Nutrient management offsets the effect of deoxygenation and warming on nitrous oxide emissions in a large US estuary.

Tang, Weiyi; Da, Fei; Tracey, John C; Intrator, Naomi; Kunes, Moriah A; Lee, Jenna A; Wan, Xianhui Sean; Jayakumar, Amal et al. · Sci Adv · 2024

basic_science · Level V

Where this comes from

Abstract

Many estuaries experience eutrophication, deoxygenation and warming, with potential impacts on greenhouse gas emissions. However, the response of N<sub>2</sub>O production to these changes is poorly constrained. Here we applied nitrogen isotope tracer incubations to measure N<sub>2</sub>O production under experimentally manipulated changes in oxygen and temperature in the Chesapeake Bay-the largest estuary in the United States. N<sub>2</sub>O production more than doubled from nitrification and increased exponentially from denitrification when O<sub>2</sub> was decreased from >20 to <5 micromolar. Raising temperature from 15° to 35°C increased N<sub>2</sub>O production 2- to 10-fold. Developing a biogeochemical model by incorporating these responses, N<sub>2</sub>O emissions from the Chesapeake Bay were estimated to decrease from 157 to 140 Mg N year<sup>-1</sup> from 1986 to 2016 and further to 124 Mg N year<sup>-1</sup> in 2050. Although deoxygenation and warming stimulate N<sub>2</sub>O production, the modeled decrease in N<sub>2</sub>O emissions, attributed to decreased nutrient inputs, indicates the importance of nutrient management in curbing greenhouse gas emissions, potentially mitigating climate change.