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33 results for “Bioaccumulation”
Fig. 3 in Mercury bioaccumulation in fish of commercial importance from different trophic categories in an Amazon floodplain lake
Fig. 3. Bioconcentration factor (Bf) among trophic categories in the Lago Grande de Manacapuru, in the Amazon floodplain. DET, Detritivores; HER/FRU, Herbivores/Frugivores; ONI, Omnivores; ONI/FRU, Omnivores/Frugivores; ONI/INS, Omnivores/Insectivores; PLA, Planktivores; CAR/PIS, Carnivores/Piscivores; PIS, Piscivores; CAR/NEC, Carnivores/Necrophagous.
Fig. 2 in Mercury bioaccumulation in fish of commercial importance from different trophic categories in an Amazon floodplain lake
Fig. 2. Mean levels of total mercury in fish from different trophic categories in the Lago Grande de Manacapuru, in the Amazon floodplain. DET, Detritivores; HER/FRU, Herbivores/ Frugivores; ONI, Omnivores; ONI/FRU, Omnivores/ Frugivores; ONI/INS, Omnivores/Insectivores; PLA, Planktivores; CAR/PIS, Carnivores/Piscivores; PIS, Piscivores; CAR/NEC, Carnivores/Necrophagous.
Figure 1 in Bioaccumulation of heavy metals in the tissues of Schizothorax plagiostomus at River Swat
Figure 1. Sampling sites: Charbagh, Odigram, and Landakai of River Swat (Google map, 2017). 2.3. Fish identification
Figure 3 in Bioaccumulation of heavy metals in the tissues of Schizothorax plagiostomus at River Swat
Figure 3. Atomic absorption spectrophotometer used for the analysis of heavy metals i.e zinc, lead, chromium and nickel present in the extracted tissues of muscles and gills.
Figure 7 in Bioaccumulation of heavy metals in the tissues of Schizothorax plagiostomus at River Swat
Figure 7. Heavy metals concentrations (ppm) in muscle and gills of S. plagiostomus at Odigram, Charbagh, and Landakai site.
Figure 2 in Bioaccumulation of heavy metals in the tissues of Schizothorax plagiostomus at River Swat
Figure 2. The collected samples of the Schizothorax plagiostomus species from Charbagh, Odigram and Landakai of River Swat.
Fig. 1 in Mercury bioaccumulation in fish of commercial importance from different trophic categories in an Amazon floodplain lake
Fig. 1. Map of lago Grande de Mancapuru.
Figure 4 in Bioaccumulation of heavy metals in the tissues of Schizothorax plagiostomus at River Swat
Figure 4. Concentration of heavy metals in muscles of Schizothorax plagiostomus
Figure 6 in Bioaccumulation of heavy metals in the tissues of Schizothorax plagiostomus at River Swat
Figure 6. Concentration of Nickel (ppm) in the muscles and gills of S. plagiostomus.
Figure 5 in Bioaccumulation of heavy metals in the tissues of Schizothorax plagiostomus at River Swat
Figure 5. Concentration of heavy metals in gills of Schizothorax plagiostomus
Preliminary findings on the bioaccumulation and marine trophic transfer of the antifouling biocide DCOIT in soluble and nanostructured forms (FAIR dataset)
<p>The present dataset includes the raw data regarding the bioaccumulation, trophic transfer, and biomagnification of DCOIT, in the soluble and nanostructured forms, in the marine bivalve <em>Mytillus galloprovincialis</em>, using three different uptake routes. This data supports the main findings of the study that both forms of the biocide can be trophically transferred as well as suggests that encapsulation is a good strategy to minimize biocidal bioaccumulation and thus protect marine ecosystems. </p>
Dataset: Effects of dietary exposure to plant toxins on bioaccumulation, survival, and growth of black soldier fly (Hermetia illucens) larvae and lesser mealworm (Alphitobius diaperinus) [larval performance]
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Dataset: Effects of dietary exposure to plant toxins on bioaccumulation, survival, and growth of black soldier fly (Hermetia illucens) larvae and lesser mealworm (Alphitobius diaperinus) [concentrations]
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Datasets: Evolution of the mineral concentration and bioaccumulation of the black soldier fly, Hermetia illucens, feeding on two different larval media
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Metal and Metalloid Bioaccumulation in Nodipecten nodosus (Linnaeus, 1758) Scallops (Mollusca: Pectinidae) Cultivated in Southeastern Brazil and Associated Public Health Issues
