As a key limit of marine primary productivity, oceanic nitrogen inventory exerts a fundamental control on biological carbon uptake. The nitrogen inventory is regulated by the balance between nitrogen input through biological N-fixation and atmospheric deposition, and the dominant N loss though denitrification. Over the past 150 yrs, atmospheric nitrogen deposition driven by human activity, mainly including fossil fuel combustion, has increased dramatically, rising by more than 24 TgN/yr between 1850 and 2000. However, increase atmospheric nitrogen deposition may drive a compensatory decrease in N-fixation, as the additional external nitrogen supply reduces the ecological advantage of nitrogen-fixing organisms. Also, enhanced deposition may lead to higher productivity and thereby stimulate denitrification. It therefore remains a key question whether changes in anthropogenic emission exert a significant net effect on the open ocean nitrogen inventory.
In this study, we conducted bulk δ15N and δ13C analyses on the organic skeletons of several deep-sea corals from the South China Sea and the western Pacific. Both regions exhibit a coherent decrease of over 1‰ in δ15N and δ13C over the past 150 years. The decline in δ13C reflects the transport of the Suess effect into the deep ocean. Meanwhile, compound-specific amino acid isotopic analyses on coral skeletons indicate that the observed δ15N changes are dominated by variations in the isotopic signals of the upper-ocean source as well. Using a mass-balance calculation, we propose that such δ15N decrease is driven by both increased atmospheric nitrogen deposition and enhanced N-fixation. Specifically, atmospheric deposition delivers iron alongside nitrogen to the open ocean, which stimulates N-fixation rather than suppresses it. Consequently, through both direct deposition and the stimulation of N-fixation, anthropogenic emissions contribute substantially to an increasing oceanic N input.
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