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4,004 results for “In vivo”
Figure 2 from: Obaid KA, Fawzi HA (2024) Evaluation of empagliflozin efficacy as a promising anti-aging treatment in mice: In-vivo study. Pharmacia 71: 1-9. https://doi.org/10.3897/pharmacia.71.e116184
Figure 2 Assessment of inflammatory and oxidative stress markers.
Figure 3 from: Obaid KA, Fawzi HA (2024) Evaluation of empagliflozin efficacy as a promising anti-aging treatment in mice: In-vivo study. Pharmacia 71: 1-9. https://doi.org/10.3897/pharmacia.71.e116184
Figure 3 Assessment of COL-1 and -3 levels.
Figure 1 from: Obaid KA, Fawzi HA (2024) Evaluation of empagliflozin efficacy as a promising anti-aging treatment in mice: In-vivo study. Pharmacia 71: 1-9. https://doi.org/10.3897/pharmacia.71.e116184
Figure 1 Flow chart of the study.
Figure 1 from: AlNaimat S, Abu-Odeh A, Talib WH (2024) Anticancer and antioxidant activities of essential oils of Chiliadenus iphionoides from Jordan: in vitro and in vivo study. Pharmacia 71: 1-7. https://doi.org/10.3897/pharmacia.71.e116195
Figure 1 Major compounds identified in C. iphionoides essential oil by GC-MS analysis.
Figure 1 from: Theodorea CF, Nurkolis F, Idrus E, Yusuf TW, Vivo CD, Subali D, Taslim NA, Nugraha AP (2024) Physicochemical characterization of novel toothpaste from Caulerpa racemosa and Thunnus fish bone: Antibacterial potency against colonization of selected cariogenic-periodontal bacteria. Pharmacia 71: 1-8. https://doi.org/10.3897/pharmacia.71.e118021
Figure 1 Antioxidant Activity of Toothpaste. (****)p=0.0001; (**)p=0.0099; (ns)=0.5126.
Figure 4 from: Abdullah T, Al-Kinani K (2024) Propranolol nanoemulgel: Preparation, in-vitro and ex-vivo characterization for a potential local hemangioma therapy. Pharmacia 71: 1-12. https://doi.org/10.3897/pharmacia.71.e115330
Figure 4 The impact of the Km ratio on globule size and PDI of the generated NEs.
Figure A2 from: Abdullah T, Al-Kinani K (2024) Propranolol nanoemulgel: Preparation, in-vitro and ex-vivo characterization for a potential local hemangioma therapy. Pharmacia 71: 1-12. https://doi.org/10.3897/pharmacia.71.e115330
Figure A2 Photographic pictures displaying the dilutability of PHCl-NEs.
Figure 8 from: Abdullah T, Al-Kinani K (2024) Propranolol nanoemulgel: Preparation, in-vitro and ex-vivo characterization for a potential local hemangioma therapy. Pharmacia 71: 1-12. https://doi.org/10.3897/pharmacia.71.e115330
Figure 8 Spreadability values for the PHCl-NEG compared to the marketed product.
Figure 3 from: Abdullah T, Al-Kinani K (2024) Propranolol nanoemulgel: Preparation, in-vitro and ex-vivo characterization for a potential local hemangioma therapy. Pharmacia 71: 1-12. https://doi.org/10.3897/pharmacia.71.e115330
Figure 3 Pseudo-ternary phase diagrams of PHCl-NEs at various Km ratios.
Figure A1 from: Abdullah T, Al-Kinani K (2024) Propranolol nanoemulgel: Preparation, in-vitro and ex-vivo characterization for a potential local hemangioma therapy. Pharmacia 71: 1-12. https://doi.org/10.3897/pharmacia.71.e115330
Figure A1 Specimen of skin from Wister Albino rat.
Figure 1 from: Abdullah T, Al-Kinani K (2024) Propranolol nanoemulgel: Preparation, in-vitro and ex-vivo characterization for a potential local hemangioma therapy. Pharmacia 71: 1-12. https://doi.org/10.3897/pharmacia.71.e115330
Figure 1 Histogram of PHCl solubility in different oils.
Figure 6 from: Abdullah T, Al-Kinani K (2024) Propranolol nanoemulgel: Preparation, in-vitro and ex-vivo characterization for a potential local hemangioma therapy. Pharmacia 71: 1-12. https://doi.org/10.3897/pharmacia.71.e115330
Figure 6 Surface 3D view of PHCl-NE3 by AFM.
Figure 5 from: Abdullah T, Al-Kinani K (2024) Propranolol nanoemulgel: Preparation, in-vitro and ex-vivo characterization for a potential local hemangioma therapy. Pharmacia 71: 1-12. https://doi.org/10.3897/pharmacia.71.e115330
Figure 5 In-vitro drug diffusion profiles of PHCl-NEs (NE2 and NE3).
