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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.
Fig. 5 in Addition of cinnamon oil improves toxicity of rotenone to Spodoptera litura (Lepidoptera: Noctuidae) larvae
Fig. 5. The concentration of rotenone in ventral nerve cord tissue afer treatment.* indicates significant difference between the 2 treatments at the same point in time (P <0.05, Tukey honest significant difference tests).
Figure 2 in Toxicity of Tioxazafen to MelOIDOgYNe INCOgNITa and ROTYleNCHUlUS reNIfOrmIS
Figure 2: Effect of tioxazafen on hatch of M. incognita and R. reniformis. Different letters over bars per sample day indicate a significant difference at α = 0.05 according to Fisher's LSD procedure. LSD, least significant difference.
Figure 1 in Toxicity of Tioxazafen to MelOIDOgYNe INCOgNITa and ROTYleNCHUlUS reNIfOrmIS
Figure 1: Relationship between the paralyses of M. incognita and R. reniformis treated for 24 hr and 48 hr with water solutions of tioxazafen. Equations were derived by nonlinear regression of probit analysis. For each equation, the R2 value was 0.99 (P = 0.0001).
Figure 4 in Toxicity of Tioxazafen to MelOIDOgYNe INCOgNITa and ROTYleNCHUlUS reNIfOrmIS
Figure 4: Effect of low concentrations of tioxazafen on infectivity of M. incognita and R. reniformis on tomato roots. Different letters over bars indicate a significant difference at α = 0.05 according to Fisher's LSD procedure. LSD, least significant difference.
Figure 3 in Toxicity of Tioxazafen to MelOIDOgYNe INCOgNITa and ROTYleNCHUlUS reNIfOrmIS
Figure 3: Recovery of M. incognita and R. reniformis treated with tioxazafen. Each species was treated with water solutions corresponding to its 48-hr EC50 value of tioxazafen for 24 hr, and then rinsed and transferred to distilled water. Different letters over bars indicate a significant difference at α = 0.05 according to Fisher's LSD procedure. LSD, least significant difference.
Figure 2 in The impact of wheat resistance and bio-rational insecticides toxicity against cherry-oat aphid, Rhopalosiphum padi L. (Hemiptera: Aphididae)
Figure 2: Trichomes density on mm 2 leaf area of various wheat varieties. Each value is the mean of five replications. *Mean followed by the same letter do not differ significantly at p = 0.05
Figure 3 in The impact of wheat resistance and bio-rational insecticides toxicity against cherry-oat aphid, Rhopalosiphum padi L. (Hemiptera: Aphididae)
Figure 3. Effect of IGR's and plant extracts application on the population of Rhopalosiphum padi. A. After the first spray, B. After the second spray DBT (day before treatment), DAT (day after treatment).
Figure 1 in The impact of wheat resistance and bio-rational insecticides toxicity against cherry-oat aphid, Rhopalosiphum padi L. (Hemiptera: Aphididae)
Figure 1: Rhopalosiphum padi preference at various time intervals and varieties. Each value is the mean of five replications. *Mean followed by the same letter do not differ significantly at p = 0.05
Fig 1 in Sub-lethal toxic effect of cadmium chloride (CdCl ) on freshwater murrel Channa punctata (BLOCH)
Fig 1: Protein Content of the tissues (gill and liver) of C. punctata at 5 ppm and 10 ppm of CdCl2 after 7 days of exposure
Figure 1 in Acetaminophen as an oral toxicant for invasive California kingsnakes (Lampropeltis californiae) on Gran Canaria, Canary Islands, Spain
Figure 1. Length and mass distributions for treatment groups. Small vertical ticks are individual values for females (♀, above center line) and males (♂, below). Red and blue boxes are mean ± 1 standard deviation for females and males, respectively. The dark vertical line is the mean of both sexes, and the dark horizontal line is ± 1 standard deviation of both sexes. Statistical tests for differences among all pairwise comparisons of treatment groups indicated no substantial length or mass biases.
Figure 4 in Acetaminophen as an oral toxicant for invasive California kingsnakes (Lampropeltis californiae) on Gran Canaria, Canary Islands, Spain
Figure 4. Survival curves for time to death of all dosed California kingsnakes that succumbed to acetaminophen intoxication. Shaded areas indicate 95% compatibility intervals for the survival estimates (lines). Differences between the 5th and 95th percentiles of dosage (B) and body condition (C) demonstrate the size of the respective effect.
Figure 3 in Acetaminophen as an oral toxicant for invasive California kingsnakes (Lampropeltis californiae) on Gran Canaria, Canary Islands, Spain
Figure 3. Dosages (mg/kg) evaluated in this study (log scale). Black ticks indicate snakes that died, red indicates survivors. The dark gray area is the frequency distribution of dosages that were evaluated.
Figure 2 in Acetaminophen as an oral toxicant for invasive California kingsnakes (Lampropeltis californiae) on Gran Canaria, Canary Islands, Spain
Figure 2. Observed mortality rates by treatment group and sex. Lines indicate point estimates of mortality rate (%) and shaded areas are the 95% compatibility intervals of the estimate.
Fig. 1 in Acute toxicity of the water-soluble fraction of diesel in Prochilodus vimboides Kner (Characiformes: Prochilodontidae)
Fig. 1. Comet score (CS) in Procholidus vimboides exposed to different water soluble fractions of diesel (1:1,000, 1:500 and 1:100) for 24 and 96 h. The results are expressed as the mean ± standard deviation. *: Significant difference between one dilution and the respective control after 24- or 96-h exposure periods using an ANOVA and the Dunn's test (p<0.05). ** Significant difference between the two exposure times (24 and 96 h) for the same dilution using the T- test (p<0.05).
Рис. 2. Ментум Λичинок роΑа Chironomus из озера Кенон Fig. 2. Mentum of the Chironomus genus larvae from Lake Kenon in Toxic pollution assessment of Chita TPP-1 cooling reservoir by applying the method of head capsule morphological deformations in chironomid larvae
Рис. 2. Ментум Λичинок роΑа Chironomus из озера Кенон Fig. 2. Mentum of the Chironomus genus larvae from Lake Kenon
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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.