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4,034 results for “Species associations”
Figures 9–10 in Studies on palearctic Onthophagus associated with burrows of small mammals. IV. A new Iranian species belonging to the furciceps group (Coleoptera, Scarabaeidae, Onthophagini)
Figures 9–10. Onthophagus (Paleonthophagus) psychopompus sp. n. Male, paratype (Iran, Sirdan, Qazvin prov.) and female, paratype (Iran, Saqqez, Kordestan prov.). 9 Dorsum of male 10 Dorsum of female. Photos by A. Ballerio, scanned by G. Fiumi.
Figures 1–7 in Studies on palearctic Onthophagus associated with burrows of small mammals. IV. A new Iranian species belonging to the furciceps group (Coleoptera, Scarabaeidae, Onthophagini)
Figures 1–7. Onthophagus (Paleonthophagus) psychopompus sp. n. Male, holotype, and female, allotype (Iran, Hashtgerd, Tehran prov.). 1 Male: head and pronotum, dorsal view 2 Male: head, frontal view 3 Female: head and pronotum, dorsal view 4 Female: head, frontal view 5 Parameres, lateral view 6 Parameres, dorsal view 7 Lamella copulatrix, ventral side. Drawings by I. Gudenzi.
Figure 7 in An illustrated key to powder post beetles (Coleoptera, Bostrichidae) associated with rubberwood in Thailand, with new records and a checklist of species found in Southern Thailand
Figure 7. Heterobostrychus aequalis (Waterhouse, 1884). Dorsal view of female a and male b lateral view of male elytral declivity c intercoxal process of the first abdominal ventrite d.
Figure 3 in An illustrated key to powder post beetles (Coleoptera, Bostrichidae) associated with rubberwood in Thailand, with new records and a checklist of species found in Southern Thailand
Figure 3. Dorsal views of Minthea reticulata Lesne, 1931 a Minthea rugicollis (Walker, 1858) b and Lyctoxylon dentatum (Pascoe, 1866) c.
Fig. 6 in Community Structure and Undescribed Species Diversity in Non-Pollinating Fig Wasps Associated with the Strangler Fig Ficus petiolaris
Fig. 6. Phenotypic variation among the four species represented by the first two coordinate axes of a principal component analysis.Twelve morphological characters were analyzed (Table 3). A Mantel test of the multivariate morphological differences among species was highly significant (P <0.0001). In addition, LO1 shows further differentiation based on geography, with distinct clusters recovered for both Baja and Sonora samples.
Fig. 5. Bayesian skyline plots for three Idarnes species. X in Community Structure and Undescribed Species Diversity in Non-Pollinating Fig Wasps Associated with the Strangler Fig Ficus petiolaris
Fig. 5. Bayesian skyline plots for three Idarnes species. X-axes are in units of mutations per site, while y-axes are in units of effective population size scaled by mutation rate. LO1 shows sharp growth in population size, whereas SO1 and SO2 show a similar pattern of consistent population size through time with minimal growth. LO2 was not included as it contains two cryptic species reducing sample sizes too low for analysis.
Fig. 2. A in Community Structure and Undescribed Species Diversity in Non-Pollinating Fig Wasps Associated with the Strangler Fig Ficus petiolaris
Fig. 2. A habitus drawing of an Idarnes wasp. The drawing represents a wasp from the LO1 species associated with host Ficus petiolaris. Illustrated are the 12 morphological characters measured for analysis.The characters are as follows: 1) presence of antennal setulae, 2) number of antennal segments, 3) scape length, 4) scape color (amber vs dark), 5) head width, 6) inter-antennal distance, 7) facial width, 8) collar length, 9) stigmal vein length, 10) femur color (amber vs dark), 11) body length, and 12) ovipositor length.
Fig. 3 in Community Structure and Undescribed Species Diversity in Non-Pollinating Fig Wasps Associated with the Strangler Fig Ficus petiolaris
Fig. 3. Maximum-clade credibility tree for Idarnes mtDNA sequences from wasps associated with Ficus petiolaris. Four distinct clades (LO1, SO1, LO2, SO2) each with a posterior probability of 1.0 were recovered.There is little information in the data as to how these four clades are related. Posterior probabilities ≥0.50 are presented.Taxon names are composed of clade name, locality number, and internal lab numbers. In addition, LO1 sequences show phylogeographic structure, with sequences primarily clustering based on if sampled from Baja California (BC) or Sonora (S). One sequence (denoted with black box) is an exception, where the wasp was sampled from Sonora (locale 12; see Fig. 1) yet clusters with Baja California sequences.
