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1,111 results for “Nanoparticles”
Figure 5 in Effects of in vivo exposures to nanoparticles (Al O , CuO, TiO ) on the activities of ATPases in the gill and muscle of freshwater mussel (Unio tigridis)
Figure 5. Effects of NPs on Mg-ATPase activity in the muscle of mussels after 14 days. * indicates significant (p <0.05) differences compared to control.
Figure 1 in Effects of in vivo exposures to nanoparticles (Al O , CuO, TiO ) on the activities of ATPases in the gill and muscle of freshwater mussel (Unio tigridis)
Figure 1. TEM images of Al O (a), CuO (b), and TiO (c) nanoparticles in stock solutions (Canli and Canli, 2020).
Fig. 4 in Are cerium oxide nanoparticles transferred from plants to the aphid Myzus persicae (Hemiptera: Aphididae)?
Fig. 4. Spatial distribution of Ce assimilated by Myzus persicae maintained in plants of Nicandra physaloides treated with nano-Ce (1,000 mg Ce L-1): (a) presents a group of individuals; (b) shows the XRF spectrum with Ce Lα and Lβ lines corresponding to the hot-spot; (c) shows the map for 1 individual; (d) the corresponding XRF spectrum.
Fig. 3. X in Are cerium oxide nanoparticles transferred from plants to the aphid Myzus persicae (Hemiptera: Aphididae)?
Fig. 3. X-ray fluorescence chemical images unraveling the Ce spatial distribution at Nicandra physaloides leaf, (a) low magnification (10×) map covering nearly a quarter of the leaf surface, and (b) high magnification (70×) map showing a hot-spot of Ce at the leaf.
Fig. 2 in Are cerium oxide nanoparticles transferred from plants to the aphid Myzus persicae (Hemiptera: Aphididae)?
Fig. 2. (a) Transmission electron micrographs of the CeO2 nanoparticles, and (b) histogram revealing the particle size distribution.
Fig. 1 in Are cerium oxide nanoparticles transferred from plants to the aphid Myzus persicae (Hemiptera: Aphididae)?
Fig. 1. Total number of Myzus persicae nymphs produced by females exposed to Nicandra physaloides leaves submitted to treatments of foliar spraying of nano-CeO2 at different concentrations.
Fig. 1 in Nasal vaccination of six squirrel monkeys (Saimiri sciureus): Improved immunization protocol against Toxoplasma gondii with a nanoparticle-born vaccine
Fig. 1. Schedule of the vaccinal protocol and of the immunological analysis performed on the 6 Saimiris.
Fig. 2. T in Nasal vaccination of six squirrel monkeys (Saimiri sciureus): Improved immunization protocol against Toxoplasma gondii with a nanoparticle-born vaccine
Fig. 2. T-cell immune response analyzed by IFN-γ ELISPOT on PBMC from 6 Saimiris. The results are presented as Spot Forming Units for 106 PBMC (left), before the immunization (T0), one month after the prime, 5 months after the 1st boost and 2 months after the 2nd boost. A representative picture of the ELISPOT plate after the 2nd boost is presented (right). Only 4 animals were analyzed by ELISPOT after the 2nd boost due to blood coagulation in the sampling tubes. Statistical analyses were made by KruskalWallis test, * p <0.05, ** p <0.01.
Fig. 3 in Nasal vaccination of six squirrel monkeys (Saimiri sciureus): Improved immunization protocol against Toxoplasma gondii with a nanoparticle-born vaccine
Fig. 3. Humoral immune response analyzed by ELISA on serum for each Saimiri. The results are presented as optical density (OD) before the immunization (T0), and 2 months after the 2nd boost. Serum from one seropositive and three seronegative humans were used as positive and negative controls, respectively. Cut-off was determined at each dilution, as the mean + 2.5xSD of the negative controls.
Figure 5 in Evaluation of chitosan and silver nanoparticles Against isolated pathogens from Mulberry Silkworm, Bombyx mori L. (Lepidoptera: Bombycidae) under laboratory conditions
Figure 5. TEM micrograph of chitosan nanoparticles prepared by ionic gelation method. Table 3. Antimicrobial activity of silver nanoparticles (µl) with different concentrations against fungal and bacterial isolates.
