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This study explores the impact of a wind storm on sediment resuspension and marine biogeochemical dynamics. Additionally, the storm took place during an expedition researching bottom trawling, enabling the direct comparison of certain natural and fisheries-related disturbances. The storm was initiated by a decline in atmospheric pressure and a 2 h period of gale force winds, which was followed by over 40 h of elevated bottom currents. Storm induced turbidity, potentially a cumulative post-fishing impact, was remarkably higher compared to what was observed in a recent trawling event. Storm-induced mixing and movement of water masses led to decreased silicate and increased phosphate concentrations in the water column, accompanied by lower salinity and higher fluorescence. The erosion depth of the seabed averaged around 0.3 cm during the peak turbidity period. Trawl-induced erosion in the area has been measured at over twice that depth, and has been linked to intermittent reductions in near-bed oxygen levels. In contrast, storm-induced turbidity coincided with increased oxygen due to wave mixing, suggesting inherent differences in how trawling and storms can oxidize reduced substances. These findings suggest that storms have a greater regional impact, whereas the local impacts of bottom trawling on biogeochemistry can be more significant.
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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11021396 | PMC |
http://dx.doi.org/10.1038/s41598-024-59317-8 | DOI Listing |
Environ Res
September 2025
Key Laboratory of Biodiversity and Environment on the Qinghai-Tibet Plateau, Ministry of Education, Xizang University, Lhasa 850000, China; School of Environmental Science and Engineering, Tianjin University, Tianjin 300072, China. Electronic address:
Glacial lakes play a vital role as indicators of global climate change and regional environmental responses. Eukaryotic planktonic microorganisms, pivotal in driving biogeochemical cycling of nutrients within these ecosystems, are crucial for preserving stability and ecological function of glacial lake environments. Nevertheless, the spatial and temporal dynamics, along with the mechanisms responsible for sustaining eukaryotic planktonic microbial communities in glacial lakes, especially during the glacier retreat and lake formation, are still largely uncharted.
View Article and Find Full Text PDFMar Environ Res
September 2025
Department of Earth Sciences, National Taiwan Normal University, Taipei, Taiwan.
The northern South China Sea (SCS) shelf and southern Taiwan Strait (TS) are dynamic marginal seas influenced by both freshwater discharge from the Pearl River and seasonal coastal upwelling. These interacting hydrological forces shape ecological gradients that affect marine planktonic communities. Planktonic foraminiferal assemblages were analyzed from plankton tow and surface sediment samples collected during three cruises (2018, 2020, and 2022) along a ∼1000 km transect extending from the Pearl River estuary to the southern TS.
View Article and Find Full Text PDFSci Total Environ
September 2025
Faculty of Agricultural, Environmental and Food Sciences, Free University of Bozen-Bolzano, Bolzano 39100, Italy. Electronic address:
Nanoparticles (NPs) have emerged as transformative agents in agriculture, offering promising applications in nanofertilizers, nanopesticides, and soil amendments. However, significant knowledge gaps persist regarding the long-term impact of engineered NPs on soil health, including microbial networks and biogeochemical fluxes. Despite their potential to enhance nutrient use efficiency, promote crop resilience, and support sustainable farming, the interactions of NPs with soil matrices, especially their transformations, persistence, and ecological implications, are not fully explored.
View Article and Find Full Text PDFSci Total Environ
September 2025
Department of Animal Sciences and Aquatic Ecology, Ghent University, Gent, Belgium.
Wetlands play a crucial role in global greenhouse gas (GHG) dynamics, yet their response to climate change is not yet fully understood. Here, we investigate how increasing temperature and oxygen availability interact to regulate wetland GHG emissions through combined analysis of biogeochemical and functional gene measurements. We found distinct temperature-dependent shifts in carbon emission pathways, with CO emissions unexpectedly declining as temperature rose from 15 to 25 °C, while increasing consistently at higher temperatures (25-35 °C), reflecting a transition to more thermally-driven processes.
View Article and Find Full Text PDFJ Environ Manage
September 2025
Ecological Modelling Laboratory, Department of Physical and Environmental Sciences, University of Toronto Scarborough, Toronto, Ontario, M1C 1A4, Canada. Electronic address:
Agriculture intensification represents an essential strategy to ensure food security for the growing human population, but it also poses considerable environmental concerns. Climate change and associated projections of an increased frequency of extreme precipitation and runoff events may amplify nutrient dynamics along the watershed-lake continuum, and could further exacerbate the poor water quality conditions downstream. Identifying hotspot locations with higher propensity for sediment and nutrient export and designing effective mitigation measures at the source is more critical than ever.
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