Fermentation emerges as key pathway for ammonium production beneath the Pearl River Delta
A study led by Professor Jimmy Jiujiu Jiao from the Department of Earth and Planetary Sciences at The University of Hong Kong (HKU) and Professor Meng Li from Shenzhen University has identified microbial fermentation as the likely main pathway for ammonium production in sediments beneath the Pearl River Delta, helping to explain the region's exceptionally high natural groundwater ammonium levels.
The Pearl River Delta hosts the highest naturally occurring groundwater ammonium concentrations reported globally, making affected groundwater unsuitable for drinking without treatment. Previous studies linked this accumulation to nitrogen-rich organic matter in fine-grained sediments and restricted groundwater circulation, but the responsible microbial pathways and organisms remained unclear.
By analyzing sediment samples across the delta, the team identified the major microbial processes involved and showed how sediment depth, age and salinity shape microbial communities and ammonium-producing pathways.
The findings were recently published in the journal Nature Communications.
Fermentation identified as the main pathway for ammonium production
The researchers combined geochemical and metagenomic analyses of 36 sediment samples collected from three boreholes spanning different depths. The samples covered approximately 13,000 years of geological history and represented terrestrial-dominated, transitional and marine-dominated depositional environments.
By analyzing microbial genetic material preserved in the sediments, the team reconstructed 770 representative metagenome-assembled genomes (MAGs), providing detailed insights into the microorganisms present and their potential metabolic functions. Microbial communities and ammonium-related metabolic potential varied significantly along the land-sea gradient. Bacteria showed greater metabolic flexibility across different sediment conditions, which may help explain these shifts, while archaea tended to retain more conserved functional traits.
The team found that fermentation-related genes were the most abundant across all three depositional zones, suggesting that fermentation is likely the primary microbial pathway for ammonium production. The abundance of these genes declined with sediment depth and age as readily degradable organic matter became depleted, leaving fewer substrates for microbial fermentation and ammonium production. This accumulation was particularly pronounced in the marine-dominated zone, where fine-grained, organic-rich sediments promote microbial production while restricting groundwater flow, trapping ammonium over thousands of years.
Beyond fermentation, other microbial nitrogen-processing pathways also varied across the land-sea gradient. Nitrogen occurs in several chemical forms, and in some microbial pathways, nitrate is first reduced to nitrite, which can be converted into ammonium. In the terrestrial-dominated zone, genes associated with the first step—nitrate reduction—were the second most abundant. In the more saline transitional and marine-dominated zones, genes associated with the second step—the direct conversion of nitrite into ammonium—became more prominent. These differences suggest that salinity and the availability of nitrate and nitrite influence how ammonium is produced in different depositional environments.
Among the bacteria identified, the marine-associated genus Brevirhabdus emerged as a potentially important contributor to ammonium cycling. Likely a legacy of past marine depositional conditions, it carries genes involved in fermentation and the conversion of nitrite into ammonium, suggesting that ancient depositional environments may continue to shape present-day groundwater chemistry.
Professor Jiao said, "Our findings move beyond the general understanding that buried organic matter is the source of ammonium. We have identified the microbial pathways and organisms that are likely responsible for producing it and shown how these processes vary across sediments formed under different environmental conditions."
Implications for groundwater management
By linking depositional history, hydrogeochemistry and microbial function, the study provides a framework for understanding ammonium accumulation in delta regions worldwide. The findings may help identify vulnerable areas and improve groundwater assessment, monitoring and treatment planning in densely populated delta regions.
Publication details
Meiqing Lu et al, Microbial drivers of ammonium accumulation in Holocene sediments of the Pearl River Delta, Nature Communications (2026). DOI: 10.1038/s41467-026-72058-8
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