Figure 1 in Evaluation of chitosan and silver nanoparticles Against isolated pathogens from Mulberry Silkworm, Bombyx mori L. (Lepidoptera: Bombycidae) under laboratory conditions
Figure 1. Mean weight of healthy and infected fourth and fifth instar larvae of B. mori. Isolation and identification of bacterial isolates: Total of 7 bacterial were successfully isolated from the outer surface and the inner bоdy of silkworm larvae.
Figure 7 in Effects of nanoparticles treatments and salinity stress on the genetic structure and physiological characteristics of Lavandula angustifolia Mill.
Figure 7. UPGMA tree of the evaluated samples based on the molecular ISSR data (treatment's code as in Table 1).
Figure 6 in Effects of nanoparticles treatments and salinity stress on the genetic structure and physiological characteristics of Lavandula angustifolia Mill.
Figure 6. Results of the AMOVA test revealed a significant genetic diversity between the treated samples
Figure 5 in Effects of nanoparticles treatments and salinity stress on the genetic structure and physiological characteristics of Lavandula angustifolia Mill.
Figure 5. UPGMA tree of the studied samples according to essential oil compositions (treatment's code as in Table 1).
Figure 3 in Effects of nanoparticles treatments and salinity stress on the genetic structure and physiological characteristics of Lavandula angustifolia Mill.
Figure 3. Effects of Fe O and ZnO nanoparticles on concentration of the leaves Fe2+ amounts. Whiskers indicate the standard deviation, 2 3 and dissimilar letters showed the significant variation based on Duncan test (P≤ 0.05).
Figure 4 in Effects of nanoparticles treatments and salinity stress on the genetic structure and physiological characteristics of Lavandula angustifolia Mill.
Figure 4. Effects of ZnO and Fe O nanoparticles on intracellular Zn 2+ concentration. Whiskers reveal the standard deviation, and 2 3 dissimilar letters showed the significant variation according to Duncan test (P≤ 0.05).
Dataset for "Nanoparticle doping as a way to enhance holmium fiber lasers efficiency"
<p>This dataset contains the specific numerical values of fiber properties used in Figures 2-4.</p>
SAXS data of bipyramidal LiYF4 nanoparticles
<p>SAXS data of bipyramidal LiYF4 nanoparticles synthesized by the Federal Institute for Materials Research and Testing (BAM) and measured by the Physikalisch-Technische Bundesanstalt (PTB) at the synchrotron facility Bessy II, Berlin, Germany.</p> <p>Partial project funding by the European Metrology Partnership (EMP; project 22HLT04 MetrINo).</p> <p> </p> <p>Remark:</p> <p>The measurement data (“merged”) were obtained by merging two independent SAXS and WAXS measurements, which overlap in q, using the pyFAI software package. The values of q are given in 1/nm, the values of I and Ierr (stdv) in arbitrary units (a.u.).<br>The measured data (“SI units”) were obtained by averaging SAXS curves along the y-axis of each capillary with homogeneous thickness (radiation length). The values of q are given in 1/nm, the values of I and Ierr (stdv) in 1/m.</p>
Plasmonic Heating by Indium Tin Oxide Nanoparticles: Enabling Decoupled Near-Infrared Theranostics.
<p>Dataset corresponding to the experimental results shown in the figures 2 to 5 (four in total) within the original research work entitled "Plasmonic Heating by Indium Tin Oxide Nanoparticles: Enabling Decoupled Near-Infrared Theranostics".</p>
Pt3Sn nanoparticle electrocatalysts
<p>Galaxy RO Crate object containing the workflow and data with the reproduction of the results published in: H. Huang, A. B. A. A. Nassr, V. Celorrio, S. F. R. Taylor, V. K. Puthiyapura, C. Hardacre, D. J. L. Brett, A. E. Russell. (2018) Effects of heat treatment atmosphere on the structure and activity of Pt3Sn nanoparticle electrocatalysts: a characterisation case study. Faraday Discussions. V. 208. pp. 555-573. DOI: 10.1039/c7fd00221a. </p> <p>This RO is published as part of the research data submitted for the paper <strong>Facilitating Reproducibility in Catalysis Research with Managed Workflows and RO-Crates: A Galaxy Case Study</strong>, ChemCatChem, DOI: 10.1002/cctc.202401676.</p>
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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.