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248 results for “essential oils”
EFSA Project on the use of NAMs to explore interspecies metabolic differences on essential oils as feed additives (Annexes A, B, C, D)
<p>Raw data of phase I and II experiments and PBK model input data and simulation of the EFSA Project on the use of NAMs to explore interspecies metabolic differences on essential oils as feed additives (OC/EFSA/SCER/2021/14).</p>
Data, scripts, and figures of the article: The effect of oregano essential oils on Feed Passage Syndrome in broilers: 2. Assessment under a challenge model
<p>This data set contains the data, JMP scripts, and figures of the article titled "The effect of oregano essential oil on Feed Passage Syndrome in broilers: 2. Assessment under a challenge model" to be published in the journal Animal - Open Space.</p>
Data, scripts, and figures of the article: The effect of oregano essential oils on Feed Passage Syndrome in broilers: 1. Assessment under field conditions
<p>This data set contains the data, JMP scripts, and figures of the article titled "The effect of oregano essential oils on Feed Passage Syndrome in broilers: 1. Assessment under field conditions" to be published in the journal Animal - Open Space.</p>
Fig. 2. Relationships concentration x in Anesthesia of tambaqui Colossoma macropomum (Characiformes: Serrasalmidae) with the essential oils of Aniba rosaeodora and Aniba parviflora and their major compound, linalool
Fig. 2. Relationships concentration x anesthesia induction or recovery time in tambaqui, Colossoma macropomum, exposed to the linalools. a. synthetic linalool; light sedation: y=4.4+(4281/x), r2=0.716, deep sedation: y=-22.5+(12252/x), r2=0.773, deep anesthesia:y=15.3+(17878/x), r2=0.669, recovery: y=43.9+0.66x+0.0015x2, r2=0.712. b. linalool extracted from Aniba rosaeodora; deep sedation: y=29.0+(6010/x), r2=0.784, deep anesthesia: y=-151.3+(60541/x), r2=0.873. Light sedation and recovery: no significant relationship. y = time to reach stage or recovery (s) and x = concentration (µL L-1).
Fig 1 in Essential oils from Citrus x aurantium and Citrus x latifolia (Rutaceae) have anesthetic activity and are effective in reducing ion loss in silver catfish (Rhamdia quelen)
Fig 1. Net ion (Na+, K+, Cl̅) fluxes (a-b) and ammonia excretion (c-d) in silver catfish through 8 h of exposure to essential oils of Citrus x aurantium (EOCA) and Citrus x latifolia (EOCL). Values are means ± SEM. Different letters indicate significant differences between treatments (P <0.05). Positive values indicate net influxes and negative values net effluxes.
UV-Vis spectral dataset of distillation wastewaters from the production of essential oils of lavender cultivars and other aromatic plant species
<pre>The present database provides a set of 16 ultraviolet-visible (UV-Vis) spectra characterizing the residual by-products (distillation wastewaters) of the production of essential oils from lavender (<em>Lavandula angustifolia</em> Mill.) and other aromatic plant species, including interspecific hybrids and cultivars.</pre>
Figure 2 in Toxicity and larvicidal activity on Aedes aegypti of citronella essential oil submitted to enzymatic esterification
Figure 2. Mortality percentage of Artemia salina nauplii in relation to increased sample concentration.
Figure 1 in Toxicity and larvicidal activity on Aedes aegypti of citronella essential oil submitted to enzymatic esterification
Figure 1. Kinetics of citronellyl and geranyl cinnamates production (molar ratio alcohol/acid 3:1, enzyme 15 wt%, temperature 70°C, 150 rpm).
Fig. 1 in Anesthesia and transport of fat snook Centropomus parallelus with the essential oil of Nectandra megapotamica (Spreng.) Mez
Fig. 1. Mortality after transport of fat snook Centropomus parallelus in plastic bags with essential oil from old leaves of Nectandra megapotamica (15 or 30 µL L-1) or ethanol (E) added to the water. W: control with only water. Data presented as means ± SEM (n = 3). a, freshwater - no significant difference between groups or times was observed and the treatments E and 15µL L-1 are superimposed on the first line; b, seawater - values with different superscripts are significantly different (P <0.05). # Significant difference from arrival (0 h).
Fig. 4 in The essential oil from Lippia alba induces biochemical stress in the silver catfish (Rhamdia quelen) after transportation
Fig. 4. LPO/CAT+GPx ratio in the liver of silver catfish (Rhamdia quelen) transported in plastic bags containing water treated with the essential oil from Lippia alba. The values are expressed as the means ± SEM. Different letters indicate levels of significance between the treatments (P<0.05).
