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543 results for “larval development”
Fig. 27 in Comparative study of the larval development of four anuran species from the Khorat Plateau, Thailand
Fig. 27. Tadpole of Polypedates megacephalus at Stage 36.
Fig. 21 in Comparative study of the larval development of four anuran species from the Khorat Plateau, Thailand
Fig. 21. Tadpole of Occidozyga lima (Stage 36) showing details of oral apparatus.
Fig. 25 in Comparative study of the larval development of four anuran species from the Khorat Plateau, Thailand
Fig. 25. Tadpoles of Polypedates megacephalus during ontogenetic development: Stages 25 to 33.
Fig. 13 in Comparative study of the larval development of four anuran species from the Khorat Plateau, Thailand
Fig. 13. Tadpole of Kaloula pulchra at Stage 36.
Fig. 8 in Comparative study of the larval development of four anuran species from the Khorat Plateau, Thailand
Fig. 8. Temporal pattern of ontogenetic development of Kaloula pulchra tadpoles.
Fig. 2 in Comparative study of the larval development of four anuran species from the Khorat Plateau, Thailand
Fig. 2. Temporal pattern of ontogenetic development of Duttaphrynus melanostictus tadpoles.
Fig. 20 in Comparative study of the larval development of four anuran species from the Khorat Plateau, Thailand
Fig. 20. Tadpole of Occidozyga lima at Stage 36.
Fig. 19 in Comparative study of the larval development of four anuran species from the Khorat Plateau, Thailand
Fig. 19. Tadpoles of Occidozyga lima during ontogenetic development: Stages 44 and 45.
Fig. 17 in Comparative study of the larval development of four anuran species from the Khorat Plateau, Thailand
Fig. 17. Tadpoles of Occidozyga lima during ontogenetic development: Stages 25 to 35.
Fig. 16 in Comparative study of the larval development of four anuran species from the Khorat Plateau, Thailand
Fig. 16. Tadpoles of Occidozyga lima during ontogenetic development: Stages 1 to 24.
Fig. 7 in Comparative study of the larval development of four anuran species from the Khorat Plateau, Thailand
Fig. 7. Tadpole of Duttaphrynus melanostictus at Stage 36.
Fig. 24 in Comparative study of the larval development of four anuran species from the Khorat Plateau, Thailand
Fig. 24. Tadpoles of Polypedates megacephalus during ontogenetic development: Stages 1 to 23.
Fig. 22 in Comparative study of the larval development of four anuran species from the Khorat Plateau, Thailand
Fig. 22. Temporal pattern of ontogenetic development of Polypedates megacephalus tadpoles.
Fig. 18 in Comparative study of the larval development of four anuran species from the Khorat Plateau, Thailand
Fig. 18. Tadpoles of Occidozyga lima during ontogenetic development: Stages 36 to 43.
Heterocypris incongruens maintains an egg bank in stormwater habitats and influences the development of larval mosquito, Culex restuans
<p>Dormant propagules can provide a rapid colonization source for temporary aquatic habitats and set the trajectory for community dynamics, yet the egg banks of stormwater management systems have received little attention. We asked which species hatched from the sediment of drainage ditches in Champaign County, IL, and found bdelloid rotifers and ostracods (<em>Heterocypris incongruens</em>) to be the most common taxa. These sites also are colonized by mosquitoes, and we established laboratory experiments to examine interspecific interactions between common co-occurring taxa. Culex restuans larvae were reared in the presence or absence of <em>H. incongruens</em> at two intra- and interspecific densities (20 or 40 total individuals) and their survivorship to adulthood, development time to adulthood, adult body size, and sex ratio were determined. Survival for Cx. restuans was significantly lower at high larval density than at low larval density in both treatments. Culex restuans larvae reared in the presence of H. incongruens had a shorter development time to adulthood and emerged as larger adults compared to those reared in the absence of <em>H. incongruens</em>. The sex ratios in the <em>H. incongruens</em> treatments were female-biased whereas those in the Culex-only treatments were male-biased. These differences may have epidemiological implications, as only female mosquitoes serve as disease vectors. Our results emphasize the importance of understanding interspecific interactions in influencing larval mosquito development traits.</p>
Data from: Larval development under continuous and dynamic light pollution alters sexual dimorphism in a moth species
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Data from: Development time mediates the effect of larval diet on ageing and mating success of male antler flies in the wild
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Temporally-balanced selection during development of larval Pacific oysters (Crassostrea gigas) inherently preserves genetic diversity within offspring
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Scaling and development of elastic mechanisms: the tiny strikes of larval mantis shrimp
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Effects of temperature on reproduction and development of Cyanopterus ninghais (Hymenoptera: Braconidae), a larval parasitoid of Monochamus alternatus (Coleoptera: Cerambycidae)
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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)
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.