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Chemolithotrophic Primary Production in a Subglacial Ecosystem

机译:冰下生态系统中的化石营养初级生产

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Glacial comminution of bedrock generates fresh mineral surfaces capable of sustaining chemotrophic microbial communities under the dark conditions that pervade subglacial habitats. Geochemical and isotopic evidence suggests that pyrite oxidation is a dominant weathering process generating protons that drive mineral dissolution in many subglacial systems. Here, we provide evidence correlating pyrite oxidation with chemosynthetic primary productivity and carbonate dissolution in subglacial sediments sampled from Robertson Glacier (RG), Alberta, Canada. Quantification and sequencing of ribulose-1,5-bisphosphate carboxylase/oxygenase (RuBisCO) transcripts suggest that populations closely affiliated with Sideroxydans lithotrophicus, an iron sulfide-oxidizing autotrophic bacterium, are abundant constituents of microbial communities at RG. Microcosm experiments indicate sulfate production during biological assimilation of radiolabeled bicarbonate. Geochemical analyses of subglacial meltwater indicate that increases in sulfate levels are associated with increased calcite and dolomite dissolution. Collectively, these data suggest a role for biological pyrite oxidation in driving primary productivity and mineral dissolution in a subglacial environment and provide the first rate estimate for bicarbonate assimilation in these ecosystems. Evidence for lithotrophic primary production in this contemporary subglacial environment provides a plausible mechanism to explain how subglacial communities could be sustained in near-isolation from the atmosphere during glacial-interglacial cycles.
机译:基岩的冰川粉碎产生了新鲜的矿物表面,能够在遍布冰川下生境的黑暗条件下维持化学营养型微生物群落。地球化学和同位素证据表明,黄铁矿氧化是一个主要的风化过程,产生质子,从而驱动许多冰下系统中的矿物溶解。在这里,我们提供了从加拿大艾伯塔省罗伯逊冰川(RG)采样的冰下沉积物中黄铁矿氧化与化学合成初级生产力和碳酸盐溶解的相关证据。核糖-1,5-双磷酸羧化酶/加氧酶(RuBisCO)转录本的定量和测序表明,与Sideroxydans lithotrophicus(一种硫化铁氧化的自养细菌)密切相关的种群是RG微生物群落的丰富组成部分。微观实验表明放射性标记的碳酸氢盐在生物同化过程中会产生硫酸盐。冰川下融水的地球化学分析表明,硫酸盐含量的增加与方解石和白云石溶解的增加有关。总的来说,这些数据表明生物黄铁矿氧化在驱动冰下环境中初级生产力和矿物溶解中的作用,并为这些生态系统中的碳酸氢盐同化提供了一流的估计。在这种当代冰下环境中,岩石营养初级生产的证据提供了一个合理的机制,来解释在冰冰间期循环中,如何将冰下群落与大气隔离开来。

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