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Nitrogen along the Hydrological Gradient of Marsh Sediments in a Subtropical Estuary: Pools, Processes, and Fluxes. | LitMetric

Nitrogen along the Hydrological Gradient of Marsh Sediments in a Subtropical Estuary: Pools, Processes, and Fluxes.

Int J Environ Res Public Health

State Key Laboratory for Subtropical Mountain Ecology of the Ministry of Science and Technology and Fujian Province, Fujian Normal University, Fuzhou 350007, China.

Published: June 2019

AI Article Synopsis

  • Understanding nitrogen distribution and processes in intertidal flats can enhance predictions for climate adaptation strategies.
  • The study utilized a space-for-time substitution method to examine nitrogen pools and processes along hydrological gradients, revealing complex interactions between surface and subsurface sediments.
  • Results indicated that rising water levels could lead to decreased nitrogen storage and change the role of ammonium fluxes from a nitrogen sink to a source in these ecosystems.

Article Abstract

Knowledge on the distribution of nitrogen (N) pools, processes, and fluxes along hydrological gradients provides a comprehensive perspective to understand the underlying causal mechanisms in intertidal flats, and thus improve predictions and climate adaptation strategies. We used a space-for-time substitution method to quantify N pools, processes, and fluxes along a hydrological gradient. Further, we linked N pools and processes and investigated not only surface but also subsurface sediments. Our results showed a gradual decrease in total N (TN) and mineralization rates (), but an increase in potential rates of nitrification () and denitrification () under an elevated hydrological gradient, except for TN and in the subsurface sediment, which accumulated on the interaction zone between the high and middle tidal flats. Most sedimentary ammonium N (NH) and nitrate N (NO) concentrations were similar; however, NH accumulated on the subsurface of the middle tidal flat. NO fluxes (from -0.54 to -0.35 mmol m h) were uptake fluxes in the intertidal flats, but NH fluxes (-2.48-3.54 mmol m h) changed from uptake to efflux in the seaward direction. Structural equation modeling of the effects of inundation frequency, underground biomass, total carbon (TC), electrical conductivity (EC), and clay proportion on the N processes revealed that these accounted for 67%, 82%, and 17% of the variance of , , and , respectively. Inundation frequency, underground biomass, TC, EC, and effects on N pools accounted for 53%, 69%, and 98% of the variance of NH, NO, and TN, respectively. This suggests that future sea level rise may decrease N storage due to increase in coupled nitrification-denitrification and decrease in N mineralization, and the NH flux may change from sink to source in intertidal ecosystems.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6604008PMC
http://dx.doi.org/10.3390/ijerph16112043DOI Listing

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