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◆ Journal of environmental management2026-09-02

Seasonal preferences of nitrogen-associated oxygen depletion strategies in the river-estuary continuum: Implications for water quality management.

Jing Wen, Xingyu Liu, Changjin Zhao, Zongyao Zhang, Changyuan Tang, Tong Li, Huaiyang Fang, Hongwei Du

原始摘要(英文原文)· Original abstract
Dissolved oxygen (DO) depletion in the river-estuary continuum is a growing global concern, yet whether nitrogen (N)-associated oxygen depletion exhibits distinct seasonal strategies remains poorly constrained by field observations. To address this gap, we integrated high-frequency monitoring, multi-isotope tracing, 15N-labeled nitrification assays, and hydrodynamic modeling. Our findings supported the hypothesis of two distinct, seasonally-preferred oxygen depletion strategies. In the dry season, the dominant point sources (e.g., domestic outfalls, contributing 47.8 ± 8.3%) were discharged directly into the river and mixed rapidly with river water. Intense saltwater intrusion prolonged river residence times, allowing N to undergo in-stream nitrification (upper-bound flux of 2.90 ± 0.66 μmol N/L) even at low potential rates. This favored nitrate production and oxygen depletion concurrently within the channel and supported a direct, in-situ oxygen depletion. In contrast, non-point sources (e.g., agricultural fertilizers and soil N, contributing >54.9 ± 8.7%) dominated the riverine N pool and entered the river indirectly via runoff in the wet season. These N may have been pre-converted to nitrate through mineralization-nitrification occurring outside the channel. Short river residence times limited potential in-stream nitrification (upper-bound flux of 1.84 ± 0.30 μmol N/L), and convergent evidence pointed to enhanced subsurface flow that potentially exported "pre-formed" nitrate and hypoxic water into the river, strongly supporting the indirect, transport-constrained, ex-situ oxygen depletion hypothesis. Our study challenges the concentration- or rate-dependent paradigm and establishes process-based cascade relationships to reshape the seasonal dynamics of N-associated oxygen depletion in the river-estuary continuum. We propose seasonally adaptive management for mitigating DO depletion: point-source control and flow regulation (e.g. upstream reservoir optimal operation) in the dry season and watershed-scale interventions in the wet season.
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Seasonal preferences of nitrogen-associated oxygen depletion strategies in the river-estuary continuum: Implications for water quality management. — 科研速览 Science Skim