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Climate-Driven Harmful Algal Blooms Impair the Coastal Nitrogen Filter and Shift Denitrification Pathways toward N2O Accumulation.

Created on 18 Jul 2026

Authors

Mingzhen Zhang, Yiqi Yu, Xiyu Zhang, Fan Qu, Nengwang Chen

Published in

Environmental science & technology. Jul 17, 2026. Epub Jul 17, 2026.

Abstract

Climate change is expanding harmful algal blooms (HABs) beyond nutrient-driven paradigms, yet their effects on coastal nitrogen cycling remain poorly understood. Here, we investigated a climate-driven dry-season Phaeocystis globosa bloom in Xiamen Bay, a subtropical coastal embayment, using field observations, isotopic incubations, and metagenomics. Contrary to the conventional view that HABs stimulate denitrification, the bloom suppressed sedimentary denitrification by ∼70% and reduced total dissolved excess gaseous nitrogen (ΔN2 + ΔN2rO) by ∼50% relative to the pre-bloom period. Despite this decline in nitrogen removal, N2O yield (ΔN2O/(ΔN2 + ΔN2O)) increased by approximately an order of magnitude from 0.04% to 0.30%, indicating a shift toward incomplete denitrification. This shift was linked to a sulfur-mediated microbial reorganization. In seawater, sulfur-metabolizing denitrifiers, particularly Roseobacter, capable of utilizing algal-derived sulfur compounds (e.g., DMSP), were enriched and became dominant. These taxa harbored clade I nosZ, whose sensitivity to oxygen and pH likely constrained N2O reduction. In sediments, chemolithoautotrophic sulfur-oxidizing denitrifiers, particularly Sulfurovum, became dominant and were associated with reduced N2 production. Together, these compartment-specific responses weakened denitrification and shifted its end-product composition toward a higher N2O share, revealing a sulfur-coupled microbial mechanism by which climate-driven HABs impair the coastal nitrogen filter.

PMID:
42467901
Bibliographic data and abstract were imported from PubMed on 18 Jul 2026.

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