Microbial diversity and biogeochemical interactions in the seismically active and CO2- rich Eger Rift ecosystem.

IF 6.2 2区 环境科学与生态学 Q1 GENETICS & HEREDITY Environmental Microbiome Pub Date : 2024-12-25 DOI:10.1186/s40793-024-00651-9
Daniel Lipus, Zeyu Jia, Megan Sondermann, Robert Bussert, Alexander Bartholomäus, Sizhong Yang, Dirk Wagner, Jens Kallmeyer
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Abstract

The Eger Rift subsurface is characterized by frequent seismic activity and consistently high CO2 concentrations, making it a unique deep biosphere ecosystem and a suitable site to study the interactions between volcanism, tectonics, and microbiological activity. Pulses of geogenic H2 during earthquakes may provide substrates for methanogenic and chemolithoautotrophic processes, but very little is currently known about the role of subsurface microorganisms and their cellular processes in this type of environment. To assess the impact of geologic activity on microbial life, we analyzed the geological, geochemical, and microbiological composition of rock and sediment samples from a 238 m deep drill core, running across six lithostratigraphic zones. We evaluated the diversity and distribution of bacterial and archaeal communities. Our investigation revealed a distinct low-biomass community, with a surprisingly diverse archaeal population, providing strong support that methanogenic archaea reside in the Eger subsurface. Geochemical analysis demonstrated that ion concentrations (mostly sodium and sulfate) were highest in sediments from 50 to 100 m depth and in weathered rock below 200 m, indicating an elevated potential for ion solution in these areas. Microbial communities were dominated by common soil and water bacteria. Together with the occurrence of freshwater cyanobacteria at specific depths, these observations emphasize the heterogenous character of the sediments and are indicators for vertical groundwater movement across the Eger Rift subsurface. Our investigations also found evidence for anaerobic, autotrophic, and acidophilic communities in Eger Rift sediments, as sulfur-cycling taxa like Thiohalophilus and Desulfosporosinus were specifically enriched at depths below 100 m. The detection of methanogenic, halophilic, and ammonia-oxidizing archaeal populations demonstrate that the unique features of the Eger Rift subsurface environment provide the foundation for diverse types of microbial life, including the microbial utilization of geologically derived CO2 and, when available, H2, as a primary energy source.

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地震活跃和富含CO2的埃格尔裂谷生态系统中的微生物多样性和生物地球化学相互作用。
埃格尔裂谷地下地震活动频繁,二氧化碳浓度持续较高,是一个独特的深层生物圈生态系统,是研究火山活动、构造活动和微生物活动之间相互作用的合适场所。地震期间的地球成因氢气脉冲可能为产甲烷和化学岩石自养过程提供基质,但目前对地下微生物及其细胞过程在这类环境中的作用知之甚少。为了评估地质活动对微生物生命的影响,我们分析了238 m深的岩心中岩石和沉积物样品的地质、地球化学和微生物组成,跨越了6个岩石地层带。我们评估了细菌和古细菌群落的多样性和分布。我们的研究发现了一个独特的低生物量群落,具有令人惊讶的多样化的古细菌种群,为产甲烷古细菌存在于Eger地下提供了强有力的支持。地球化学分析表明,在50 ~ 100 m深度的沉积物和200 m以下的风化岩石中,离子浓度(主要是钠和硫酸盐)最高,表明这些地区离子溶液的潜力较高。微生物群落以土壤和水体常见细菌为主。再加上在特定深度出现的淡水蓝藻,这些观测结果强调了沉积物的非均质性,是地下水在埃格尔裂谷地下垂直运动的指标。我们的研究还发现了Eger裂谷沉积物中厌氧、自养和亲酸群落的证据,因为硫循环分类群如Thiohalophilus和Desulfosporosinus在深度低于100 m的地方特别富集。产甲烷、嗜盐和氨氧化古细菌种群的检测表明,Eger裂谷地下环境的独特特征为不同类型的微生物生命提供了基础,包括微生物利用地质来源的二氧化碳和氢气作为主要能源。
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来源期刊
Environmental Microbiome
Environmental Microbiome Immunology and Microbiology-Microbiology
CiteScore
7.40
自引率
2.50%
发文量
55
审稿时长
13 weeks
期刊介绍: Microorganisms, omnipresent across Earth's diverse environments, play a crucial role in adapting to external changes, influencing Earth's systems and cycles, and contributing significantly to agricultural practices. Through applied microbiology, they offer solutions to various everyday needs. Environmental Microbiome recognizes the universal presence and significance of microorganisms, inviting submissions that explore the diverse facets of environmental and applied microbiological research.
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