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170 results for “Comparative Biology”
Figure 1 in Comparative population biology of Uca rapax (Smith, 1870) (Brachyura, Ocypodidae) from two subtropical mangrove habitats on the Brazilian coast
Figure 1. Uca rapax. Median values (¡SD) of the organic matter content of the sediment at Itamambuca and Ubatumirim. The statistical comparisons were performed for each season between sites (Kruskal–Wallis, a50.05). White bars with at least one letter in common did not differ statistically.
Figure 19 in Comparative morphology, biology and phylogeny of terminal-instar larvae of the European species of Toryminae (Hym., Chalcidoidea, Torymidae) parasitoids of gall wasps (Hym. Cynipidae)
Figure 19. Bootstrap consensus tree with uniform weights and no constraints from phylogenetic analyses of larval data. Number below branches indicate bootstrap support values above 50%.
Figure 16 in Comparative morphology, biology and phylogeny of terminal-instar larvae of the European species of Toryminae (Hym., Chalcidoidea, Torymidae) parasitoids of gall wasps (Hym. Cynipidae)
Figure 16. Mandibles of terminal-instar larvae of Torymidae. A, Torymus nobilis (anterior left). B, Torymus nobilis (anterior right). C, Torymus notatus (anterior left). D, Torymus notatus (anterior right). E, Torymus rubi (anterior left). F, Torymus rubi (anterior right).
Figure 13 in Comparative morphology, biology and phylogeny of terminal-instar larvae of the European species of Toryminae (Hym., Chalcidoidea, Torymidae) parasitoids of gall wasps (Hym. Cynipidae)
Figure 13. Terminal-instar larvae of Torymidae (anterior view of mouth parts). A, Torymus geranii. B, Torymus nobilis. C, Torymus notatus. D, Torymus rubi.
Figure 15 in Comparative morphology, biology and phylogeny of terminal-instar larvae of the European species of Toryminae (Hym., Chalcidoidea, Torymidae) parasitoids of gall wasps (Hym. Cynipidae)
Figure 15. Mandibles of terminal-instar larvae of Torymidae. A, Pseudotorymus papaveris (posterior right). B, Pseudotorymus papaveris (posterior left). C, Torymus affinis (posterior right). D, Torymus affinis (posterior left). E, Torymus auratus (anterior left). F, Torymus auratus (anterior right). G, Torymus bedeguaris (posterior right). H, Torymus bedeguaris (posterior left). I, Torymus chloromerus (anterior left). J, Torymus chloromerus (anterior right). K, Torymus cingulatus (anterior left). L, Torymus cingulatus (anterior right). M, Torymus cyaneus (anterior left). N, Torymus cyaneus (anterior right). O, Torymus geranii (anterior left). P, Torymus geranii (anterior right).
Figure 12 in Comparative morphology, biology and phylogeny of terminal-instar larvae of the European species of Toryminae (Hym., Chalcidoidea, Torymidae) parasitoids of gall wasps (Hym. Cynipidae)
Figure 12. Terminal-instar larvae of Torymidae (anterior view of mouth parts). A, Adontomerus impolitus. B, Adontomerus crassipes. C, Chalcimerus borceai. D, Glyphomerus tibialis. E, Glyphomerus stigma. F, Idiomacromerus centaureae. G, Idiomacromerus silybi. H, Idiomacromerus papaveris. I, Pseudotorymus papaveris. J, Torymus affinis. K, Torymus auratus. L, Torymus bedeguaris. M, Torymus chloromerus. N, Torymus cingulatus. O, Torymus cyaneus.
Figure 18 in Comparative morphology, biology and phylogeny of terminal-instar larvae of the European species of Toryminae (Hym., Chalcidoidea, Torymidae) parasitoids of gall wasps (Hym. Cynipidae)
Figure 18. Strict consensus tree of 200 most parsimonious trees reconstructed from phylogenetic analyses of larval data.
Figure 11 in Comparative morphology, biology and phylogeny of terminal-instar larvae of the European species of Toryminae (Hym., Chalcidoidea, Torymidae) parasitoids of gall wasps (Hym. Cynipidae)
Figure 11. Terminal-instar larvae of Torymidae (anterior view of the head). A, Torymus chloromerus. B, Torymus cingulatus. C, Torymus cyaneus. D, Torymus geranii. E, Torymus nobilis. F, Torymus notatus. G, Torymus rubi.
Figure 10 in Comparative morphology, biology and phylogeny of terminal-instar larvae of the European species of Toryminae (Hym., Chalcidoidea, Torymidae) parasitoids of gall wasps (Hym. Cynipidae)
Figure 10. Terminal-instar larvae of Torymidae (anterior view of the head). A, Adontomerus impolitus. B, Adontomerus crassipes. C, Chalcimerus borceai. D, Glyphomerus tibialis. E, Glyphomerus stigma. F, Idiomacromerus centaureae. G, Idiomacromerus papaveris. H, Idiomacromerus silybi. I, Pseudotorymus papaveris. J, Torymus affinis. K, Torymus auratus. L, Torymus bedeguaris.
Figure 9 in Comparative morphology, biology and phylogeny of terminal-instar larvae of the European species of Toryminae (Hym., Chalcidoidea, Torymidae) parasitoids of gall wasps (Hym. Cynipidae)
Figure 9. Terminal-instar larvae of Torymidae (lateral view of the body). A, Torymus chloromerus. B, Torymus cingulatus. C, Torymus cyaneus. D, Torymus geranii. E, Torymus notatus. F, Torymus rubi. G, Torymus nobilis.
