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Hydrogen and bioenergetics in the Yellowstone geothermal ecosystem

机译:黄石地热生态系统中的氢和生物能

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The geochemical energy budgets for high-temperature microbial ecosystems such as occur at Yellowstone National Park have been unclear. To address the relative contributions of different geochemistries to the energy demands of these ecosystems, we draw together three lines of inference. We studied the phylogenetic compositions of high-temperature (> 70℃) communities in Yellowstone hot springs with distinct chemistries, conducted parallel chemical analyses, and carried out thermodynamic modeling. Results of extensive molecular analyses, taken with previous results, show that most microbial biomass in these systems, as reflected by rRNA gene abundance, is comprised of organisms of the kinds that derive energy for primary productivity from the oxidation of molecular hydrogen, H_2. The apparent dominance by H_2-metabo-lizing organisms indicates that H_2 is the main source of energy for primary production in the Yellowstone high-temperature ecosystem. Hydrogen concentrations in the hot springs were measured and found to range up to > 300 nM, consistent with this hypothesis. Thermodynamic modeling with environmental concentrations of potential energy sources also is consistent with the proposed microaerophilic, hydrogen-based energy economy for this geothermal ecosystem, even in the presence of high concentrations of sulfide.
机译:目前尚不清楚高温微生物生态系统的地球化学能源预算,例如黄石国家公园中发生的地球化学能源预算。为了解决不同地球化学对这些生态系统能量需求的相对贡献,我们归纳了三条推论。我们用不同的化学方法研究了黄石温泉中高温(> 70℃)群落的系统发育组成,进行了平行化学分析,并进行了热力学建模。与先前的结果一起进行的广泛的分子分析结果表明,如rRNA基因丰度所反映的那样,这些系统中的大多数微生物生物量都是由从氢分子H_2的氧化中获取初级生产力所需的能量的生物组成。 H_2代谢生物的明显优势表明H_2是黄石高温生态系统中一次生产的主要能源。测量了温泉中的氢气浓度,发现其范围高达> 300 nM,与此假设相符。即使在存在高浓度硫化物的情况下,利用环境浓度的潜在能源进行的热力学建模也与针对该地热生态系统提议的基于微需氧的氢能源经济相一致。

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