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Fig. 5 in Appraisal of sperm dynamics as a crucial trait of radio- sterilized Spodoptera litura (Lepidoptera: Noctuidae) and its F progeny for evaluation of the 'inherited sterility technique' for pest suppression
Fig. 5. Effect of gamma irradiation on (a) the percentage of active apyrene sperm, and (b) the intensity of active sperm (no. of undulations /s) in mated irradiated parental (P) male Spodoptera litura.
Fig. 6 in Appraisal of sperm dynamics as a crucial trait of radio- sterilized Spodoptera litura (Lepidoptera: Noctuidae) and its F progeny for evaluation of the 'inherited sterility technique' for pest suppression
Fig. 6. Effect of gamma irradiation on (a) the percentage of active apyrene sperm, and (b) the intensity of sperm activity (no. of undulations /s) in mated irradiated parental (P) male Spodoptera litura and their F1progeny.
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.
Figs. 1–4 in Armored scale (Hemiptera: Diaspididae) pests on Abies fraseri (Pinaceae) Christmas trees imported into Florida
Figs. 1–4. Two intercepted scale species from imported Christmas trees in Florida. 1. Female of Fiorinia externa; a) terminally attached crawler exuviae; b) hard- ened 2nd-stage female exuviae covering enclosed adult female, note enclosed embryonic cuticles; c) location of shriveled adult female; d) remains of males, with evidence of parasitism; e) plant stomatal bands and epicuticular wax. The adult females settled and developed in opposite orientations. 2–4. Female of Hemiberlesia ithacae; 2. a) body of adult female afer scale cover removed; b) dorsal half of 2nd-stage exuviae; c) ventral surface of reflexed covers of early adult female; 3. scale cover of early adult female; a) crawler exuviae; b) cover formation in early wax-deposition stages of development of adult female; 4. commingled exuviae and scale covers of several females; a) cover formation in early wax-deposition stages of development of adult female. b) crawler exuviae and 2nd-stage wax; c) fully developed crawler flap for crawler emergence. Photograph credit: Ian Stocks.
Fig. 1 in Actual and potential distribution of five regulated avocado pests across Mexico, using the maximum entropy algorithm
Fig. 1. Potential distribution of 5 insect pests of quarantine importance in Mexican avocados, based on ecological niche modeling. A) Conotrachelus aguacatae; B) Conotrachelus perseae; C) Copturus aguacatae; D) Heilipus lauri; and E) Stenoma catenifer. Current and potential distribution in Mexico was projected according to biogeographic provinces (Morrone 2005, 2014a), 1 = Baja California, 2 = California, 3 = Sonora, 4 = Sierra Madre Occidental, 5 = Mexican Plateau, 6 = Tamaulipeca, 7 = Mexican Pacific Coast, 8 = Trans-Mexican Volcanic Belt, 9 = Sierra Madre Oriental, 10 = Veracruzana, 11 = Balsas Basin, 12 = Sierra Madre del Sur, 13 = Chiapas, 14 = Yucatan. Scale values: 0 = absence, 1 = presence.
Fig. 2 in Actual and potential distribution of five regulated avocado pests across Mexico, using the maximum entropy algorithm
Fig. 2. Geographic areas in Mexico where both the insect pest and avocados are found. Shading indicates hectares affected. A) Conotrachelus aguacatae; B) Conotrachelus perseae; C) Copturus aguacatae; D) Heilipus lauri; and E) Stenoma catenifer.
Fig. 1 in First report of the soybean pest Euschistus quadrator (Hemiptera: Pentatomidae) in Mississippi
Fig. 1. Euschistus quadrator dorsal view (lef) showing spines on the pronotum and ventral view (right). Specimen photographed by Michael Grodowitz and con- firmed as Euschistus quadrator Rolston by Joseph Eger, Tampa, Florida.
Fig. 5 in Inherited sterility in Tuta absoluta (Lepidoptera: Gelechiidae): Pest population suppression and potential for combined use with a generalist predator
Fig. 5. Prey consumption in the choice test involving progeny of irradiated females. Number of T. absoluta eggs consumed per T. cucurbitaceus (mean ± SE) individual in 24 h from the following T. absoluta eggs crosses, ♀U × ƋU and ♀I × ƋU. The different letters above the 2 error bars indicates that there was a significant difference in the numbers of eggs consumed based on the crosses from which they had originated, even though the female parent had been irradiated in 1 of the crosses (paired t tests, P <0.05). U = untreated, I = irradiated.
