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Microbial ecosystem dynamics drive fluctuating nitrogen loss in marine anoxic zones

机译:微生物生态系统动力学驱动海洋缺氧区氮素波动波动

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摘要

The dynamics of nitrogen (N) loss in the ocean’s oxygen-deficient zones (ODZs) are thought to be driven by climate impacts on ocean circulation and biological productivity. Here we analyze a data-constrained model of the microbial ecosystem in an ODZ and find that species interactions drive fluctuations in local- and regional-scale rates of N loss, even in the absence of climate variability. By consuming O2 to nanomolar levels, aerobic nitrifying microbes cede their competitive advantage for scarce forms of N to anaerobic denitrifying bacteria. Because anaerobes cannot sustain their own low-O2 niche, the physical O2 supply restores competitive advantage to aerobic populations, resetting the cycle. The resulting ecosystem oscillations induce a unique geochemical signature within the ODZ—short-lived spikes of ammonium that are found in measured profiles. The microbial ecosystem dynamics also give rise to variable ratios of anammox to heterotrophic denitrification, providing a mechanism for the unexplained variability of these pathways observed in the ocean.
机译:人们认为,海洋缺氧区(ODZ)中氮(N)损失的动态是由气候对海洋环流和生物生产力的影响所驱动。在这里,我们分析了ODZ中微生物生态系统的数据受限模型,发现即使在没有气候变化的情况下,物种相互作用也会驱动局部和区域尺度的N损失率波动。通过消耗氧气至纳摩尔水平,好氧硝化微生物将其竞争形式的优势转化为厌氧反硝化细菌的稀缺形式的氮。由于厌氧菌无法维持其自身的低O2生态位,因此实际的O2供应可恢复有氧菌群的竞争优势,从而重置周期。导致的生态系统振荡在ODZ内引起了独特的地球化学特征-在测得的剖面中发现了短时的铵尖峰。微生物生态系统的动态变化还导致厌氧氨氧化与异养反硝化作用的比率发生变化,从而为海洋中观察到的这些途径的无法解释的可变性提供了一种机制。

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