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Knowledge of the uptake and fate of mercury (Hg) compounds in biota is important in understanding the global cycling of Hg and its transfer pathways through food chains. In this study, we analysed total mercury (T-Hg) and methylmercury (MeHg) concentrations in 117 livers of Scottish birds of prey that were found across Scotland and submitted for post-mortem examination through the Raptor Health Scotland project between 2009 and 2019. Statistical comparisons focussed on six species (barn owl, Tyto alba; Eurasian common buzzard, Buteo buteo; golden eagle, Aquila chrysaetos; hen harrier, Circus cyaneus; Eurasian sparrowhawk, Accipiter nisus; and tawny owl, Strix aluco) and showed that golden eagles had a statistically lower fraction of MeHg compared to other raptor species. Further investigation using stable carbon and stable nitrogen isotope ratio measurements carried out for the golden eagles (n = 15) indicated that the increased presence of inorganic mercury (iHg) correlated with a marine influence on the primarily terrestrial diet. Additional bioimaging (n = 1) with laser ablation - inductively coupled plasma - mass spectrometry indicated the co-location of Hg and selenium (Se) within the liver tissue and transmission electron microscopy showed evidence of nanoparticles within the range of 10-20 nm. Further analysis using single particle - inductively coupled plasma - mass spectrometry (n = 4) confirmed the presence of Hg nanoparticles. Together, the evidence suggests the presence of mercury selenide (HgSe) nanoparticles in the liver of some golden eagles that, to our knowledge, has never been directly observed in terrestrial birds of prey. This study points to two alternative hypotheses: these golden eagles may be efficient at breaking down MeHg and form HgSe nanoparticles as a detoxification mechanism (as previously observed in cetaceans), or some golden eagles with elevated iHg may have accumulated these nanoparticles by foraging on stranded cetaceans or seabirds.
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http://dx.doi.org/10.1016/j.scitotenv.2022.154557 | DOI Listing |
Dev Dyn
September 2025
Department of Internal Medicine, Division of Cardiovascular Medicine, Francois M. Abboud Cardiovascular Research Center, Fraternal Order of Eagles Diabetes Research Center, University of Iowa, Iowa City, Iowa, USA.
Background: Gene transcription is crucial for embryo and postnatal development and is regulated by the Mediator complex. Mediator is comprised of four submodules, including the kinase submodule (CKM). The CKM consists of MED13, MED12, CDK8, and CCNC.
View Article and Find Full Text PDFAJPM Focus
October 2025
The Metabolic Centre, Maroochydore, Australia.
Br J Sports Med
September 2025
Faculty of Kinesiology, University of Calgary, Calgary, Alberta, Canada.
Objective: Examine potentially modifiable risk factors (MRFs) for female/woman/girl athletes' lower-extremity injuries.
Design: Systematic review with meta- or semiquantitative analyses and Grading of Recommendations, Assessment, Development and Evaluation.
Data Sources: MEDLINE, CINAHL, APA PsycINFO, Cochrane Systematic Review Database, CENTRAL, SPORTDiscus, EMBASE, ERIC searched 30 October or 23 November 2023.
Diabetes
September 2025
Fraternal Order of Eagles Diabetes Research Center, University of Iowa, Iowa City, IA.
Unlabelled: Type 1 diabetes (T1D) is caused by the selective autoimmune ablation of pancreatic β-cells. Emerging evidence reveals β-cell secretory dysfunction arises early in T1D development and may contribute to diseases etiology; however, the underlying mechanisms are not well understood. Our data reveal that proinflammatory cytokines elicit a complex change in the β-cell's Golgi structure and function.
View Article and Find Full Text PDFCJEM
September 2025
Waterloo Regional Health Network, McMaster University, Kitchener, ON, Canada.