Fig. 3 in Inherited sterility in Tuta absoluta (Lepidoptera: Gelechiidae): Pest population suppression and potential for combined use with a generalist predator
Fig. 3. Prey consumption in the no-choice test. Number of T. absoluta eggs consumed per T. cucurbitaceus (mean ± SE) individual in 24 h from following T. absoluta eggs crosses: ♀U × ƋU,♀U × ƋI or ♀I × ƋU.The same letter above the 3 error bars indicates that there were no significant differences in the numbers of eggs consumed based on the crosses from which they had originated (ANOVA, P> 0.05). U = untreated, I = irradiated.
Fig. 1 in Inherited sterility in Tuta absoluta (Lepidoptera: Gelechiidae): Pest population suppression and potential for combined use with a generalist predator
Fig. 1. Population suppression by irradiated individuals and their progeny over 12 weeks at a 10:1 irradiated:untreated ratio. a) Number of eggs/ cage, b) number of small larvae /cage and c) number of large larvae/cage (mean ± SE). Only 1 release of irradiated moths was made, i.e., at the beginning of the experiment. For details see text on Experiment 1.
Fig. 4 in Inherited sterility in Tuta absoluta (Lepidoptera: Gelechiidae): Pest population suppression and potential for combined use with a generalist predator
Fig. 4. Prey consumption in the choice test involving progeny of irradiated males. Number of T. absoluta eggs from following T. absoluta eggs crosses, ♀U × ƋU and ♀U × ƋI,consumed per T. cucurbitaceus (mean ± SE) individual in 24 h. The same letter above the 2 error bars indicates that there was no significant difference in the numbers of eggs consumed based on the crosses from which they had originated, even though the male parent had been irradiated in 1 of the crosses (paired t tests, P> 0.05). U = untreated, I = irradiated.
Fig. 2 in Inherited sterility in Tuta absoluta (Lepidoptera: Gelechiidae): Pest population suppression and potential for combined use with a generalist predator
Fig. 2. Population suppression by irradiated individuals and their progeny over 12 weeks at a 15:1 irradiated:untreated ratio. a) Number of eggs/cage, b) number of small larvae /cage and c) number of large larvae/cage (mean ± SE). Only 1 release of irradiated moths was made, i.e., at the beginning of the experiment. For details see text on Experiment 2.
Fig. 5 in Towards incorporating insect isotope analysis using cavity ring-down spectroscopy into area-wide insect pest management programs
Fig. 5. Cumulative standard deviation of the mean carbon isotope signature of individual moths, field-caught LBAM (circles), mass-reared pink bollworm (squares) and mass-reared LBAM (triangles), analysed using the CM-CRDS module.
Fig. 3 in Towards incorporating insect isotope analysis using cavity ring-down spectroscopy into area-wide insect pest management programs
Fig. 3. Carbon isotope signature of common cutworm leg samples from different moths reared on the artificial laboratory diet or caught in the wild (circles, n = 5, Bars +/- 3 SD). The spermatophore data point (triangle) is the carbon isotope signature of spermatophores dissected from laboratory-reared females mated with field-caught males (n = 5, Bars +/- 3 SD). All samples measured using CM-CRDS.
Fig. 1 in Towards incorporating insect isotope analysis using cavity ring-down spectroscopy into area-wide insect pest management programs
Fig. 1. Carbon isotope ratios of 16 different common dietary components measured using either elemental analysis isotope ratio mass spectrometry (EAIRMS) or combustion module cavity ring down spectrometry (CM-CDRS).
Fig. 2 in Towards incorporating insect isotope analysis using cavity ring-down spectroscopy into area-wide insect pest management programs
Fig. 2. Carbon isotope ratios of 3 populations of the common cutworm measured using either elemental analysis isotope ratio mass spectrometry (EA-IRMS) or combustion module cavity ring down spectrometry (CM-CDRS): Field-caught moths: squares; synthetic diet-reared moths: circles and laboratory-reared on castor diet moths: triangles.
Fig. 4 in Integrated pest management of the German cockroach (Blattodea: Blattellidae) in manufactured homes in rural North Carolina
Fig. 4. Distribution of German cockroaches from trap catches at various locations within homes of individual participants.
Fig. 2 in Integrated pest management of the German cockroach (Blattodea: Blattellidae) in manufactured homes in rural North Carolina
Fig. 2. Trend of monthly mean cockroach trap catches per participant over the sampling period (Oct 2011 to Mar 2014) during the Pre-IPM, IPM-education, and IPM-education plus bait intervention phases.
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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.