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Microbial and diagenetic steps leading to the mineralisation of Great Salt Lake microbialites

机译:导致大盐湖微生物矿物矿化的微生物和成岩阶段

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摘要

Microbialites are widespread in modern and fossil hypersaline environments, where they provide a unique sedimentary archive. Authigenic mineral precipitation in modern microbialites results from a complex interplay between microbial metabolisms, organic matrices and environmental parameters. Here, we combined mineralogical and microscopic analyses with measurements of metabolic activity in order to characterise the mineralisation of microbial mats forming microbialites in the Great Salt Lake (Utah, USA). Our results show that the mineralisation process takes place in three steps progressing along geochemical gradients produced through microbial activity. First, a poorly crystallized Mg-Si phase precipitates on alveolar extracellular organic matrix due to a rise of the pH in the zone of active oxygenic photosynthesis. Second, aragonite patches nucleate in close proximity to sulfate reduction hotspots, as a result of the degradation of cyanobacteria and extracellular organic matrix mediated by, among others, sulfate reducing bacteria. A final step consists of partial replacement of aragonite by dolomite, possibly in neutral to slightly acidic porewater. This might occur due to dissolution-precipitation reactions when the most recalcitrant part of the organic matrix is degraded. The mineralisation pathways proposed here provide pivotal insight for the interpretation of microbial processes in past hypersaline environments.
机译:Microbialites在现代和化石纯净环境中普遍存在,在那里他们提供独特的沉积档案。现代微生物矿石中的AheyIgenic矿物沉淀是由微生物代谢,有机基质和环境参数之间的复杂相互作用。在此,我们将矿物学和微观分析与代谢活性的测量相结合,以表征在大盐湖(USAH,USA)中形成微生物岩的微生物垫的矿化。我们的研究结果表明,矿化过程沿着通过微生物活性产生的地球化学梯度进展的三个步骤进行。首先,由于活性含氧光合作用区中的pH升高,在肺泡细胞外有机基质上沉淀出较差的Mg-Si相析出。其次,由于硫酸盐还原细菌介导的蓝细菌和细胞外有机基质的降解,金属蛋白质贴片核心紧邻硫酸盐减少热点。最后一步由白云石部分替代的金属石,可能在略微酸性沉淀水中。当有机基质的最荷兰普氏体部分降解时,这可能由于溶出 - 析出反应而发生。本文所提出的矿化途径提供了针对过去的静脉环境中的微生物过程解释的关键洞察力。

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