Fig. 13 in Associations and a new species of the genus Apatidelia (Trichoptera, Apataniidae) from China
Fig. 13. Habitus of Apatidelia acuminata Leng & Yang, 1998, larva. A. Dorsal view. B. Ventral view. C. Lateral view. D. Case (ventral view). Scale bars = 1.0 mm.
Fig. 12 in Associations and a new species of the genus Apatidelia (Trichoptera, Apataniidae) from China
Fig. 12. Abdomen of Apatidelia acuminata Leng & Yang, 1998, larva. A–C. Segment I. A. Dorsal view. B. Ventral view. C. Lateral view. D. Segments IX–X and anal claw (dorsal view). Scale bar = 0.5 mm.
Fig. 11 in Associations and a new species of the genus Apatidelia (Trichoptera, Apataniidae) from China
Fig. 11. Legs of Apatidelia acuminata Leng & Yang, 1998, larva. A. Foreleg (posterior face). B. Midleg (posterior face). C. Hind leg (posterior face). Scale bar = 0.5 mm.
Fig. 9 in Associations and a new species of the genus Apatidelia (Trichoptera, Apataniidae) from China
Fig. 9. Head of Apatidelia acuminata Leng & Yang, 1998, larva. A. Dorsal view. B. Ventral view. C. Lateral view. D. Right mandible (lateral view). Scale bars: A–C = 0.5 mm; D = 0.25 mm.
Fig. 6 in Associations and a new species of the genus Apatidelia (Trichoptera, Apataniidae) from China
Fig. 6. Male genitalia of Apatidelia acuminata Leng & Yang, 1998. A. Lateral view. B. Dorsal view. C. Ventral view. Aedeagus. D. Dorsal view. E. Lateral view. Scale bar = 0.5 mm refers to all figures.
Fig. 7 in Associations and a new species of the genus Apatidelia (Trichoptera, Apataniidae) from China
Fig. 7. Female genitalia of Apatidelia acuminata Leng & Yang, 1998. A. Lateral view. B. Dorsal view. C. Ventral view. Scale bar = 0.5 mm.
Fig. 4 in Associations and a new species of the genus Apatidelia (Trichoptera, Apataniidae) from China
Fig. 4. Male genitalia of Apatidelia morsei Xu & Sun sp. nov. A. Lateral view. B. Dorsal view. C. Ventral view. Aedeagus. D. Dorsal view. E. Lateral view. Scale bar = 0.5 mm refers to all figures.
Fig. 8 in Associations and a new species of the genus Apatidelia (Trichoptera, Apataniidae) from China
Fig. 8. Head setae of Apatidelia acuminata Leng & Yang, 1998, larva. A. Dorsal view. B. Ventral view. Scale bar = 0.5 mm.
Fig. 2 in Associations and a new species of the genus Apatidelia (Trichoptera, Apataniidae) from China
Fig. 2. Apatidelia morsei Xu & Sun sp. nov., in alcohol. Head (dorsal view). Scale bar = 0.5 mm.
Fig. 1 in Associations and a new species of the genus Apatidelia (Trichoptera, Apataniidae) from China
Fig. 1. COI neighbour-joining diagram used to determine larval-female-male associations of species of Apatidelia in China. M = ♂; F = ♀; L = larva.
Fig. 5 in Associations and a new species of the genus Apatidelia (Trichoptera, Apataniidae) from China
Fig. 5. Female genitalia of Apatidelia morsei Xu & Sun sp. nov. A. Lateral view. B. Dorsal view. C. Ventral view. Scale bar = 0.5 mm.
Fig. 10 in Associations and a new species of the genus Apatidelia (Trichoptera, Apataniidae) from China
Fig. 10. Thorax of Apatidelia acuminata Leng & Yang, 1998, larva. A. Pronotum (dorsal view). B. Mesonotum (dorsal view). C. Metanotum (dorsal view). D. Foretrochantin (lateral view). E. Mesopleura (lateral view). Scale bar = 0.5 mm.
ScienceDex guides
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
Allen Brain Atlas
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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.