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484 results for “reproductive biology”
Figure 1 in Effects of nutritional quality on the reproductive biology of Archegozetes longisetosus (Actinotrichida, Oribatida, Trhypochthoniidae)
Figure 1. Number of individuals originated by one female (A) and eclosion/hatching time of her offspring, calculated as weighted mean (B) across the ten resources (see legend in B) and ontogenetic instars of Archegozetes longisetosus. Different letters indicate significant differences (P <0.05) of pairwise Mann-Whitney-U tests within each instar. Bars represent means, error bars indicate standard errors. Blood meal was excluded in (B).
Figure 2 in Effects of nutritional quality on the reproductive biology of Archegozetes longisetosus (Actinotrichida, Oribatida, Trhypochthoniidae)
Figure 2. Survival curves of Archegozetes longisetosus cultured on nine different resources (blood meal was excluded) over a period of approximately 80 days. A
FIGURE 4 in Monstera guzmanjacobiae (Araceae), a new species from Mexico with notes on its reproductive biology
FIGURE 4. Monstera guzmanjacobiae sp. nov. A. Detachment stylar layer of a mature infructescence; B and C. Exposed seeds surrounded with white pulp, with numerous foraging ants of the genus Acromyrmex sp.; D. Euglossine bee (Euglossa sp.), visiting the inflorescence at the beginning of the female phase of anthesis.
FIGURE 2 in Monstera guzmanjacobiae (Araceae), a new species from Mexico with notes on its reproductive biology
FIGURE 2. Monstera guzmanjacobiae sp. nov. A. Young inflorescence; B. Infructescence with stylar caps mostly already detached; C. Complete flower (left) in lateral view showing an immature stamen; gynoecium in longitudinal-section (right); D. Adult plant showing pendent inflorescence and developing flagellum; E. Open inflorescence in ventral view; F. Open inflorescence in dorsal view; G. Sterile flowers, lateral view; H. Style and stigma seen from above (left); immature stamen (right); I. Seed, lateral view; J. Stolon-like seedling transforming into a juvenile shingle-leaved plant at its apex; K. Juvenile plant shingle leaved climbing plant.
FIGURE 5 in Monstera guzmanjacobiae (Araceae), a new species from Mexico with notes on its reproductive biology
FIGURE 5. Characteristic growth of Monstera luteynii Madison in Costa Rica. A. Branching pendent habit; B. Stem collected with entire cordate leaves; C. Stem and base of petioles densely verrucose with light brown pustules; D. Densely striate and scaly geniculum.
FIGURE 1 in Monstera guzmanjacobiae (Araceae), a new species from Mexico with notes on its reproductive biology
FIGURE 1. Map showing the collection sites (blue dots) of Monstera guzmanjacobiae sp. nov. at the state of Veracruz (highlighted in blue, inset), in the Gulf of Mexico. Veracruz city is showed with a star symbol.
FIGURE 3 in Monstera guzmanjacobiae (Araceae), a new species from Mexico with notes on its reproductive biology
FIGURE 3. Monstera guzmanjacobiae sp. nov. A. Habit of plant ascending on a tree to over 25 m; B. Habit of plant pendent from a living fence in a pasture area; C. Scaly pendent stems (i), petiole striate at the base (h); D. Infructescences on ascending stems; E. Young stem showing petioles with glaucous base, marcescent petiolar sheath (m) and apical projecting ligule 1.5 cm long (n); F. Completely terete geniculum; G. Base of the petiole with green and white projections.
FIGURE 2. Werauhia maculata. A—Habit. B—Flower. C—Floral bract. D—Sepals. E—Petals. F—Anther. G in A new Werauhia (Tillandsioideae, Bromeliaceae) from Mexico with observations about its reproductive biology
FIGURE 2. Werauhia maculata. A—Habit. B—Flower. C—Floral bract. D—Sepals. E—Petals. F—Anther. G—Detail of the stigma. Based on a cultivated individual. Drawings by Zuemy Vallado Negroe.
FIGURE 1 in A new Werauhia (Tillandsioideae, Bromeliaceae) from Mexico with observations about its reproductive biology
FIGURE 1. Adult individual of Werauhia maculata at the type locality. A. Flowering plant; B. Detail of the tank rosettes of a grown plant; C. Frontal view of the flower in anthesis; D. Lateral view of the flower; E. Ecuatorial view of a pollen grain; F. Lateral view of the pollen grain, showing the aperture an ornamentation; G. Fruit; H. Juvenile individual. Photos: A and B: Zuemy Vallado; C, D and G: Roberto Castro; E and F: Heiko Hentrich; H: Pedro Díaz Jiménez.
Figure 2 in Nesting biology of Green-and-gold tanager (Tangara schrankii): unique traits for lowland reproductive success?
