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Fig. 12 in Taxonomic revision of the southern African Colletes fasciatus species group (Hymenoptera: Colletidae)
Fig. 12. Colletes carolinae sp. nov., ♀, paratype (CMK). A. Habitus, lateral view. B. Head. C. Scutum, dorsal view. D. Metasomal terga 1 and 2, dorsal view. E. Metasoma, dorsal view. F. Hind tibia, lateral view.
Fig. 21 in Taxonomic revision of the southern African Colletes fasciatus species group (Hymenoptera: Colletidae)
Fig. 21. Colletes fabiani sp. nov., ♂, paratype (CMK). A. Habitus, lateral view. B. Head. C. Scutum, dorsal view. D. Metasomal terga 1 and 2, dorsal view. E. Metasoma, dorsal view. F. Hind basitarsus, lateral view. G. Metasomal sternum 7, dorsal view. H. Gonostylus, lateral view.
Fig. 20 in Taxonomic revision of the southern African Colletes fasciatus species group (Hymenoptera: Colletidae)
Fig. 20. Colletes fabiani sp. nov., ♀, paratype (CMK). A. Habitus, lateral view. B. Head. C. Scutum, dorsal view. D. Metasomal terga 1 and 2, dorsal view. E. Metasoma, dorsal view. F. Hind tibia, lateral view.
Fig. 25 in Taxonomic revision of the southern African Colletes fasciatus species group (Hymenoptera: Colletidae)
Fig. 25. Colletes fuscitergus sp. nov., ♂, holotype (SAMC). A. Habitus, lateral view. B. Head. C. Scutum, dorsal view. D. Metasomal terga 1 and 2, dorsal view. E. Metasoma, dorsal view. F. Hind basitarsus, lateral view. G. Metasomal sternum 7, dorsal view. H. Gonostylus, lateral view.
Fig. 26. Colletes genalis Friese, 1909 in Taxonomic revision of the southern African Colletes fasciatus species group (Hymenoptera: Colletidae)
Fig. 26. Colletes genalis Friese, 1909, ♀. A. Habitus, lateral view. B. Head. C. Scutum, dorsal view. D. Metasomal terga 1 and 2, dorsal view. E. Metasoma, dorsal view. F. Hind tibia, lateral view.
Fig. 17. Colletes cyanonitidus Kuhlmann, 2007 in Taxonomic revision of the southern African Colletes fasciatus species group (Hymenoptera: Colletidae)
Fig. 17. Colletes cyanonitidus Kuhlmann, 2007, ♂. A. Habitus, lateral view. B. Head. C. Scutum, dorsal view. D. Metasomal terga 1 and 2, dorsal view. E. Metasoma, dorsal view. F. Hind basitarsus, lateral view. G. Metasomal sternum 7, dorsal view. H. Gonostylus, lateral view.
Data from: The magnitude of Allee effects varies across Allee mechanisms, but not taxonomic groups
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Global contemporary effective population sizes across taxonomic groups
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Data from: Using full-length metabarcoding and DNA barcoding to infer community assembly for speciose taxonomic groups: a case study
<p>How insect communities are assembled in nature remains largely unknown. In particular, whether habitat filtering or competition serves as the main mechanism in forming insect communities is rarely subject to an in-depth investigation. One bottleneck lies in the difficulty of species identification when dealing with a large number of diverse insects. However, High-Throughput Sequencing (HTS) technology coupled with classic DNA barcoding offers a great opportunity to infer community assembly for this speciose group. In this study, using 13,909 full-length barcodes obtained by Sanger sequencing or the SOAPBarcode metabarcoding method, we showed that competition was the main assembly mechanism for the moth communities studied in temperate forests of China. The two sequencing methods showed highly consistent results with regards to both diversity composition and community assembly mechanism. Significant phylogenetic signals and structure suggested that the focal moth communities were the result of the non-neutral assembly process, which was further confirmed by results of neutral assembly test that accounted for immigration and speciation rates. In conclusion, HTS coupled with a well-curated DNA barcode library can facilitate community assembly inferences, especially for speciose taxonomic groups.</p>
Data from: Taxonomic revision of the flavopalliata species group of Signiphora (Hymenoptera: Signiphoridae)
The flavopalliata species group of Signiphora Ashmead (Hymenoptera: Signiphoridae) is revised. Twelve species are redescribed: Signiphora aleyrodis Ashmead, S. aspidioti Ashmead, S. borinquensis Quezada et al., S. coquilletti Ashmead, S. fax Girault, S. flavella Girault, S. flavopalliata Ashmead, S. lutea Rust, S. maculata Girault, S. merceti Malenotti, S. perpauca Girault and S. xanthographa Blanchard. Signiphora townsendi Ashmead is synonymized under S. aleyrodis n. syn.; Thysanus insularis Dozier and S. flavopalliata desantisi De Santis are synonymized under S. fax n. syns.; S. basilica Girault, S. euclidi Girault, S. flava Girault, S. caridei Brèthes, S. thoreauini Girault and Thysanus louisianae Dozier are synonymized under S. flavella n. syns.; and S. woolleyi Hayat is synonymized under S. perpauca n. syn. Thirteen new species are described: S. bennetti n. sp., S. biloba n. sp., S. brachyptera n. sp., S. curepensis n. sp., S. dozieri n. sp., S. ehleri n. sp., S. ensifera n. sp., S. falcata n. sp., S. jojobae n. sp., S. longitibia n. sp., S. plaumanni n. sp., S. renuncula n. sp. and S. tridentata n. sp. Lectotypes are designated for S. aleyrodis, S. townsendi, S. fax, S. flavella, S. occidentalis, S. lutea, S. maculata and S. xanthographa.
