Nitrous oxide (N2O) dynamics in river-dominated estuaries reflect the combined effects of freshwater mixing and internal nitrogen transformations, yet their relative importance among different seasons remains poorly resolved. We investigated the distribution of dissolved N2O in the Changjiang Estuary in March (dry season) and May (flood season) 2025. In March, surface N2O concentrations ranged from 8.77 to 13.38 nmol L−1, with a mean of 10.70 ± 1.39 nmol L−1. Concentrations were highest in Changjiang River Water and decreased seaward. The negative correlation between N2O and salinity indicated that freshwater transport and estuarine mixing were the main controls on its distribution. Mean surface N₂O saturation and sea-to-air flux were 93.53 ± 4.78% and −1.03 ± 1.50 μmol m−2 d−1, respectively, indicating that the study area was a weak sink for atmospheric N2O. In May, surface N2O concentrations ranged from 8.78 to 10.40 nmol L−1, with a mean of 9.45 ± 0.51 nmol L−1. Surface concentrations varied within a narrower range than in March, while localized enrichment occurred in deeper waters. N2O showed no significant relationship with salinity but was positively related to depth and nitrate and negatively related to dissolved oxygen, indicating weaker control by freshwater mixing and enhanced N2O accumulation in deeper waters. Mean surface saturation increased to 105.29 ± 4.28%, and the sea-to-air flux was 1.28 ± 0.99 μmol m−2 d−1, indicating that the study area became a weak N2O source. Metagenomic data showed a relatively high representation of nirK but a low representation of nosZ, together with elevated amo and hao markers at the station exhibiting bottom-water N2O enrichment. These patterns supported concurrent genetic potential for nitrite reduction and ammonia oxidation, with comparatively limited potential for terminal N2O reduction. Incubations further demonstrated concentration-dependent N2O responses to hydroxylamine, enhanced by nitrite availability. These results support a seasonal shift from predominantly mixing-controlled N2O distributions in March to stronger contributions from subsurface biogeochemical production in May, accompanied by a reversal from a weak atmospheric sink to a weak source.
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