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3,206 results for “property (T)”
Fig 4 in Wood Properties Of Nine Pinus Sylvestris Open-Pollinated Families Originating From Different Lithuanian Populations
Fig 4. Wood ring width (total, early- and latewood) of nine Scots pine half-sib families in different field trials and forest types. Error bars indicate standard deviation.
Fig 5 in Wood Properties Of Nine Pinus Sylvestris Open-Pollinated Families Originating From Different Lithuanian Populations
Fig 5. Wood density (annual ring, early- and latewood) of nine Scots pine half-sib families in different field trials and forest types. Error bars indicate standard deviation.
Fig 3 in Wood Properties Of Nine Pinus Sylvestris Open-Pollinated Families Originating From Different Lithuanian Populations
Fig 3. Wood hardness of nine Scots pine half-sib families in different field trials and forest types. Error bars indicate standard deviation.
FIGURE 3. Quantitative burrow properties. A in Linking burrow morphology to the behaviors of predatory soil arthropods: Applications to continental ichnofossils
FIGURE 3. Quantitative burrow properties. A) Measurements were taken for number of surface openings (SO), burrow slope (S), maximum depth (D), total length (L), tunnel, shaft, and chamber width (w), height (h), and circumference (c), and branching angles (BA). B) Complexity includes the number of segments (s), chambers (h), and surface openings (e) within a single burrow system. C) Tortuosity of a single burrow segment is found by dividing the total length (u) by the straight-line distance (v) from end to end. Modified from Hembree (2019).
Fig. 3 in Trichilia (Meliaceae) plants: an important source of biomolecules with insecticidal properties
Fig. 3. Survival curves of Copitarsia decolora larvae fed on an artificial diet supplemented with extracts of Trichilia hirta bark at 100, 500, 1,000, and 1,500 ppm: (a) hexane, (b) acetone, (c) methanol, and (d) aqueous.
Fig. 4 in Trichilia (Meliaceae) plants: an important source of biomolecules with insecticidal properties
Fig. 4. Survival curve of Copitarsia decolora larvae fed on an artificial diet supplemented with hexane extract of Trichilia havanensis bark at 100, 500, 1,000, and 1,500 ppm.
Figure 2 in The influence of distance from crushed stone mining on surface-active arthropods and soil chemical properties
Figure 2. Principal coordinates analyses (PCO) of the composition of soil chemical properties across sampling points from A, Blue Rock and B, Ikwezi mining sites. Grey triangles = 5 m, circles = 30 m, squares = 50 m, and open triangles = 70 m from the mining activities.
Figure 1 in The influence of distance from crushed stone mining on surface-active arthropods and soil chemical properties
Figure 1. Study sites showing sampling points (5 m, 30 m, 50 m and 70 m) from the mining activities at Blue Rock and Ikwezi mining sites.
Figure 3 in The influence of distance from crushed stone mining on surface-active arthropods and soil chemical properties
Figure 3. Effect of distance from the mining sites on the mean values of zinc. A, Blue Rock and B, Ikwezi mining site.
Figure 6. Caspase 3 in Physical characterization and wound healing properties of Zamzam water
Figure 6. Caspase 3 levels of treatment groups. ***Extremely high significant at p <0.001 when compared to Group 1; **Highly significant lesser at p <0.01 on comparing with Group 2; ns: nonsignificant when compared to group 3 at p <0.05. Group 1: Normal control; Group 2: Disease control (wound without treatment); Group 3: Standard control (treatment with povidoneiodine cream); Group 4: Zamzam water treatment group.
Figure 7. A comparative wound healing study. A1 in Physical characterization and wound healing properties of Zamzam water
Figure 7. A comparative wound healing study. A1: Control animals, dorsal view of wound soon after creating on the 1st day; B1: Dorsal view of the wound after treating with povidone-iodine cream on 3rd day; C1: Dorsal view of the wound after treating with Zamzam water on 3rd day; A2: Control animals, dorsal view of the wound on 6th day; B2: Dorsal view of the wound after treating with povidoneiodine cream on 6th day; C2: Dorsal view of the wound after treating with Zamzam water on 6th day; A3: Control animals, dorsal view of the wound on 12th day; B3: Dorsal view of the wound after treating with povidone-iodine cream on 12th day; C3: dorsal view of the wound after treating with Zamzam water on 12th day.