<p>Supplementary Table S1. Instrumental ICP-MS conditions for metal and metalloid detection in lion’s paw scallops in Southeastern Brazil. <strong>Table S2.</strong> Metal accumulation levels for Cd, Cu, Zn and Ni between scallop species and different locations worldwide. All data are expressed as μg. g<sup>-1</sup>w.w. FAAS - Flame Atomic Absorption Spectrometry, ICP-MS - Inductively Coupled Plasma Mass Spectrometry, ICP-OES - Inductively Coupled Optical Emission Spectrometry, ATFS – Atomic Fluorescence Spectrometry. <strong>Table S3</strong>. Metal accumulation levels for Pb, Cr, Fe and Mn between scallop species and different locations worldwide. All data are expressed as μg. g<sup>-1</sup>w.w. FAAS - Flame Atomic Absorption Spectrometry, ICP-MS - Inductively Coupled Plasma Mass Spectrometry, ICP-OES - Inductively Coupled Optical Emission Spectrometry, ATFS – Atomic Fluorescence Spetrometry</p>
The validity of the bioaccumulation index versus the bioaccumulation factor for assessment of element accumulation in black soldier fly larvae
<p>Dataset for the input-output calculations to evaluate bioaccumulation factor (BAF) and bioaccumulation index (BAI) in comparison with true element retention rate in black soldier fly larvae (BSFL). The results suggest a higher agreement of true element retention rate with BAF than with BAI. https://doi.org/10.3920/JIFF2023.0021</p>
Data from: Microcystins bioaccumulate but do not biomagnify in an experimental aquatic food chain
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Experimental data on the effects of heavy metal compounds on the development, survival, and bioaccumulation patterns in <em>Calliphora vicina</em> larvae
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Bioaccumulation of the pesticide Imidacloprid in stream organisms and sublethal effects in salamanders in West Virginia
<p>Dataset for the article "Bioaccumulation of the Pesticide Imidacloprid in Stream Organisms and Sublethal Effects on Salamanders." Contains imidacloprid and metabolite concentrations for Desmognathus spp., benthic macroinvertebrates, and stream water. Also contains corticosterone concentration data for Desmognathus spp. and body condition indices for 5 species of stream salamander in relation to water imidacloprid concentrations.Dataset for the article "Bioaccumulation of the Pesticide Imidacloprid in Stream Organisms and Sublethal Effects on Salamanders." Contains imidacloprid and metabolite concentrations for Desmognathus spp., benthic macroinvertebrates, and stream water. Also contains corticosterone concentration data for Desmognathus spp. and body condition indices for 5 species of stream salamander in relation to water imidacloprid concentrations.</p>
Data from: Marine foraging ecology influences mercury bioaccumulation in deep-diving northern elephant seals
Mercury contamination of oceans is prevalent worldwide and methylmercury concentrations in the mesopelagic zone (200–1000 m) are increasing more rapidly than in surface waters. Yet mercury bioaccumulation in mesopelagic predators has been understudied. Northern elephant seals (Mirounga angustirostris) biannually travel thousands of kilometres to forage within coastal and open-ocean regions of the northeast Pacific Ocean. We coupled satellite telemetry, diving behaviour and stable isotopes (carbon and nitrogen) from 77 adult females, and showed that variability among individuals in foraging location, diving depth and δ13C values were correlated with mercury concentrations in blood and muscle. We identified three clusters of foraging strategies, and these resulted in substantially different mercury concentrations: (i) deeper-diving and offshore-foraging seals had the greatest mercury concentrations, (ii) shallower-diving and offshore-foraging seals had intermediate levels, and (iii) coastal and more northerly foraging seals had the lowest mercury concentrations. Additionally, mercury concentrations were lower at the end of the seven-month-long foraging trip (n = 31) than after the two-month- long post-breeding trip (n = 46). Our results indicate that foraging behaviour influences mercury exposure and mesopelagic predators foraging in the northeast Pacific Ocean may be at high risk for mercury bioaccumulation.
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Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.