions involving sulfate, sulfide and intermediate sulfur compounds are thermodynamically favourable in the groundwater, which indicates they may be vital to sustaining life in these characteristically oxidant- and energy-limited systems. Furthermore, metagenomic and metatranscriptomic analyses reveal a complex network involving sulfate reduction, sulfide oxidation and thiosulfate reactions. Our findings highlight the importance of the complete inorganic sulfur cycle in serpentinizing fluids and suggest sulfur biogeochemistry provides a key link between terrestrial serpentinizing ecosystems and their submarine heritage.
机译:蛇形化是超微岩石的水合和氧化,随着海洋岩石圈被送出到大陆边缘(眼镜岩),沿着海底作为断线将这种披风衍生材料暴露于循环水热流体。该方法导致不同的流体化学品,因为分子氢(H-2)和羟基离子(OH-)被制备并发减少碳化合物。蛇形素化异丙矿也用作将硫化合物从海底转运到大洲的载体。我们研究了血栓制欧式蛋白质的甲醛,富含硫酸盐的浓郁型,以阐明硫化合物在原位微生物活性燃料中的作用。在这里,我们说明关键的硫循环分类群,包括偶切术,脱硫和“脱硫”,在整个极端的环境中持续存在。涉及硫酸盐,硫化物和中间硫化合物的生物催化的氧化还原反应在地下水中具有热力学上有利,这表明它们对这些特征氧化和能量有限的系统中的维持寿命可能是至关重要的。此外,Metagenomic和MetaTranscriptomic分析揭示了一种涉及硫酸盐的复杂网络,硫化物氧化和硫代硫酸硫酸盐反应。我们的研究结果强调了完全无机硫循环在蛇形化流体中的重要性,并提出硫生物地球化学提供了陆地蛇形生态系统与其潜艇遗产之间的关键环节。

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