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Archaeol: An Indicator of Methanogenesis in Water-Saturated Soils

机译:Archaeol:水饱和土壤中甲烷生成的指示剂

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摘要

Oxic soils typically are a sink for methane due to the presence of high-affinity methanotrophic Bacteria capable of oxidising methane. However, soils experiencing water saturation are able to host significant methanogenic archaeal communities, potentially affecting the capacity of the soil to act as a methane sink. In order to provide insight into methanogenic populations in such soils, the distribution of archaeol in free and conjugated forms was investigated as an indicator of fossilised and living methanogenic biomass using gas chromatography-mass spectrometry with selected ion monitoring. Of three soils studied, only one organic matter-rich site contained archaeol in quantifiable amounts. Assessment of the subsurface profile revealed a dominance of archaeol bound by glycosidic headgroups over phospholipids implying derivation from fossilised biomass. Moisture content, through control of organic carbon and anoxia, seemed to govern trends in methanogen biomass. Archaeol and crenarchaeol profiles differed, implying the former was not of thaumarcheotal origin. Based on these results, we propose the use of intact archaeol as a useful biomarker for methanogen biomass in soil and to track changes in moisture status and aeration related to climate change.
机译:由于存在能够氧化甲烷的高亲和性甲烷营养细菌,含氧土壤通常是甲烷的汇。但是,水饱和的土壤能够容纳大量产甲烷的古生菌群落,从而潜在地影响土壤作为甲烷汇的能力。为了提供对此类土壤中产甲烷菌种群的了解,使用气相色谱-质谱联用选择性离子监测技术,研究了游离和共轭形式的古菌的分布,作为化石和活产甲烷生物质的指标。在研究的三种土壤中,只有一个富含有机物的场所含有可量化的古菌。对地下轮廓的评估表明,被糖苷基团结合的古菌在磷脂上占主导地位,这暗示着源自化石生物质。通过控制有机碳和缺氧,水分含量似乎控制着甲烷源生物量的趋势。古生酚和crenarchaeol的概况有所不同,这表明前者不是丘陵古生物起源的。基于这些结果,我们建议使用完整的古细菌作为土壤中产甲烷菌生物量的有用生物标记,并跟踪与气候变化有关的水分状态和通气量的变化。

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