Figure 8 in Comparative morphology, biology and phylogeny of terminal-instar larvae of the European species of Toryminae (Hym., Chalcidoidea, Torymidae) parasitoids of gall wasps (Hym. Cynipidae)
Figure 8. Terminal-instar larvae of Torymidae (lateral view of the body). A, Adontomerus impolitus. B, Adontomerus crassipes. C, Chalcimerus borceai. D, Glyphomerus tibialis. E, Glyphomerus stigma. F, Idiomacromerus centaureae. G, Idiomacromerus silybi. H, Idiomacromerus papaveris. I, Pseudotorymus papaveris. J, Torymus affinis. K, Torymus auratus. L, Torymus bedeguaris.
Figure 4 in Comparative morphology, biology and phylogeny of terminal-instar larvae of the European species of Toryminae (Hym., Chalcidoidea, Torymidae) parasitoids of gall wasps (Hym. Cynipidae)
Figure 4. Terminal-instar larva of T. cingulatus Nees (anterior view of mouth parts; Mpu) illustrating the terminology used in the text. Letters refer to the following structures: clypeus (cl) with the clypeal setae (cs), the labrum (lb) with setae of labrum (lbs) and the under-lip complex: lbi, labium; ll, latero-medial setae of labium; mp, maxillary palps; ms, maxillary setae; mx, maxillae; pl, postero-medial setae of labium; ul, antero-medial setae of labium.
Figure 6 in Comparative morphology, biology and phylogeny of terminal-instar larvae of the European species of Toryminae (Hym., Chalcidoidea, Torymidae) parasitoids of gall wasps (Hym. Cynipidae)
Figure 6. Terminal-instar larvae of Torymidae (ventral view of the body). A, Adontomerus impolitus. B, Adontomerus crassipes. C, Chalcimerus borceai. D, Glyphomerus tibialis. E, Glyphomerus stigma. F, Idiomacromerus centaureae. G, Idiomacromerus silybi. H, Idiomacromerus papaveris. I, Pseudotorymus papaveris. J, Torymus bedeguaris. K, Torymus affinis. L, Torymus auratus. M, Torymus cingulatus.
Figure 1 in Comparative morphology, biology and phylogeny of terminal-instar larvae of the European species of Toryminae (Hym., Chalcidoidea, Torymidae) parasitoids of gall wasps (Hym. Cynipidae)
Figure 1. Terminal-instar larva of Torymus cyaneus Walker (ventral view) illustrating the terminology used in the text. Letters refer to the following structures: ABS1– ABS9, abdominal segments; ANS, anal segment; THS1– THS3, thoracic segments; vlr, ventrolateral region; vmr, ventromedial region.
Figure 2 in Comparative morphology, biology and phylogeny of terminal-instar larvae of the European species of Toryminae (Hym., Chalcidoidea, Torymidae) parasitoids of gall wasps (Hym. Cynipidae)
Figure 2. Terminal-instar larva of Torymus nobilis Boheman (lateral view) illustrating the terminology used in the text. Letters refer to the following structures: ABS1–ABS10, abdominal segments; ANS, anal segment; THS1–THS3, thoracic segments; adp, anterodorsal protuberances; epc, spiracles. Accordingly, the setae are referred to: dorsal area, D; pleural area, P; ventral area, V.
Figure 7 in Comparative morphology, biology and phylogeny of terminal-instar larvae of the European species of Toryminae (Hym., Chalcidoidea, Torymidae) parasitoids of gall wasps (Hym. Cynipidae)
Figure 7. Terminal-instar larvae of Torymidae (ventral view of the body). A, Torymus chloromerus. B, Torymus cyaneus. C, Torymus geranii. D, Torymus nobilis. E, Torymus notatus. F, Torymus rubi.
A Study Comparing Risankizumab to Placebo in Participants With Active Psoriatic Arthritis Including Those Who Have a History of Inadequate Response or Intolerance to Biologic Therapy(Ies)
ClinicalTrials.gov study NCT03671148. IPD Sharing: YES. Countries: 25. Publications: 9.
Data from: Comparative species delimitation of a biological conservation icon
Open the record for dataset details and reuse information.
Data from: Comparative landscape genetics of two frugivorous bats in a biological corridor undergoing agricultural intensification
Agricultural intensification in tropical landscapes poses a new threat to the ability of biological corridors to maintain functional connectivity for native species. We use a landscape genetics approach to evaluate impacts of expanding pineapple plantations on two widespread and abundant frugivorous bats in a biological corridor in Costa Rica. We hypothesize that the larger, more mobile Artibeus jamaicensis will be less impacted by pineapple than the smaller Carollia castanea. In 2012 and 2013, we sampled 735 bats in 26 remnant forest patches surrounded by different proportions of forest, pasture, crops and pineapple. We used 10 microsatellite loci for A. jamaicensis and 16 microsatellite loci for C. castanea to estimate genetic diversity and gene flow. Canonical correspondence analyses indicate that land cover type surrounding patches has no impact on genetic diversity of A. jamaicensis. However, for C. castanea, both percentage forest and pineapple surrounding patches explained a significant proportion of the variation in genetic diversity. Least-cost transect analyses (LCTA) and pairwise G″st suggest that for A. jamaicensis, pineapple is more permeable to gene flow than expected, while as expected, forest is the most permeable land cover for gene flow of C. castanea. For both species, LCTA indicate that development may play a role in inhibiting gene flow. The current study answers the call for landscape genetic research focused on tropical and agricultural landscapes, highlights the value of comparative landscape genetics in biological corridor design and management and is one of the few studies of biological corridors in any ecosystem to implement a genetic approach to test corridor efficacy.
Fig. 5 in Comparative Biology Of Cave-Dwelling Spitting Spiders (Araneae: Scytodidae): Parental Care, Cooperative Prey-Capture, Cannibalism, Natal Dispersal And Reproductive Behaviour
Fig. 5. Scytodes fusca female leaving her egg-sac aside to forage on the house fly.
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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.