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FIGURE 1 in On Egg Eclosion and Larval Development in Euglossine Bees
FIGURE 1. Microphotographs of integument of body of cleared first instar of Eulaema (Apeulaema) nigrita (Lepeletier) showing two spiracles, associated trachea, and continuous band of fine spicules extending along one side of body just above spiracular line. Large structure circling each spiracle is large atrium of second instars forming around very small atrium or first instar. FIGURE 2. Close-up of one spiracle.
Figs 1-4 in Nesting behaviour, male territoriality and larval development of Eremnophila binodis (F ) from Brazil (Hymenoptera: Sphecidae)
Figs 1-4: Laval development of a female Eremnophila binodis consuming a caterpillar. 1 Newly emerged larva; 2 larva immobile feeding the prey probably by sucking; 3 larva in the fourth day of development consuming externally the prey; 4 full-grown larva, the head capsule was the only portion of the prey that was not consumed.
Fig. 9 in Eight Species Of Anuran Amphibians (Amphibia, Anura) Found In Ukraine: Comparative Morphology And Classification Of Larval Development Stages
Fig. 9. The structure of four species' anuran amphibian's sucker at the first stage of development (view from below).
Fig. 6 in Eight Species Of Anuran Amphibians (Amphibia, Anura) Found In Ukraine: Comparative Morphology And Classification Of Larval Development Stages
Fig. 6. Stages characterizing the beginning of metamorphosis: 23 — resorption of the fin's cloacal piece; 24 — front limbs are seen through the skin.
Fig. 5 in Eight Species Of Anuran Amphibians (Amphibia, Anura) Found In Ukraine: Comparative Morphology And Classification Of Larval Development Stages
Fig. 5. Stages defined according to the development of fingers and hind limb joints: 14 — the leg is in the shape of a shovel; 15 — embryos of two fingers; 16 — embryos of three fingers; 17 — embryos of four fingers; 18 — embryos of five fingers; 19 — embryos of three fingers are segregated; 20 — embryos of five fingers
Fig. 4 in Eight Species Of Anuran Amphibians (Amphibia, Anura) Found In Ukraine: Comparative Morphology And Classification Of Larval Development Stages
Fig. 4. Stages defined according to limb bud's length and diameter correlation: 9–l <1/2d; 10–l ≥ 1/2d; 11–l ≥ 1d; 12– l ≥ 11/2d; 13–l = 2d.
Fig. 3 in Eight Species Of Anuran Amphibians (Amphibia, Anura) Found In Ukraine: Comparative Morphology And Classification Of Larval Development Stages
Fig. 3. Stages of operculum's development: 6 — operculum touches the belly skin or accretes it, gills can be seen from both sides; 7 — operculum completely covers gills from one (right) side; 8 — external gills are completely covered by operculum.
Fig. 1 in Eight Species Of Anuran Amphibians (Amphibia, Anura) Found In Ukraine: Comparative Morphology And Classification Of Larval Development Stages
Fig. 1. Stages of external gills' development: 1 — external gills ridges get separated; 2 — gills branches embryos; 3 — emergence of gills filaments on external gills branches (filaments development may vary; operculum has not started developing yet).
Fig. 5 in Captive management, reproduction, and comparative larval development of Klappenbach's Red-bellied Frog, Melanophryniscus klappenbachi Prigioni and Langone, 2000
Fig. 5. Body size of different test groups. (A) Single tadpole, O‒1, and (B) five tadpoles per box, O‒5, in osmosis water. (C) Single tadpole, P‒1, and (D) five tadpoles per box, P‒5, in pond water.
Fig. 2. Keeping and rearing M in Captive management, reproduction, and comparative larval development of Klappenbach's Red-bellied Frog, Melanophryniscus klappenbachi Prigioni and Langone, 2000
Fig. 2. Keeping and rearing M. klappenbachi. (A) Terrarium of the adult group housing eight specimens. (B) Rearing of the tadpole test groups in a climate chamber.(C) Rearing containers for the young toadlets.