Figure 2. Egg and nestling of Green-and-gold Tanager (Tangara schrankii) found in Pantiacolla station. (a) Eggs, (b) newborn nestling, (c) 8-day-old nestling, (d) 10-day-old nestling, and (e) 14-day-old nestling. Jenny Muñoz took the egg photograph and Sebastian Pérez took the nestling photographs.
Figure 1 in Nesting biology of Green-and-gold tanager (Tangara schrankii): unique traits for lowland reproductive success?
Figure 1. Photographic characteristics of the Green-and-gold Tanager (Tangara schrankii) nest. (a) Nest built into epiphytic vegetation; the thick vegetation above the nest was so dense that the cup nest had the appearance of a dome nest, (b) cup nest, (c) nest layers. On the left is the most internal layer where the eggs stand, the one in the centre is the mid-layer and the one on the right is the outer layer.
Figure 5. Nestling feeding behaviour during the 15 in Nesting biology of Green-and-gold tanager (Tangara schrankii): unique traits for lowland reproductive success?
Figure 5. Nestling feeding behaviour during the 15-day nestling period, based on six nests monitored for a total of 30 days. (a) Hourly and (b) daily feeding trips.
Figure 4 in Nesting biology of Green-and-gold tanager (Tangara schrankii): unique traits for lowland reproductive success?
Figure 4. Nestling development based on 33 nestlings from 20 nests. (a) Tarsus growth rate, (b) wing growth rate, and (c) daily mass gain. Gray shading in the graphic represent a 95% confidence interval level.
Figure 3 in Nesting biology of Green-and-gold tanager (Tangara schrankii): unique traits for lowland reproductive success?
Figure 3. Incubation behaviour of the Green-and-gold Tanager (Tangara schrankii) throughout the incubation period, based on 32 nests monitored at the Tono and Pantiacolla stations between 2008 and 2014. (a) Nest attentiveness: the percentage of time the parents spent incubating the eggs during the daytime, 5:00–18:00. The centerline in the box plots represents the median of attentiveness, with the lower and upper box edges representing the 25th and 75th percentile, and, whiskers indicating the 95% interval. (b) On and offbouts durations were split into incubation stages with five-day intervals corresponding to early (days 1–5), middle (days 6–10), and late (days 11–15) stages. The backline represents the average ±1 SE.
Figure 1 in Reproductive biology of the endangered wattled curassow (Crax globulosa; Galliformes: Cracidae) in the Juruá River Basin, Western Brazilian Amazonia
Figure 1. Main places where Crax globulosa nests (bullets) were found in tributaries of the Jurua River. Flooded environments (várzea and paleo floodplains) are near the river and other tributaries, while Terra firme farther and lighter.
Figure 3 in Reproductive biology of two species of Hyalella Smith, 1874 (Crustacea: Amphipoda: Hyalellidae) from southern Brazil
Figure 3. Correlation between the size of the cephalothorax length (CL) of the females and the number of eggs produced by Hyalella georginae and Hyalella gauchensis, Palmeira das Missões, State of Rio Grande do Sul, Brazil. F = fecundity; CL = cephalothorax length; r2 = coefficient of determination; r = correlation coefficient; number of ovigerous females.
Figure 2 in Reproductive biology of two species of Hyalella Smith, 1874 (Crustacea: Amphipoda: Hyalellidae) from southern Brazil
Figure 2. Relative frequency (%) seasonal precopulatory pairs Hyalella georginae and Hyalella gauchensis in pre-copulatory behaviour, Palmeira das Missões, State of Rio Grande do Sul, Brazil. The capital letters represent H. georginae, lowercase letters represent H. gauchensis. Columns with different letters show significant differences (p <0.05).
Figure 1 in Reproductive biology of two species of Hyalella Smith, 1874 (Crustacea: Amphipoda: Hyalellidae) from southern Brazil
Figure 1. Correlation between the cephalothorax length of males and females Hyalella georginae and Hyalella gauchensis found in pre-copulatory behaviour, Palmeira das Missões, State of Rio Grande do Sul, Brazil. CLm = cephalothorax length of males; CLf = cephalothorax length of females; n = number of individuals.
Figure 1 in Reproductive biology and ecological strategies of three species of medicinal leeches (genus Hirudo)
Figure 1. The hatchling weight distribution of three Hirudo species. (A) Hirudo verbana; (B) Hirudo orientalis; (C) Hirudo medicinalis.
Figure 2 in Reproductive biology and ecological strategies of three species of medicinal leeches (genus Hirudo)
Figure 2. Growth curves of three Hirudo species demonstrating that H. medicinalis and H. orientalis had similar patterns of growth, whereas H. verbana initially lagged behind the other two species but its growth rate subsequently increased and caught up.
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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.