Figure 2. Serum IL-1 in Physical characterization and wound healing properties of Zamzam water
Figure 2. Serum IL-1β level of treatment groups. *Significantly lesser at p <0.05 on comparing with Group 2; **Highly significant lesser at p <0.01 on comparing with group 2; ns: nonsignificant when compared to Group 3. Group 1: Normal control; Group 2: Disease control (wound without treatment); Group 3: Standard control (treatment with povidone-iodine cream); Group 4: Zamzam water treatment group.
Figure 1 in Physical characterization and wound healing properties of Zamzam water
Figure 1. Zeta potential analysis of Zamzam water. (A) Before exposure to open-air; (B) After exposure to open-air.
Figure 3. Serum IL-6 in Physical characterization and wound healing properties of Zamzam water
Figure 3. Serum IL-6 level of treatment groups. ***Extremely high significant at p <0.001; **Extremely significant at p <0.01 on comparing with Group 2; ns: nonsignificant when compared to Group 3. Group 1: Normal control; Group 2: Disease control (wound without treatment); Group 3: Standard control (treatment with povidone iodine cream); Group 4: Zamzam water treatment group.
Figure 5. Caspase 9 in Physical characterization and wound healing properties of Zamzam water
Figure 5. Caspase 9 levels of treatment groups. ***Extremely high significant at p <0.001 when compared to Group 1; **Significantly lesser at p <0.01 on comparing with Group 2; ns: nonsignificant on comparing with group 3 at p <0.05. Group 1: Normal control; Group 2: Disease control (wound without treatment); Group 3: Standard control (treatment with povidone-iodine cream); Group 4: Zamzam water treatment group.
Figure 1 in The inhibitory and anticancer properties of Annona squamosa L. seed extracts
Figure 1. (A) DPPH scavenging activity of A. squamosa seed extracts (B) Superoxide scavenging activity of A. squamosa seed extracts (C) H O scavenging activity of A. squamosa seed extracts (D) Nitric oxide scavenging activity of A. squamosa seed extracts (E) Reducing 2 2 potential of the A. squamosa seed extracts.
Figure 2 in The inhibitory and anticancer properties of Annona squamosa L. seed extracts
Figure 2. Cytotoxicity assay of (A). Extracts PSE, ASE, ESE and MSE on H,EK293 cells. (B) Anti-proliferation assay of extracts PSE, ASE, ESE and MSE on M,CF7 cells and (C). Extracts PSE, ASE, ESE and MSE on H,epG2 cells. The mean SD of the data, which reflect testing of experiments, is displayed. The positive control utilised is coumarin. [PSE (petroleum ether seed extract),ASE (acetone seed extract), ESE (ethanol seed extract), MSE (Methanol seed extract)].*p <0.02; **p <0.05; ***p <0.002 related by the control.
Figure 3 in The inhibitory and anticancer properties of Annona squamosa L. seed extracts
Figure 3. Drugs' molecular interactions with the EGFR kinase: (A) Anethole; (B) Cyclopentane, 1,1,3-trimethyl; (C) Phosphine oxide, tributyl; (D) CID22311.
Figure 5 in Phenolic compound and fatty acid properties of some microalgae species isolated from Erbil City
Figure 5. Scatterplot matrix shows the correlation between palmitic acid, stearic acid, oleic acid and linoleic acid in a- Spirogyra sp. b- Spirulina sp. c- Chara sp. d- Chlorella sp.
Figure 3 in Phenolic compound and fatty acid properties of some microalgae species isolated from Erbil City
Figure 3. The distribution of DPPH and total phenol shows the same across categories of Treatment, Independent-Samples KruskalWallis Test and rejects the hypothesis on the base of Null Hypothesis with highly significant levels. A- Spirogyra sp., b-Spirulina sp. c- Chlorell sp. a d- Chara sp.
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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)
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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.