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Figure 3 from: Sharaf MR, Aldawood AS, Mohamed AA, Hita Garcia F (2020) The genus Lepisiota Santschi, 1926 of the Arabian Peninsula with the description of a new species, Lepisiota elbazi sp. nov. from Oman, an updated species identification key, and assessment of zoogeographic affinities. Journal of Hymenoptera Research 76: 127-152. https://doi.org/10.3897/jhr.76.50193
Figure 3 A mesosoma of L. dolabellae in dorsal view showing mesonotun, CASENT0909887 (Zach Lieberman) B body of L. dolabellae in profile propodeal and petiolar spines, CASENT0909887 (Zach Lieberman) C body of L. dhofara in profile showing surface sculpture and propodeal spines, CASENT0906340 (Estella Ortega) D mesosoma of L. karawaiewi in profile showing propodeal spines, CASENT0912405 (Will Ericson) E body of L. nigra in profile showing propodeal and petiolar spines, CASENT0179896 (Erin Prado) F Body of L. spinisquama in profile showing petiolar spines, CASENT0922270 (Michele Esposito), www.AntWeb.org.
Figure 1 from: Sharaf MR, Aldawood AS, Mohamed AA, Hita Garcia F (2020) The genus Lepisiota Santschi, 1926 of the Arabian Peninsula with the description of a new species, Lepisiota elbazi sp. nov. from Oman, an updated species identification key, and assessment of zoogeographic affinities. Journal of Hymenoptera Research 76: 127-152. https://doi.org/10.3897/jhr.76.50193
Figure 1 A head of L. elbazi sp. nov. in profile, CASENT0922860 (Michele Esposito) B head of L. gracilicornis in profile, CASENT0906458 (Cerise Chen) C body of L. arabica in profile, CASENT0906264 (Estella Ortega) D body of L. elbazi sp. nov. in profile, CASENT0922860 (Michele Esposito) E body of L. elegantissima in profile, CASENT0922860 (Michele Esposito) F body of L. gracilicornis in profile, CASENT0906458 (Cerise Chen), www.AntWeb.org.
Figure 2 from: Sharaf MR, Aldawood AS, Mohamed AA, Hita Garcia F (2020) The genus Lepisiota Santschi, 1926 of the Arabian Peninsula with the description of a new species, Lepisiota elbazi sp. nov. from Oman, an updated species identification key, and assessment of zoogeographic affinities. Journal of Hymenoptera Research 76: 127-152. https://doi.org/10.3897/jhr.76.50193
Figure 2 A body of L. elegantissima in profile, CASENT0922860 (Michele Esposito) B head of L. elegantissima in full-face view, CASENT0922860 (Michele Esposito) C body of L. bipartita in profile, CASENT0903167 (Zach Lieberman) D body of L. dolabellae in profile, CASENT0249883 (Shannon Hartman) E mesosoma of L. dammama in dorsal view showing mesonotun, CASENT0906337 (Estella Ortega) F body of L. dammama in profile showing propodeal and petiolar spines, CASENT0906337 (Estella Ortega), www.AntWeb.org.
Figure 3 from: Bogusch P, Hlaváčková L, Petr L, Bosch J (2020) Nest structure, pollen utilization and parasites associated with two west-Mediterranean bees (Hymenoptera, Apiformes, Megachilidae) nesting in empty snail shells. Journal of Hymenoptera Research 76: 113-125. https://doi.org/10.3897/jhr.76.49579
Figure 3 A Macrophotography of pollen of Lithodora fruticosa from a Hoplitis fertoni nest (locality S35). Photo by L. Petr. B macrophotography of pollen from an Osmia ferruginea nest (locality S7). Larger pollen grains are Thymus vulgaris; smaller grains are Cistus albidus. Photo by L. Petr.
Figure 9 from: Sharaf MR, Aldawood AS, Mohamed AA, Hita Garcia F (2020) The genus Lepisiota Santschi, 1926 of the Arabian Peninsula with the description of a new species, Lepisiota elbazi sp. nov. from Oman, an updated species identification key, and assessment of zoogeographic affinities. Journal of Hymenoptera Research 76: 127-152. https://doi.org/10.3897/jhr.76.50193
Figure 9 Zoogeographic boundaries between the Afrotropical and the Palearctic regions of the Arabian Peninsula, AE: United Arab Emirates, BH: Bahrain, KW: Kuwait, OM: Oman, QA: Qatar, SA: Saudi Arabia, YE: Yemen.
Figure 5 from: Sharaf MR, Aldawood AS, Mohamed AA, Hita Garcia F (2020) The genus Lepisiota Santschi, 1926 of the Arabian Peninsula with the description of a new species, Lepisiota elbazi sp. nov. from Oman, an updated species identification key, and assessment of zoogeographic affinities. Journal of Hymenoptera Research 76: 127-152. https://doi.org/10.3897/jhr.76.50193
Figure 5 A body of L. obtusa in profile showing propodeum and gastral pilosity, CASENT0905150 (Zach Lieberman) B body of L. carbonaria in profile showing propodeal spines and gastral pilosity, CASENT0906261 (Estella Ortega) C head of L. validiuscula in full-face view showing pilosity on posterior margin, CASENT0280473 (Shannon Hartman) D head of L. canescens in full-face view showing pilosity on posterior margin, CASENT0905153 (Zach Lieberman), www.AntWeb.org.
