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Figure 2 from: Fiaboe K, Fernández-Triana J, Nyamu F, Agbodzavu K (2017) Cotesia icipe sp. n., a new Microgastrinae wasp (Hymenoptera, Braconidae) of importance in the biological control of Lepidopteran pests in Africa. Journal of Hymenoptera Research 61: 49-64. https://doi.org/10.3897/jhr.61.21015
Figure 2 Cotesia icipe, male paratype. A Habitus lateral B Head and mesosoma dorsal C Head frontal D Wings E Propodeum and metasoma dorsal.
Figures 12-16 from: Lucia M, Gonzalez V (2017) New species and designation of primary types in Neotropical carpenter bees of the genus Xylocopa Latreille (Hymenoptera, Apidae). Journal of Hymenoptera Research 61: 31-48. https://doi.org/10.3897/jhr.61.20345
Figures 12-16 Female holotype of Xylocopa (Schonnherria) bigibbosa sp. n. 12 Facial view 13 Lateral habitus 14 Dorsal habitus 15 Detail of mesoscutum in profile with arrow pointing to tubercles 16 Detail of T1–T3.
Figures 2-5 from: Lucia M, Gonzalez V (2017) New species and designation of primary types in Neotropical carpenter bees of the genus Xylocopa Latreille (Hymenoptera, Apidae). Journal of Hymenoptera Research 61: 31-48. https://doi.org/10.3897/jhr.61.20345
Figures 2-5 Female lectotype of Xylocopa (Neoxylocopa) columbiensis Pérez. 2 Facial view 3 detail of mesoscutellum 4 Right fore and hind wings 5 detail of T1–T3.
Figures 23-26 from: Lucia M, Gonzalez V (2017) New species and designation of primary types in Neotropical carpenter bees of the genus Xylocopa Latreille (Hymenoptera, Apidae). Journal of Hymenoptera Research 61: 31-48. https://doi.org/10.3897/jhr.61.20345
Figures 23-26 Specimen of the NHML identified as X. dimidiata Latreille by F. Smith. 23 Facial view 24 Dorsal view of head 25 Detail of terga 26 Associated locality and determination labels (Photographs by David Notton, NHML).
Figures 2-6 from: Smith DR (2017) Redescription of Cladiucha insolita Konow (Hymenoptera: Tenthredinidae), description of the male and intraspecific variation. Journal of Hymenoptera Research 60: 173-179. https://doi.org/10.3897/jhr.60.21099
Figures 2-6 - Cladiucha insolita. 2 Male, lateral 3 Male, dorsum of head and thorax 4 Male, head front 5 Female antenna 6 Male antenna.
Figures 7-12 from: Smith D, Villemant C (2017) Additions to the xiphydriid woodwasp (Hymenoptera, Xiphydriidae) fauna of New Caledonia. Journal of Hymenoptera Research 61: 65-74. https://doi.org/10.3897/jhr.61.21787
Figures 7-12 Calexiphyda crocea, female. 7 Lateral 8 Head and thorax, lateral 9 Thorax dorsal 10 Head front 11 Head dorsal 12 Antenna.
Figures 17-21 from: Lucia M, Gonzalez V (2017) New species and designation of primary types in Neotropical carpenter bees of the genus Xylocopa Latreille (Hymenoptera, Apidae). Journal of Hymenoptera Research 61: 31-48. https://doi.org/10.3897/jhr.61.20345
Figures 17-21 Neotype of X. dimidiata Latreille. 17 Facial view 18 Dorsal view of head and mesosoma 19 Left fore and hind wings 20 Detail of metasomal terga 21 Associated labels (NHML).
Figures 13-17 from: Smith D, Villemant C (2017) Additions to the xiphydriid woodwasp (Hymenoptera, Xiphydriidae) fauna of New Caledonia. Journal of Hymenoptera Research 61: 65-74. https://doi.org/10.3897/jhr.61.21787
Figures 13-17 Calexiphyda caledonia. 13 Lateral 14 Head and thorax lateral 15 Thorax dorsal 16 Head front 17 Head dorsal.
Figure 22 from: Lucia M, Gonzalez V (2017) New species and designation of primary types in Neotropical carpenter bees of the genus Xylocopa Latreille (Hymenoptera, Apidae). Journal of Hymenoptera Research 61: 31-48. https://doi.org/10.3897/jhr.61.20345
Figure 22 Schematic representation of the historical changes in the species concept and nomenclature surrounding X. dimidiata Latreille (see text for details). The yellow and blue columns each represent a species concept.
Figure 2 from: Báthori F, Pfliegler WP, Zimmerman C-U, Tartally A (2017) Online image databases as multi-purpose resources: discovery of a new host ant of Rickia wasmannii Cavara (Ascomycota, Laboulbeniales) by screening AntWeb.org. Journal of Hymenoptera Research 61: 85-94. https://doi.org/10.3897/jhr.61.20255
Figure 2 Photograph of a slide-mounted Rickia wasmannii thallus (deposition number: G00562301) from Myrmica hellenica host, recorded on the AntWeb (specimen: CASENT0907653).
Figures 15–18 from: Müller A, Mauss V, Prosi R (2017) Unique nest architecture in the North African osmiine bee Hoplitis (Hoplitis) mucida (Hymenoptera, Megachilidae). Journal of Hymenoptera Research 60: 99-109. https://doi.org/10.3897/jhr.60.20218
Figures 15–18 - Morphological differences in the female sex between Hoplitis mucida (left) and H. stecki (right) (see Table 2): 15–16 Vertex 17–18 Pilosity of tergal discs.