Fig. 3 in The essential oil from Lippia alba induces biochemical stress in the silver catfish (Rhamdia quelen) after transportation
Fig. 3. TBARS (A) and protein carbonilation (B) levels in the liver of silver catfish (Rhamdia quelen) transported in plastic bags containing water treated with the essential oil from Lippia alba. The values are expressed as the means ± SEM. Different letters indicate difference levels of significance between the treatments (P<0.05).
Fig. 2. Glutathione-S in The essential oil from Lippia alba induces biochemical stress in the silver catfish (Rhamdia quelen) after transportation
Fig. 2. Glutathione-S-transferase (GST) activity (A), glutathione peroxidase (GPx) activity (B), non-protein thiol group (NPSH) content (C) and ascorbic acid (D) content in the liver of silver catfish (Rhamdia quelen) transported in plastic bags containing water treated with the essential oil from Lippia alba. The values are expressed as the means ± SEM. Different letters indicate levels of significance between the treatments (P<0.05).
Fig. 1 in The essential oil from Lippia alba induces biochemical stress in the silver catfish (Rhamdia quelen) after transportation
Fig. 1. Superoxide dismutase (SOD) and catalase (CAT) activities (A and B, respectively) in the liver of silver catfish (Rhamdia quelen) transported in plastic bags containing water treated with the essential oil from Lippia alba. The values are expressed as the means ± SEM. Different letters indicate levels of significance between the treatments (P<0.05).
Fig. 1 in Anesthetic activity of the essential oil of Ocimum americanum in Rhamdia quelen (Quoy & Gaimard, 1824) and its effects on stress parameters
Fig. 1. Effects of the essential oil of Ocimum americanum (LEO) on cortisol (A), glucose (B) and Na+ (C) levels of R. quelen after handling. Data are presented as the mean ± SEM. Lowercase letters indicate significant differences between times after handling within same experimental group, # represents statistical differences in comparison to water control at the same time after handling, and * corresponds to differences in relation to basal level. Scheirer-Ray-Hare extension of the Kruskal–Wallis test followed by the Dunn test or two-way ANOVA and Tukey test were used (P <0.05).
Figure 1 in Intraspecific C-value variation and the outcomes in Psidium cattleyanum Sabine essential oil
Figure 1. Relative area (%) of terpenic classes in relation to accessions of Psidium cattleyanum (CAT1, CAT2, CAT3, CAT4, CAT5, CAT6 and CAT8). Hydrogenated monoterpenes (HM), oxygenated monoterpenes (OM), hydrogenated sesquiterpenes (HS) and oxygenated sesquiterpenes (OS).
Fig. 1 in Screening of essential oil antifeedants in the elm pest Ambrostoma quadriimpressum (Coleoptera: Chrysomelidae)
Fig. 1. Arena design for use in (A) Exp. 2 (screening for behaviorally active odorants) and (B & C) for Exp. 4 (choice test for beetle foraging).
Fig. 4 in Screening of essential oil antifeedants in the elm pest Ambrostoma quadriimpressum (Coleoptera: Chrysomelidae)
Fig. 4. (A & B) Response of female and male Ambrostoma quadriimpressum beetles to 3 concentrations of odorant 8 in the Y-tube olfactometer (A: female, B: male, n = 30). (C) The results of the choice foraging test (n = 10). * indicates significant difference by χ2-analysis (Asymp. Sig. <0.05).
Fig. 3 in Screening of essential oil antifeedants in the elm pest Ambrostoma quadriimpressum (Coleoptera: Chrysomelidae)
Fig. 3. Dose-response curves of stimuli. The x-axis represents stimulus concentration and the y-axis represents EAG response relative values. (A) Female doseresponse to odorant 11. (B) Female dose-response to odorant 12. (C) Male dose-response to odorant 6. (D) Male dose-response to odorant 5. (E) Male and female dose-responses to odorant 8.
Fig. 7 in Repellency of two essential oils to Monomorium pharaonis (Hymenoptera: Formicidae)
Fig. 7. Percentage of repellency (PR) of Curcuma longa and Litsea cubeba against Monomorium pharaonis in the absence and presence of food at different hours of observation. Values are means of 6 replications, and bars indicate the standard error. The PR values were analyzed by 1-way ANOVA and Tukey's HSD test at a significance level of P ≤ 0.05. An asterisk indicates a significant difference between the two plant oils.
Fig. 6 in Repellency of two essential oils to Monomorium pharaonis (Hymenoptera: Formicidae)
Fig. 6. Mean numbers of ants present on DMSO-treated and untreated control filter papers in the absence or presence of food at different hours of observation. Values are means of 6 replications, and bars indicate the standard error. The mean numbers of ants were compared by paired t-tests at a significance level of P ≤ 0.05. No significant differences between DMSO and untreated control were found.
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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