Figure 2 from: Bogusch P, Hlaváčková L, Petr L, Bosch J (2020) Nest structure, pollen utilization and parasites associated with two west-Mediterranean bees (Hymenoptera, Apiformes, Megachilidae) nesting in empty snail shells. Journal of Hymenoptera Research 76: 113-125. https://doi.org/10.3897/jhr.76.49579
Figure 2 Diagrams of nest structures of nests of Hoplitis fertoni (right) and Osmia ferruginea (left). The nests are identified by locality snail codes (Cern – Cernuella sp., Ever – Eobania vermiculata, Iber – Iberellus sp., Olac – Otala lactea, Scan – Sphincterochila candidissima, Tpis – Theba pisana. Each box represents one brood cell, starting with the innermost cell on the left. Colours represent the various species recorded. White boxes represent intercalary cells.
Figure A1 from: Smith-Pardo AH, Fowler GA, Kumar S (2020) Status and potential distribution of the Asian carpenter bee, Xylocopa appendiculata Smith (Apidae, Xylocopini), in the United States. Journal of Hymenoptera Research 76: 99-111. https://doi.org/10.3897/jhr.76.49518
Figure A1 Global distribution of Xylocopa appendiculata based on specimens deposited in collections and confirmed records on iNaturalist, GBIF, and Discover Life.org (red circles).
Figure 3 from: Smith-Pardo AH, Fowler GA, Kumar S (2020) Status and potential distribution of the Asian carpenter bee, Xylocopa appendiculata Smith (Apidae, Xylocopini), in the United States. Journal of Hymenoptera Research 76: 99-111. https://doi.org/10.3897/jhr.76.49518
Figure 3 Some of the diagnostic features of Xylocopa appendiculata Smith: a lateral habitus showing coloration of pubescence on mesosoma and metasoma (the yellow coloration may not be as fluorescent in field specimens and is mostly due to reflections from the imaging system) b face showing integument sculpturing of clypeus and paraocular area c coloration of pubescence around occipital area (arrow) d pygidial plate (pp) and coloration of pubescence close to it (arrows) e shape of mesoscutellum from lateral view f Shape of metasomal tergum 1 (T1) from antero-lateral view and the presence of a foveate, hollowed like depression (arrow) g dentation of mandibles (arrow showing the two teeth on mandible).
Figure A3 from: Smith-Pardo AH, Fowler GA, Kumar S (2020) Status and potential distribution of the Asian carpenter bee, Xylocopa appendiculata Smith (Apidae, Xylocopini), in the United States. Journal of Hymenoptera Research 76: 99-111. https://doi.org/10.3897/jhr.76.49518
Figure A3 Summer Precipitation Patterns in the USA: Average summer precipitation (June, July and August) was calculated using PRISM climate data with the Spatial Analytic Framework for Advanced Risk Information Systems (SAFARIS 2019). Areas with ≥ 300 mm of precipitation between June and August (blue) based on average data from 2000 to 2019.
Figure 1 from: Smith-Pardo AH, Fowler GA, Kumar S (2020) Status and potential distribution of the Asian carpenter bee, Xylocopa appendiculata Smith (Apidae, Xylocopini), in the United States. Journal of Hymenoptera Research 76: 99-111. https://doi.org/10.3897/jhr.76.49518
Figure 1 Suitable U.S. areas for Xylocopa appendiculata establishment based on plant hardiness zones – This map shows suitable areas for X. appendiculata establishment based on its global distribution and the associated plant hardiness zones 5 to 10.
Figure 2 from: Li Y, Tang P, Chen X-x (2020) The genus Indabracon van Achterberg (Hymenoptera, Braconidae, Braconinae) in China, with description of four new species. Journal of Hymenoptera Research 76: 39-56. https://doi.org/10.3897/jhr.76.50794
Figure 2 Indabracon albogilvus sp. nov., ♀, holotype a fore wing b hind wing c mesosoma, lateral view d mesosoma, dorsal view e metasoma, dorsal view f hind leg, lateral view g head, front view h head, dorsal view i head, lateral view j first metasomal tergite, dorsal view k scapus outer side, lateral view l apex of antenna m apex of ovipositor, lateral view.
