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The combination of ocean acidification (OA) and eutrophication can undermine the physiological performance of reef-building corals during competition for benthic space, leading to shifts towards non-accreting organisms like soft corals. We conducted a 28-day laboratory orthogonal experiment to test if acidification (950 µatm pCO) and moderate to high nitrate enrichment (4 and 8 µmolL) negatively affect the hard coral Stylophora pistillata while physically competing with the soft coral Xenia spp. We measured photosynthetic efficiency (PE) in hard corals and growth rate, Symbiodiniaceae density, and chlorophyll-a concentration in both hard and soft corals as proxies for their condition and responses to competition. Competition with the soft coral reduced PE, Symbiodiniaceae and chlorophyll-a contents of S. pistillata, while acidification alone and coupled with nitrate enrichment mitigated endosymbiont responses. The growth and chlorophyll-a concentrations of Xenia spp. were decreased by competition, but the soft coral was consistently benefited under nitrate enrichment. These results highlight that competition alone has a stronger negative impact on hard corals than on soft corals. Our study provides experimental evidence on how OA and eutrophication interact and shape coral dynamics, an overlooked but urgent topic in predicting reef futures under environmental change.
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http://dx.doi.org/10.1038/s41598-025-15683-5 | DOI Listing |
J Agric Food Chem
September 2025
College of Horticulture and Landscape Architecture, Yangzhou University, Yangzhou 225009, China.
Rising atmospheric CO exposes plants to high-CO environments, while excessive nitrogen fertilizer use degrades soil, highlighting the need to reduce nitrogen input and cultivate vigorous cucumber seedlings under HC-LN conditions. Calcineurin B-like proteins (CBLs) sense calcium signals and regulate carbon/nitrogen metabolism via CBL-interacting protein kinases (CIPKs), though their roles in cucumber under HC-LN conditions are unclear. Here, we identified seven and 19 genes.
View Article and Find Full Text PDFNew Phytol
September 2025
State Key Laboratory of Nutrient Use and Management, College of Resources and Environmental Sciences, National Academy of Agriculture Green Development, China Agricultural University, Beijing, 100193, China.
Microbial nitrate ammonification is a crucial process to retain nitrogen (N) in soils, thereby reducing N loss. Nitrate ammonification has been studied in enrichment and axenic bacterial cultures but so far has been merely ignored in environmental studies. In particular, the capability of arbuscular mycorrhizal fungi (AMF) to regulate nitrate ammonification has not yet been explored.
View Article and Find Full Text PDFJ Environ Manage
September 2025
State Key Laboratory of Regional Environment and Sustainability, School of Environment, Beijing Normal University, Beijing,100875, China. Electronic address:
Rivers reflect natural-anthropogenic interactions, yet how urbanization affects riverine bacterial communities along rural-urban gradients is poorly understood. This study examined bacterial diversity and assembly mechanisms along such a gradient of river sediments. Results showed that bacterial diversity significantly decreased with increasing urban influence.
View Article and Find Full Text PDFMicrobiol Res
August 2025
Sichuan Institute of Edible Fungi, Sichuan Academy of Agricultural Sciences, Chengdu 610000, China; The National Key Laboratory of Ecological Security and Sustainable Development in Arid Region, Northwest Institute of Eco-Environment and Resources, Chinese Academy of Sciences, Lanzhou 730000, China.
Black morel (Morchella sextelata) is widely regarded as a post-fire mushroom because of its prolific fruiting in post-fire forest soils enriched with charcoal. Intriguingly, artificial cultivation of M. sextelata often incorporates biochar as a soil amendment to enhance yield, although the underlying physicochemical and ecological mechanisms remain unclear.
View Article and Find Full Text PDFAnaerobic methanotrophic archaea (ANME) are crucial to planetary carbon cycling. They oxidise methane in anoxic niches by transferring electrons to nitrate, metal oxides, or sulfate-reducing bacteria. No ANMEs have been isolated, hampering the biochemical investigation of anaerobic methane oxidation.
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