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Figure 3 in Monitoring the feeding and parental care behavior of a pair of free-living owls (Tyto furcata) in the nest during the reproductive period in Rio de Janeiro, Brazil
Figure 3. Observation of the Tyto furcata family in the nest. (A) Female sitting on eggs in the artificial nest; (B) 25-day-old chicks; (C) Adult owl bringing food to the chicks; (D) Chicks feeding alone in the nest. Campos dos Goytacazes, RJ.
Data from Investigating the effects of diurnal and nocturnal pollinators on male and female reproductive success and on floral trait selection in Silene dioica
<p><strong>data_all_OdEx.csv</strong>: all data about phenotypes or reproductive success at the individual scale</p> <ul> <li>ID : ID name</li> <li>nGrSemis_min : seed number needed to be sowned to get enough seedlings</li> <li>nGrGerm : seed number effectively sowned</li> <li>nGrGerm_OK : number of germinated seed</li> <li>TauxGerm : germination rate</li> <li>nFruits_MAX : maximal number of fruit that the plant could have produced</li> <li>nFruits_OK : effective number of fruits that the plant had produced</li> <li>nFruits_OK_avecPred : effective number of fruits that the plant had produced ignoring predation</li> <li>nFruits_pred : number of predated fruits</li> <li>mean_nbSeeds : mean number of seeds per fruit</li> <li>sd_nbSeeds : sd number of seeds per fruit</li> <li>mean_nbOv : mean ovule non fertilize per fruit</li> <li>sd_nbOv : sd ovule non fertilize per fruit</li> <li>mean_nbOvTOT : mean ovule number per flower</li> <li>sd_nbOvTOT : sd ovule number per flower</li> <li>prodTOT : total number of seed produced including germination rate</li> <li>FS : Fruit-set</li> <li>SS : Seed-set</li> <li>prodTOTsg : total number of seed produced without germination rate</li> <li>nbFlo_run0 : flower number at the beginning of the experiment</li> <li>nbFlo_run1 : flower number at the first measurement</li> <li>mean_nbFlo : mean flower number</li> <li>MeanFec : mean seed sired per males according to MEMM model</li> <li>MeanDelta : mean delta pollen dispersion according to MEMM model</li> <li>MeanMRS : mean male reproductive success (including female RS) according to MEMM model</li> <li>MedFec : same as above with the median</li> <li>MedDelta : same as above with the median</li> <li>MedMRS : same as above with the median</li> <li>VarFec : same as above with the variance</li> <li>VarDelta : same as above with the variance</li> <li>VarMRS : same as above with the variance</li> <li>ciFec : Same as above with confidence interval</li> <li>ciDelta : Same as above with confidence interval</li> <li>ciMRS : Same as above with confidence interval</li> <li>MS_Res : mating success</li> <li>mean_lFl : mean corolla width</li> <li>mean_hFl : mean calyx height</li> <li>QttTOT : pollen number per flower</li> <li>pop : which originate population</li> <li>cohort : which cohort</li> </ul> <p><strong>data_seeds_OdEx.csv</strong> : all data about seed number of weight as well as unfertilized ovule at the fruit scale for female RS</p> <ul> <li>ID : ID name</li> <li>noFruit : ID fruit</li> <li>poids : seed weight</li> <li>nbSeeds : number of seeds</li> <li>nbOv : number of unfertilized ovule</li> <li>moySeeds : mean seed size</li> <li>varSeeds : variance in seed size</li> </ul> <p><strong>data_poll_OdEx.csv</strong> : all data about pollinator observation session</p> <ul> <li>ID : ID name</li> <li>session : observation session number</li> <li>nbVis : number of independent insect attracted</li> <li>nbVisTot : number of total visit</li> <li>binVis : individual visited or not</li> </ul>
FIGURE 4. Reproductive anatomy. A in Two New Species of Nudibranch Mollusks from the Tropical Eastern Pacific of Mexico
FIGURE 4. Reproductive anatomy. A. Rostanga ghiselini sp. nov., holotype, CASIZ 220373. B. Tenellia ivetteae sp. nov., paratype, CASIZ 222482. abbreviations: al-albumen gland, am ampulla, bc-bursa copulatrix, ej-ejaculatory portion of vas deferens, fg-female gland mass, me-membrane gland, mu-mucous gland, p-penis, pg-penial gland, pr-prostatic portion of vas deferens, rs-receptaculum seminis, st-penial stylet, v-vagina, vd-vas deferens, vg-vestibular gland. Scale = 1 mm.