Figures 1–6 from: Müller A, Mauss V, Prosi R (2017) Unique nest architecture in the North African osmiine bee Hoplitis (Hoplitis) mucida (Hymenoptera, Megachilidae). Journal of Hymenoptera Research 60: 99-109. https://doi.org/10.3897/jhr.60.20218
Figures 1–6 - Nests of Hoplitis mucida (see Table 1): 1–2 Nest 1 near Ait Baha in southern Morocco glued to the flat surface of a middle-sized stone 3 Nest 1 opened shortly after its finalization with cell contents removed 4–5 Nest 2 near Ait Baha in southern Morocco glued to the flat surface of a rock 6 Nest 3 originating from near El Kef in northern Tunisia glued to the flat surface of a small stone and photographed after bee emergence.
Figure 6 from: Brothers DJ, Lelej AS (2017) Phylogeny and higher classification of Mutillidae (Hymenoptera) based on morphological reanalyses. Journal of Hymenoptera Research 60: 1-97. https://doi.org/10.3897/jhr.60.20091
Figure 6 - Most-parsimonious tree (see Fig. 5) with branches not supported by resampling (i.e., without positive GC values) collapsed. Terminals in bold are those whose placements differ by more than mere taxonomic level in the classifications of DB and LN (see Appendix 1).
Figure 3 from: Pezzini C, Jahnke SM, Köhler A (2017) Morphological characterization of immature stages of Habrobracon hebetor (Hymenoptera, Braconidae) ectoparasitoid of Ephestia kuehniella (Lepidoptera, Pyralidae). Journal of Hymenoptera Research 60: 157-171. https://doi.org/10.3897/jhr.60.20104
Figure 3 - Immature stages of Habrobracon hebetor (side view): A egg after oviposition B embryo in development C first larval instar D second larval instar E third larval instar F fourth larval instar G cocoon in formation. Scale: (A–C) 0.25 mm (D–G) 0.5 mm.
Figure 14 from: Brothers DJ, Lelej AS (2017) Phylogeny and higher classification of Mutillidae (Hymenoptera) based on morphological reanalyses. Journal of Hymenoptera Research 60: 1-97. https://doi.org/10.3897/jhr.60.20091
Figure 14 - Proposed higher classification of Mutillidae as reflected by the rearranged tree (Fig. 13) of length about 1% greater than the previously preferred tree (Fig. 5) (lengths = 2858 vs 2828 for additive characters, 2671 vs 2646 for non-additive characters). (See Appendix 4 for classification including all currently valid genera and subgenera.)
Figure 2 from: Brothers DJ, Lelej AS (2017) Phylogeny and higher classification of Mutillidae (Hymenoptera) based on morphological reanalyses. Journal of Hymenoptera Research 60: 1-97. https://doi.org/10.3897/jhr.60.20091
Figure 2 - Strict consensus of 618 most-parsimonious trees (length = 2633, ci = 0.20, ri = 0.59), of 101 sub/genera of Mutillidae and 4 outgroups, both sexes, 230 characters all non-additive and equally weighted. Group support (GC) values shown for all groups supported by resampling. Terminals in bold are those whose placements differ by more than mere taxonomic level in the classifications of DB and LN (see Appendix 1).
Figure 13 from: Brothers DJ, Lelej AS (2017) Phylogeny and higher classification of Mutillidae (Hymenoptera) based on morphological reanalyses. Journal of Hymenoptera Research 60: 1-97. https://doi.org/10.3897/jhr.60.20091
Figure 13 - Tree based on preferred tree (see Fig. 5) but with branches re-arranged to make the potential recognizable groups (see Fig. 12) monophyletic (length = 2858, ci = 0.19, ri = 0.60). Group support (GC) values shown for all groups supported by resampling; the highest values obtained when resampling all non-additive or mostly additive characters, using equal weights and implied weights (N = 5), are shown. Terminals in bold are those whose placements differ by more than mere taxonomic level in the classifications of DB and LN (see Appendix 1).
Figure 10 from: Brothers DJ, Lelej AS (2017) Phylogeny and higher classification of Mutillidae (Hymenoptera) based on morphological reanalyses. Journal of Hymenoptera Research 60: 1-97. https://doi.org/10.3897/jhr.60.20091
Figure 10 - Single most-parsimonious tree (raw length = 1622, ci = 0.20, ri = 0.63), of 101 sub/genera of Mutillidae and 4 outgroups, males only, 140 characters many additive and all with implied weighting (N = 5, k = 71). Group support (GC) values shown for all groups supported by resampling. Terminals in bold are those whose placements differ by more than mere taxonomic level in the classifications of DB and LN (see Appendix 1).
Figure 3 from: Brothers DJ, Lelej AS (2017) Phylogeny and higher classification of Mutillidae (Hymenoptera) based on morphological reanalyses. Journal of Hymenoptera Research 60: 1-97. https://doi.org/10.3897/jhr.60.20091
Figure 3 - Single most-parsimonious tree (raw length = 2634, ci = 0.20, ri = 0.59), of 101 sub/genera of Mutillidae and 4 outgroups, both sexes, 230 characters all non-additive and with implied weighting (N = 5, k = 60). Group support (GC) values shown for all groups supported by resampling. Terminals in bold are those whose placements differ by more than mere taxonomic level in the classifications of DB and LN (see Appendix 1).
Figure 3 from: Polilov AA (2017) First record of Megaphragma (Hymenoptera, Trichogrammatidae) in Columbia, and third animal species known to have anucleate neurons. Journal of Hymenoptera Research 60: 181-185. https://doi.org/10.3897/jhr.60.19907
Figure 3 - Internal morphology of Megaphragma caribea: A scheme of sections, dorsal view B–F sagittal sections, DAPI and autofluorescence; ag – abdominal ganglion, cer – cerebrum, gg1,2,3 – pro-, meso-, and metathoracic ganglion.
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.