Fig. 1 in Captive management, reproduction, and comparative larval development of Klappenbach's Red-bellied Frog, Melanophryniscus klappenbachi Prigioni and Langone, 2000
Fig. 1. Melanophryniscus klappenbachi. (A) Dorsal and (B) ventral view of an adult female. (C) Amplexus.(D) Egg clump attached to moss. (E) Contrasting photo of a tadpole, used for evaluating the growth.
Fig. 4 in Captive management, reproduction, and comparative larval development of Klappenbach's Red-bellied Frog, Melanophryniscus klappenbachi Prigioni and Langone, 2000
Fig. 4. (A) Mortality rate of different test groups until metamorphosis. (B) Average growth rate of the different test groups. (C) Number of tadpoles metamorphosed per day after hatching (O = osmosis water, P = pond water, number indicates individuals per container).
Fig. 3 in Captive management, reproduction, and comparative larval development of Klappenbach's Red-bellied Frog, Melanophryniscus klappenbachi Prigioni and Langone, 2000
Fig. 3. Developing coloration in young toadlets of different ages. (A) Recently metamorphosed toadlet. (B) Ten days after metamorphosis. (C) Twenty-three days after metamorphosis. (D) Two months after metamorphosis.
Figure 1 in Effect of a short-cycle apple tree cultivar on oriental fruit moth (Lepidoptera: Tortricidae) development and larval behavior
Figure 1. Average number of Grapholita molesta males captured monthly by pheromone-bait traps in 'Eva' and 'Gala' apple orchards during seven years in Porto Amazonas, Paraná, Brazil.
Fig. 6 in Larval development and breeding ecology of Ziegler's Crocodile Newt, Tylototriton ziegleri Nishikawa, Matsui and Nguyen, 2013 (Caudata: Salamandridae), compared to other Tylototriton representatives
Fig. 6. Tylototriton ziegleri larvae from Bao Lac district, Cao Bang Province with indication of the corresponding developmental stage and scale. Photographs of stages 27 to 36 are from preserved eggs photographed under a digital microscope (photos C. Michel) and photographs of stages 44 and 45 are from individuals in life kept at the Me Linh station (photos T. Ziegler).
Fig. 4 in Larval development and breeding ecology of Ziegler's Crocodile Newt, Tylototriton ziegleri Nishikawa, Matsui and Nguyen, 2013 (Caudata: Salamandridae), compared to other Tylototriton representatives
Fig. 4. Drawing of a formol-preserved larva of Tylototriton ziegleri at stage 35. Drawing C. Michel.
Fig. 2 in Larval development and breeding ecology of Ziegler's Crocodile Newt, Tylototriton ziegleri Nishikawa, Matsui and Nguyen, 2013 (Caudata: Salamandridae), compared to other Tylototriton representatives
Fig. 2. Percentage of the number of adults of Tylototriton vietnamensis and T. ziegleri found at each interval of percentage of canopy cover measured above the water of the breeding site.
Fig. 5 in Larval development and breeding ecology of Ziegler's Crocodile Newt, Tylototriton ziegleri Nishikawa, Matsui and Nguyen, 2013 (Caudata: Salamandridae), compared to other Tylototriton representatives
Fig. 5. Metamorph of Tylototriton ziegleri at stage 44, with an additional finger on left hand, collected in Ha Giang Province in 2012 and preserved in ethanol. Photo M. Bernardes.
Fig. 1. A in Larval development and breeding ecology of Ziegler's Crocodile Newt, Tylototriton ziegleri Nishikawa, Matsui and Nguyen, 2013 (Caudata: Salamandridae), compared to other Tylototriton representatives
Fig. 1. A. Adult male of Tylototriton ziegleri; B. Habitat type in Bao Lac district, Cao Bang Province; C. Adult male of Tylototriton vietnamensis; D. Habitat type in Tay Yen Tu Nature Reserve, Bac Giang Province. Photos M. Bernardes.
Fig. 7 in Larval development and breeding ecology of Ziegler's Crocodile Newt, Tylototriton ziegleri Nishikawa, Matsui and Nguyen, 2013 (Caudata: Salamandridae), compared to other Tylototriton representatives
Fig. 7. Dark and light phenotypic variations of Tylototriton vietnamensis found at the type locality. Photo M. Bernardes.
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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
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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.