Figure 1 in Does Male Sexual Experience Influence Female Mate Choice and Reproduction in the Melon Fly (Diptera: Tephritidae)?
Figure 1. (A) Number of eggs laid per female per week and (B) proportion of hatched eggs per week for Zeugodacus cucurbitae females mated to virgin or non-virgin (thrice-mated) males. Symbols represent averages (+ 1 SE) over 8 cages per male type.
Fig. 5 in Reproductive behavior of the marine gastropod Charonia seguenzae (Aradas & Benoit, 1870) in captivity Abstract
Fig. 5: A) Female depositing egg capsules. B) Female cleaning egg capsules with its proboscis. C) Male (upper) copulating with a female that deposited capsules (bottom). D) Female (left) and the male (right) laying on the egg capsules. E) Male alone on egg capsules. F) Male cleaning egg capsules with its proboscis.
Fig. 3 in Reproductive behavior of the marine gastropod Charonia seguenzae (Aradas & Benoit, 1870) in captivity Abstract
Fig. 3: A) Simultaneous copulation of one female Charonia seguenzae (♀) with two males (♂). B) Closer view of the male penises (indicated with arrows) inserted into the female mantle cavity.
Fig. 2 in Reproductive behavior of the marine gastropod Charonia seguenzae (Aradas & Benoit, 1870) in captivity Abstract
Fig. 2: A) Copulation of Charonia seguenzae: Female - bottom left, male - upper right. B) Copulation of a male Charonia seguenzae with a female that had already deposited egg capsules.
Fig. 6 in Reproductive cycle of Bolinus brandaris (Gastropoda: Muricidae) in the Gulf of Gabès (southern Tunisia)
Fig. 6: Monthly variation in (A) general condition index (K) and (B) gonadosomatic index (GSI) of Bolinus brandaris. Data presented as mean ± SD.
Fig. 7 in Reproductive cycle of Bolinus brandaris (Gastropoda: Muricidae) in the Gulf of Gabès (southern Tunisia)
Fig. 7: Size at first sexual maturity (SL50) of (A) female and (B) male Bolinus brandaris, showing the proportion of ripe individuals (stage 3) as a function of shell length (grouped into 5 mm SL classes).
Fig. 4 in Reproductive cycle of Bolinus brandaris (Gastropoda: Muricidae) in the Gulf of Gabès (southern Tunisia)
Fig. 4: Photomicrographs of Bolinus brandaris male gonad maturation stages: (A) immature; (B) pre-active; (C) active; (D) ripe; (E) partially spent; (F) spent.
Fig. 3 in Reproductive cycle of Bolinus brandaris (Gastropoda: Muricidae) in the Gulf of Gabès (southern Tunisia)
Fig. 3: Photomicrographs of Bolinus brandaris female gonad maturation stages: (A) immature; (B) pre-active; (C) active; (D) ripe; (E) partially spent; (F) spent.
Fig. 2 in Reproductive cycle of Bolinus brandaris (Gastropoda: Muricidae) in the Gulf of Gabès (southern Tunisia)
Fig. 2: Variation in the sex ratio of Bolinus brandaris (A) during the study period (January – December 2007) and (B) according to specimen size (grouped into 5 mm SL classes). Asterisks denote samples with statistically unbalanced sex ratios (χ²-test): ns, not significant; *, P <0.05; **, P <0.01.
