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Biophysical controls on organic carbon fluxes in fluvial networks

机译:河流网络中有机碳通量的生物物理控制

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Metabolism of terrestrial organic carbon in freshwater ecosystems is responsible for a large amount of carbon dioxide outgassing to the atmosphere, in contradiction to the conventional wisdom that terrestrial organic carbon is recalcitrant and contributes little to the support of aquatic metabolism. Here, we combine recent findings from geophysics, microbial ecology and organic geochemistry to show geophysical opportunity and microbial capacity to enhance the net heterotrophy in streams, rivers and estuaries. We identify hydrological storage and retention zones that extend the residence time of organic carbon during downstream transport as geophysical opportunities for microorganisms to develop as attached biofilms or suspended aggregates, and to metabolize organic carbon for energy and growth. We consider fluvial networks as meta-ecosystems to include the acclimation of microbial communities in downstream ecosystems that enable them to exploit energy that escapes from upstream ecosystems, thereby increasing the overall energy utilization at the network level.
机译:淡水生态系统中陆生有机碳的代谢是导致大量二氧化碳排入大气的原因,这与传统观点相反,即陆生有机碳是顽强的,对水生代谢的支持几乎没有贡献。在这里,我们结合了地球物理学,微生物生态学和有机地球化学的最新发现,以显示地球物理机会和微生物能力,以增强河流,河口和河口的净异养性。我们确定了延长下游碳在下游运输过程中停留时间的水文存储和保留区,这是微生物发展为附着的生物膜或悬浮的聚集体并代谢有机碳以获取能量和增长的地球物理机会。我们认为河流网络是元生态系统,其中包括下游生态系统中微生物群落的适应性,使他们能够利用从上游生态系统中逸出的能量,从而提高网络一级的总体能源利用率。

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