Figure 2 from: Abdullah T, Al-Kinani K (2024) Propranolol nanoemulgel: Preparation, in-vitro and ex-vivo characterization for a potential local hemangioma therapy. Pharmacia 71: 1-12. https://doi.org/10.3897/pharmacia.71.e115330
Figure 2 Chemical structure of PHCl.
Figure 1 from: Hamed RA, Talib WH (2024) Targeting cisplatin resistance in breast cancer using a combination of Thymoquinone and Silymarin: an in vitro and in vivo study. Pharmacia 71: 1-19. https://doi.org/10.3897/pharmacia.71.e117997
Figure 1 Shows the treatment groups for the in vivo study with the subjected doses.
• Bibliographic search on global warming effects and extracted metadata (pH, salinity, oxygen, temperatures, diseases observed in field/ in vitro/ in vivo, clinical signs, pathology, morbidity/mortality);
<p><a><span>B ibliographic search on global warming effects and extracted metadata </span></a><span><span><a href="#_msocom_1" name="_msoanchor_1">[MOU1]</a><span> </span></span></span><span>(pH, salinity, oxygen, temperatures, diseases observed in field/ <em>in</em> <em>vitro</em>/ <em>in</em> <em>vivo</em>, clinical signs, pathology, morbidity/mortality);</span><span></span></p>
Automatic Volumetric Temperature Regulation During In Vivo MRI-guided Laser-Induced Thermotherapy (MRg-LITT) with multiple laser probes
<p>This dataset is associated with the article.</p> <p>An example of automatic regulation with three laser probes used corresponding to <strong>Experiment A</strong> of the article is provided in this dataset with :</p> <ul> <li>dataset generated from the<strong> initial low power shot</strong> containing:<br> <ul> <li>'Data' : reconstructed data of the MRI thermometry sequence (magnitude, phase, temperature) ;</li> <li>'ROIs': the three masks of ROIs that are used for regulation and are generated from this low power shot ;</li> <li>'Sources' : matrices of heating distributions of the three laser probes used for regulation and computed from this low power shot.</li> </ul> </li> <li>dataset generated from the<strong> regulation</strong> : <ul> <li>'Data': reconstructed data of the MRI thermometry sequence (magnitude, phase, temperature, thermal dose) ;</li> <li>'Curves': regulation curves (target temperature, regulated temperature and baseline);</li> <li>'Coord_regulated_points': position [slice, X,Y] in thermometry images of points used for regulation (showing maximal temperature at each repetition) for each ROI and each repetition.</li> </ul> </li> </ul>
Data Set_Exploring the Molecular Mechanisms of Endothelial Dysfunction Affecting Myocardial Infarction by Integrating Multiple Datasets with In Vivo Experimental Validation
Open the record for dataset details and reuse information.
Fast raster-scan optoacoustic mesoscopy enables assessment of human melanoma microvasculature in vivo
<p>The folder contains raw optoacoustic imaging data and the reconstruction code.</p> <p>1. raw data to compare the motion effects;</p> <p>2. waw data to compare the two ultrasound transducers.</p> <p>3. the main function of the image reconstruction algorithm.</p>
Three inhibitory phenolic acids against common ragweed (Ambrosia artemisiifolia L.) had a minimal effect on maize growth in vitro and in vivo
<p><span>With the increasing demand for non-chemical weed control methods, phenolic acids have shown promise due to their natural weed inhibitory potential. In this study, the inhibitory effect of </span><span>ferulic acid, vanillic acid and <em>p</em>-coumaric acid was investigated on <em>Ambrosia artemisiifolia</em> L. and the selectivity of <em>Zea mays</em> L. against these phenolic acids was tested. The seeds of <em>A. artemisiifolia</em> and <em>Z. mays</em> were treated <em>in vitro</em> with <em>three phenolic acids</em> at doses of 200 - 600 × 10<sup>-7</sup> mol and <em>in vivo</em> foliar on <em>A. artemisiifolia</em> and <em>Z. mays</em> plants. While all phenolic acids had effects on the early growth of <em>A. artemisiifolia,</em> <em>p</em>-coumaric acid significantly reduced the length of radicle and hypocotyl by more than 60% while the effects on <em>Z. mays</em> were minimal. <em>In vivo</em> assessments using chlorophyll fluorescence and multispectral imaging showed selective stress responses in <em>A. artemisiifolia</em> but not in <em>Z. mays</em> after foliar application. The <em>in vitro</em> results show that <em>p</em>-coumaric acid is a promising compound for the control of <em>A. artemisiifolia</em>. However, these phenolic acids at these doses led to an insufficient reduction in photochemical efficiency. Therefore, these natural compounds need to be combined with other methods of weed control. </span></p>
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
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.