Figure 6 from: Li Y, Tang P, Chen X-x (2020) The genus Indabracon van Achterberg (Hymenoptera, Braconidae, Braconinae) in China, with description of four new species. Journal of Hymenoptera Research 76: 39-56. https://doi.org/10.3897/jhr.76.50794
Figure 6 Indabracon nigricans sp. nov., ♀, holotype a fore wing b hind wing c mesosoma, lateral view d mesosoma, dorsal view e metasoma, dorsal view f hind leg, lateral view g head, front view h head, dorsal view i head, lateral view j first metasomal tergite, dorsal view k scapus outer side, lateral view l apex of ovipositor, lateral view.
Figure 1 from: Bogusch P, Hlaváčková L, Petr L, Bosch J (2020) Nest structure, pollen utilization and parasites associated with two west-Mediterranean bees (Hymenoptera, Apiformes, Megachilidae) nesting in empty snail shells. Journal of Hymenoptera Research 76: 113-125. https://doi.org/10.3897/jhr.76.49579
Figure 1 Structure of Hoplitis fertoni (A, D) and Osmia ferruginea (B, C, E) nests A shell of Sphincterochila candidissima with nest of H. fertoniB shell of S. candidissima with nest of O. ferrugineaC larva of O. ferruginea on pollen-nectar provision D nest structure of H. fertoniE nest structure of O. ferruginea. Photos and drawings by P. Bogusch.
Figure 8 from: Triapitsyn SV, Andreason SA, Power N, Ganjisaffar F, Fusu L, Dominguez C, Perring TM (2020) Two new species of Ooencyrtus (Hymenoptera, Encyrtidae), egg parasitoids of the bagrada bug Bagrada hilaris (Hemiptera, Pentatomidae), with taxonomic notes on Ooencyrtus telenomicida. Journal of Hymenoptera Research 76: 57-98. https://doi.org/10.3897/jhr.76.48004
Figure 8 Ooencyrtus mirus sp. nov. A female fore and hind wings (holotype) B male habitus in lateral view (paratype).
Figure 7 from: Triapitsyn SV, Andreason SA, Power N, Ganjisaffar F, Fusu L, Dominguez C, Perring TM (2020) Two new species of Ooencyrtus (Hymenoptera, Encyrtidae), egg parasitoids of the bagrada bug Bagrada hilaris (Hemiptera, Pentatomidae), with taxonomic notes on Ooencyrtus telenomicida. Journal of Hymenoptera Research 76: 57-98. https://doi.org/10.3897/jhr.76.48004
Figure 7 Ooencyrtus mirus sp. nov. female A holotype slide B antenna (holotype) C head in frontal view (paratype) D mesosoma (holotype) E mesosoma and metasoma (holotype).
Figure 6 from: Triapitsyn SV, Andreason SA, Power N, Ganjisaffar F, Fusu L, Dominguez C, Perring TM (2020) Two new species of Ooencyrtus (Hymenoptera, Encyrtidae), egg parasitoids of the bagrada bug Bagrada hilaris (Hemiptera, Pentatomidae), with taxonomic notes on Ooencyrtus telenomicida. Journal of Hymenoptera Research 76: 57-98. https://doi.org/10.3897/jhr.76.48004
Figure 6 Ooencyrtus mirus sp. nov. female (paratype) A habitus in dorsal view B habitus in lateral view.
Figure 8 from: Gul MA, Soliman AM, Gadallah NS, Al Dhafer HM, Delvare G (2020) The genus Phasgonophora Westwood, 1832 (Hymenoptera, Chalcididae) in Saudi Arabia: re-evaluation of its limits and description of three new species. Journal of Hymenoptera Research 76: 1-38. https://doi.org/10.3897/jhr.76.38340
Figure 8 A−DPhasgonophora granulis Delvare, sp. nov., female (holotype) A head and mesosoma (lateral view) B head (part of integument, showing granulate foveae) C hind leg D fore and hind wings.
Figure 3 from: Triapitsyn SV, Andreason SA, Power N, Ganjisaffar F, Fusu L, Dominguez C, Perring TM (2020) Two new species of Ooencyrtus (Hymenoptera, Encyrtidae), egg parasitoids of the bagrada bug Bagrada hilaris (Hemiptera, Pentatomidae), with taxonomic notes on Ooencyrtus telenomicida. Journal of Hymenoptera Research 76: 57-98. https://doi.org/10.3897/jhr.76.48004
Figure 3 Ooencyrtus lucidus sp. nov. female (holotype) A head in frontal view B mesosoma C mesosoma and metasoma D fore and hind wings.
Figure 4 from: Gul MA, Soliman AM, Gadallah NS, Al Dhafer HM, Delvare G (2020) The genus Phasgonophora Westwood, 1832 (Hymenoptera, Chalcididae) in Saudi Arabia: re-evaluation of its limits and description of three new species. Journal of Hymenoptera Research 76: 1-38. https://doi.org/10.3897/jhr.76.38340
Figure 4 A−EPhasgonophora baiocchii Soliman & Gul, sp. nov., female (holotype) A mesosoma (part, dorsal view) B mesosoma (lateral view) C fore wing D proleg E hind leg.
ScienceDex guides
Understand access before you commit
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.