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Seawater recirculation through subducting sediments sustains a deeply buried population of sulfate-reducing bacteria

机译:通过桥面沉积物的海水再循环维持深埋硫酸盐还原细菌的群体

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Subseafloor sulfate concentrations typically decrease with depth as this electron acceptor is consumed by respiring microorganisms. However, studies show that seawater can flow through hydraulically conductive basalt to deliver sulfate upwards into deeply buried overlying sediments. Our previous work on IODP Site C0012A (Nankai Trough, Japan) revealed that recirculation of sulfate through the subducting Philippine Sea Plate stimulated microbial activity near the sediment-basement interface (SBI). Here, we describe the microbial ecology, phylogeny, and energetic requirements of population of aero-tolerant sulfate-reducing bacteria in the deep subseafloor. We identified dissimilatory sulfite reductase gene (dsr) sequences 93% related to oxygen-tolerant Desulfovibrionales species across all reaction zones while no SRB were detected in drilling fluid control samples. Pore fluid chemistry revealed low concentrations of methane (&0.25 mM), while hydrogen levels were consistent with active bacterial sulfate reduction (0.51-1.52 nM). Solid phase total organic carbon (TOC) was also considerably low in these subseafloor sediments. Our results reveal the phylogenetic diversity, potential function, and physiological tolerance of a community of sulfate-reducing bacteria living at similar to 480 m below subducting seafloor.
机译:由于通过呼吸微生物消耗,外部硫酸盐浓度通常随着深度而降低。然而,研究表明,海水可以通过液压导电玄武岩流过,以向上硫酸盐进入深埋覆盖的沉积物。我们以前的IODP网站C0012A(日本南开谷)的工作透露,通过菲律宾海底板材的硫酸盐再循环沉积物 - 地下室界面(SBI)附近的微生物活性。在这里,我们描述了深度外部地板中的微生物生态学,系统发育和能量耐硫酸盐还原细菌的群体。我们鉴定了与所有反应区含有氧耐氧脱硫型物种相关的含氧亚硫酸盐还原酶基因(DSR)序列93%,而在钻井液中没有检测到SRB。孔隙流体化学揭示了低浓度的甲烷(& 0.25mm),而氢水平与活性细菌硫酸盐还原(0.51-1.52nm)一致。固相总体有机碳(TOC)在这些海底沉积物中也相当低。我们的结果揭示了硫酸盐减少细菌群落的系统发育多样性,潜在功能和生理耐受性,其在低于底层海底下方480米。

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