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1,980 results for “Oil”
Fig. 1 in Activity of tea tree oil and nerolidol alone or in combination against Pediculus capitis (head lice) and its eggs
Fig. 1 Head lice and louse eggs detection. (a) Collection of lice by combing from infested head. (b) Basket for lice. (c) Viable louse egg attached to the hair. (d) Lice and louse eggs treated for experiments
Fig. 6 in Activity of tea tree oil and nerolidol alone or in combination against Pediculus capitis (head lice) and its eggs
Fig. 6 Phases of hatching of louse egg, in time. Eye spot (arrow). Operculum with aeropyles (inset). Original magnification ×100. Scale bar 0500 μm
Fig. 7 in Preliminary larvicidal effect of seed oil from Cleome arabica L. on fifth instar larvae of Schistocerca gregaria (Orthoptera: Acrididae)
Fig. 7. Variation of the weight compared to the initial weight of L5 larvae of control S. gregaria and treated with C. arabica seed oil.
Fig. 2 in Preliminary larvicidal effect of seed oil from Cleome arabica L. on fifth instar larvae of Schistocerca gregaria (Orthoptera: Acrididae)
Fig. 2. Variation over time of mortality rate observed in control L5 larvae treated with C. arabica seed oil.
Fig. 1 C-D in Preliminary larvicidal effect of seed oil from Cleome arabica L. on fifth instar larvae of Schistocerca gregaria (Orthoptera: Acrididae)
Fig. 1 C-D. Cleome arabica at fruiting stage (Oued Metlili, Region of Ghardaïa-Northern Algerian Sahara, April 2020). C) Fruiting brunches. D) Fruiting close-up.
Fig. 1 A-B in Preliminary larvicidal effect of seed oil from Cleome arabica L. on fifth instar larvae of Schistocerca gregaria (Orthoptera: Acrididae)
Fig. 1 A-B. Cleome arabica at fruiting stage (Oued Metlili, Region of Ghardaïa-Northern Algerian Sahara, April 2020). A) Whole plant. B) Seed.
Fig. 5 A-B in Preliminary larvicidal effect of seed oil from Cleome arabica L. on fifth instar larvae of Schistocerca gregaria (Orthoptera: Acrididae)
Fig. 5 A-B. Morphological abnormalities observed in L5 muer larvae of S. gregaria treated with C. arabica seed oil.
Fig. 4 A-B. Dead L5 in Preliminary larvicidal effect of seed oil from Cleome arabica L. on fifth instar larvae of Schistocerca gregaria (Orthoptera: Acrididae)
Fig. 4 A-B. Dead L5 larvae following the inability to molt observed in S. gregaria L5 treated with C. arabica seed oil.
Figure 4 in Survival of entomopathogenic nematodes in oil emulsions and control effectiveness on adult engorged ticks (Acari: Ixodida)
Figure 4: Effectivity of EPNs at concentration of 100 IJs/tick in vegetable oil emulsions at concentration of 33% on engorged adult ticks. Bars with unequal letters are statistically different (Tukey, P <0.05).
Figure 2 in Survival of entomopathogenic nematodes in oil emulsions and control effectiveness on adult engorged ticks (Acari: Ixodida)
Figure 2: Survival of EPNs in oil emulsions of J. VirGiniana and C. CitratUS at a concentration of 13% under laboratory conditions.
Figure 3 in Survival of entomopathogenic nematodes in oil emulsions and control effectiveness on adult engorged ticks (Acari: Ixodida)
Figure 3: Effectivity of EPNs at concentration of 50 IJs/tick in vegetable oil emulsions at concentration of 33% on engorged adult ticks. Bars with unequal letters are statistically different (Tukey, P <0.05).
Figure 5 in Survival of entomopathogenic nematodes in oil emulsions and control effectiveness on adult engorged ticks (Acari: Ixodida)
Figure 5: Control effectiveness of S. websteri at 119 IJs/tick in two vegetable oil emulsions at a concentration of 33% and a Control with S. websteri in only distilled water.
Fig. 1 in Characterization of Crude and Biodiesel Oils of Jatropha curcas and Calophyllum inophyllum in Guam
Fig. 1. Potential biofuel crops in Guam. Flow chart is indicating processing to produce biofuels. (from Marutani and Martinez, presented at the 5th Regional Conference of Island Sustainability on April 15, 2014)
Fig. 3 in Characterization of Crude and Biodiesel Oils of Jatropha curcas and Calophyllum inophyllum in Guam
Fig. 3. Jatropha curcas showing: field planting in Guam (3A); a close-up tree (3B); inflorescences (3C), different stages of fruits (3D); open fruit with three seeds in each fruit (3E); dried seeds and ground seeds before extracted oil (3F); oil extracts (3G); and final product of crude oils of jatropha (left) and da'ok (right) after removing sediments (3H).
Fig. 6 in Addition of cinnamon oil improves toxicity of rotenone to Spodoptera litura (Lepidoptera: Noctuidae) larvae
Fig. 6. The concentration of rotenone in brain tissue afer treatment.* indicates significant difference between the 2 treatments at the same point in time (P <0.05, Tukey honest significant difference tests).
Fig. 4 in Addition of cinnamon oil improves toxicity of rotenone to Spodoptera litura (Lepidoptera: Noctuidae) larvae
Fig. 4. The concentration of rotenone in hemolymph afer treatment.* indicates significant difference between the 2 treatments at the same point in time (P <0.05, Tukey honest significant difference tests).
Fig. 3 in Addition of cinnamon oil improves toxicity of rotenone to Spodoptera litura (Lepidoptera: Noctuidae) larvae
Fig. 3. The concentration of rotenone in midgut tissue afer treatment.* indicates significant difference between the 2 treatments at the same point in time (P <0.05, Tukey honest significant difference tests).
Fig. 1 in Addition of cinnamon oil improves toxicity of rotenone to Spodoptera litura (Lepidoptera: Noctuidae) larvae
Fig. 1. Liquid chromatogram (A: rotenone standard, B: excreta, C: hemolymph, D: brain, E: ventral nerve cord, F: midgut).
Fig. 2 in Addition of cinnamon oil improves toxicity of rotenone to Spodoptera litura (Lepidoptera: Noctuidae) larvae
Fig. 2. The concentration of rotenone in excreta afer treatment.* indicates significant difference between the 2 treatments at the same point in time (P <0.05, Tukey honest significant difference tests).
Fig. 7 in Addition of cinnamon oil improves toxicity of rotenone to Spodoptera litura (Lepidoptera: Noctuidae) larvae
Fig. 7. Cells of Spodoptera litura midgut peritrophic membrane (A: control, B: rotenone, C: rotenone + cinnamon oil). The arrows show the change in cell structure in response to treatment. Note that in A the cells are single, packed, and clearly visible, whereas in B the cell spacing is wider, and in C there is slightly wider cell spacing, and abnormality of the membrane.
ScienceDex guides
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
Allen Brain Atlas
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DANDI Archive for NWB datasets
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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.