FIGURE 9 in A taxonomic revision of the kalshoveni species-group of the genus Nemophora Hoffmannsegg (Lepidoptera, Adelidae), with descriptions of six new species from Indonesia and Papua New Guinea
FIGURE 9. Distribution of Nemophora kalshoveni species-group.
Habitat simplification affects functional group structure along with taxonomic and phylogenetic diversity of temperate-zone ant assemblages over a ten-year period
<p>Biodiversity is declining at various scales due to habitat simplification. Nevertheless, there is scarce information on how the biotic and abiotic changes linked to simplification affect several diversity dimensions, such as taxonomic, functional, and phylogenetic diversities. This study investigated whether transforming natural oak forests into induced grasslands affected species diversity, functional group structure, and phylogenetic diversity of ant assemblages inhabiting a temperate forest in central Mexico. We placed over 1,000 pitfall traps in five sampling events covering a ten-year period. We used Hill numbers to evaluate species diversity differences between vegetation types and patterns over time. Ant species were classified into stress-related functional groups, which were analyzed for their association with vegetation types and changes to their proportional abundance over time. We calculated the standardized effect size of the mean nearest taxon distance to quantify the evolutionary history and test for non-random patterns within vegetation types and sampling years. Species richness did not differ between vegetation types, yet grasslands showed greater diversity for the q=1 and q=2 orders. Besides, we found three ant species as bioindicators for each vegetation. Regarding functional structure, cold climate specialists were associated with oak forests. In contrast, generalist species were predominant in induced grasslands. Higher phylogenetic diversity with an overdispersed structure was associated with oak forest, whereas lower phylogenetic diversity and a clustered pattern were found in induced grassland. These results indicate that habitat simplification may not affect the number of ant species but rather increases their relative abundance and reorganizes the functional and phylogenetic structure in the ecosystem, particularly shift towards the dominance of evolutionary close-related species and broad-stress tolerant groups. These results highlight the importance of integrating further dimensions of diversity to properly evaluate the reassembly dynamics after habitat simplification and understand the mechanisms driving this biodiversity loss.</p>
Figure 16 in A taxonomic revision of the members of the Camponotus lateralis species group (Hymenoptera: Formicidae) from Europe, Asia Minor and Caucasia
Figure 16. Dorsal aspect of the neotype minor worker of Camponotus piceus.
Figure 15 in A taxonomic revision of the members of the Camponotus lateralis species group (Hymenoptera: Formicidae) from Europe, Asia Minor and Caucasia
Figure 15. Lateral aspect of the neotype minor worker of Camponotus piceus.
Figure 14 in A taxonomic revision of the members of the Camponotus lateralis species group (Hymenoptera: Formicidae) from Europe, Asia Minor and Caucasia
Figure 14. Head of the neotype minor worker of Camponotus piceus.
Figure 4 in A taxonomic revision of the members of the Camponotus lateralis species group (Hymenoptera: Formicidae) from Europe, Asia Minor and Caucasia
Figure 4. Major worker of C. anatolicus in lateral view.
Figure 10 in A taxonomic revision of the members of the Camponotus lateralis species group (Hymenoptera: Formicidae) from Europe, Asia Minor and Caucasia
Figure 10. Minor worker of C. honaziensis from the holotype nest in lateral view.
Figure 8 in A taxonomic revision of the members of the Camponotus lateralis species group (Hymenoptera: Formicidae) from Europe, Asia Minor and Caucasia
Figure 8. Paratype minor worker of C. anatolicus from the holotype nest in dorsal view.
Figure 18 in A taxonomic revision of the members of the Camponotus lateralis species group (Hymenoptera: Formicidae) from Europe, Asia Minor and Caucasia
Figure 18. Lateral aspect of large minor worker of Camponotus heidrunvogtae n.sp., holotype.
Figure 19 in A taxonomic revision of the members of the Camponotus lateralis species group (Hymenoptera: Formicidae) from Europe, Asia Minor and Caucasia
Figure 19. Dorsal aspect of large minor worker of Camponotus heidrunvogtae n.sp., holotype.
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
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.