Fig. 1 in Reproductive cycle of Bolinus brandaris (Gastropoda: Muricidae) in the Gulf of Gabès (southern Tunisia)
Fig. 1: Map of the Gulf of Gabès (southern Tunisia) showing the sampling area (rectangle) for Bolinus brandaris.
Fig. 2 in Reproduction of Trichospilus diatraeae (Hymenoptera: Eulophidae) in the pupae of Diaphania hyalinata (Lepidoptera: Crambidae) of various ages
Fig. 2. Trichospilus diatraeae progeny produced in Diaphania hyalinata pupae; (A) number of progeny; (B) duration of the T. diatraeae life cycle; (C) width of the T. diatraeae female head capsule; (D) width of the T. diatraeae male head capsule (mean ± SE). Measurements were made on T. diatraeae that emerged from D. hyalinata hosts parasitized as 24-, 48-, 72-, 96-, 120-, and 144-h-old pupae.
Fig. 1 in Reproduction of Trichospilus diatraeae (Hymenoptera: Eulophidae) in the pupae of Diaphania hyalinata (Lepidoptera: Crambidae) of various ages
Fig. 1. Percentage of parasitism of Diaphania hyalinata pupae and percentage of emergence of Trichospilus diatraeae progeny from D. hyalinata hosts parasitized as 24-, 48-, 72-, 96-, 120-, and 144-h-old pupae. Bars with the same uppercase or lowercase letter do not differ by the non-parametric Kruskal–Wallis test (P> 0.05).
Figure S2 in Reproductive Span of Caenorhabditis elegans Is Extended by Microbacterium sp.
Figure S2: Protorhabditis sp. CFB231 make sperm. (A) DIC image of spermathecal region (outlined). One oocyte is apparently transiting the spermatheca. (B) DAPI staining for nuclei. (C) Merged images of DIC and DAPI. DIC, differential interference contrast.
Figure S1 in Reproductive Span of Caenorhabditis elegans Is Extended by Microbacterium sp.
Figure S1: Size comparison of the four tested nematode species grown on Microbacterium sp. CFBb37 and Escherichia coli OP50. Images are representative samples.
Figure 3 in Reproductive Span of Caenorhabditis elegans Is Extended by Microbacterium sp.
Figure 3: Summary of RS extension in the Caenorhabditis species (orange) and the outgroup Protorhabditis sp. (light blue). Red lines indicate inferred ancestral evolutionary lineages with extended RS. We suggest that other species within the genus Caenorhabditis are likely to have extended RS but this is untested. For simplification, some species are not listed and are grouped together in triangles, with the numbers of known species indicated. Phylogeny is adapted from Kiontke and Fitch (2005) and Felix et al. (2014) with the position of Protorhabditis sp. CFB231 placed next to P. sp. 1 species based on the 18S ribosomal RNA gene sequence (Zhang et al., 2000; Morgulis et al., 2008). Protorhabditis sp. CFB231 is self-fertile but the sexual system, hermaphroditic or parthenogenetic, is unknown (indicated by a question mark). RS, reproductive span.
Figure 2 in Reproductive Span of Caenorhabditis elegans Is Extended by Microbacterium sp.
Figure 2: Lifespan assays of C. elegans on Microbacterium sp. CFBb37 and the OP50 control. C. elegans grown on CFBb37 survived longer than OP50 (P <0.001, log-rank test). Detailed lifespan data are in Tables S4 and S5.
Figure 1 in Reproductive Span of Caenorhabditis elegans Is Extended by Microbacterium sp.
Figure 1: RS of individual nematodes on Microbacterium sp. CFBb37 and the E. coli OP50 control. (A) C. elegans, (B) C. briggsae, (C) C. tropicalis, and (D) Protorhabditis sp. on CFBb37 had longer RS than on OP50 (P <0.001, log-rank test). Full RS data in Table 2. RS, reproductive span.
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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.