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Figure 3 in A revised genus-level classification for the Neotropical groups of the cleptoparasitic bee tribe Sphecodini Schenck (Hymenoptera, Apidae, Halictinae)
Figure 3 Nesosphecodes depressus sp. nov. Female Holotype. A) habitus, B) head in frontal view, C) mesosoma in dorsal view, D) metasoma in dorsal view. B and C under the same scale.
Figure 5 in A revised genus-level classification for the Neotropical groups of the cleptoparasitic bee tribe Sphecodini Schenck (Hymenoptera, Apidae, Halictinae)
Figure 5 Nesosphecodes depressus sp. nov. Male Paratype. A) T6, B) S7 and S8, C) genital capsule, ventral view, D) genital capsule, dorsal view. All images under the same scale.
Figure 4 in A revised genus-level classification for the Neotropical groups of the cleptoparasitic bee tribe Sphecodini Schenck (Hymenoptera, Apidae, Halictinae)
Figure 4 Nesosphecodes depressus sp. nov.Male Paratype. A) habitus, B) head in frontal view, C) mesosoma in dorsal view, D) metasoma in dorsal view.B and C under the same scale.
Figure 1 Melissocleptis gen. nov. and Austrosphecodes. A in A revised genus-level classification for the Neotropical groups of the cleptoparasitic bee tribe Sphecodini Schenck (Hymenoptera, Apidae, Halictinae)
Figure 1 Melissocleptis gen. nov. and Austrosphecodes. A) Melissocleptis capriciosus, female head, colored bars indicating the scape and frons length, B) M. capriciosus male head, F1–3 colored; C) M. capriciosa male metasoma, pygidial plate indicated in blue; D) Austrosphecodes brasiliensis, female head, colored bars indicating the scape and frons length, E) A. brasiliensis male head, F1–3 colored; F) A. brasiliensis male metasoma, pygidial plate indicated in blue. All images under the same scale.
Fig. 4 in Taxonomic Hierarchy And Evolutionary Scenario Of The Genus Group Apodemus S. L. (Muridae) Of The Palaearctic Based On Genetic Differentiation In The Gene
Fig. 4. Distribution of pairwise values of genetic distances amongst species with allopatric areas: 1 — for the Western Palearctic genus Sylvaemus; 2 — for the Eastern Palearctic genera Apodemus and Alsomys; 3 — for the Palearctic Muridae as a whole, including species of genera Micromys and Mus.
Fig. 3 in Taxonomic Hierarchy And Evolutionary Scenario Of The Genus Group Apodemus S. L. (Muridae) Of The Palaearctic Based On Genetic Differentiation In The Gene
Fig. 3. Distribution of pairwise intraspecies genetic distances within: 1 — the Western Palearctic genus Sylvaemus; 2 — the Eastern Palearctic genera Apodemus and Alsomys; 3 — in general for the Palearctic Muridae, including Micromys and Mus.
Fig. 2 in Taxonomic Hierarchy And Evolutionary Scenario Of The Genus Group Apodemus S. L. (Muridae) Of The Palaearctic Based On Genetic Differentiation In The Gene
Fig. 2. Phenogram of genetic distances (Tamura, Nei, 1993) calculated from cytb sequences amongst representatives of the genera/subgenera Alsomys, Apodemus and genera Micromys, Mus, Rattus, constructed using the UPGMA algorithm. Representatives of the Arvicolidae and Cricetidae as well as S. s. dichrurus, S. flavicollis, S. (K.) mystacinus and S. (K.) epimelas were taken as outgroups.
Fig. 5 in Taxonomic Hierarchy And Evolutionary Scenario Of The Genus Group Apodemus S. L. (Muridae) Of The Palaearctic Based On Genetic Differentiation In The Gene
Fig. 5. Distribution of pairwise genetic distances amongst taxa: 1 — Western Palearctic genus Sylvaemus, 2 — Eastern Palearctic genera Apodemus, Alsomys, 3 — Western Palearctic genus Sylvaemus and contrarily Eastern Palearctic genera Apodemus, Alsomys.
Fig. 1 in Taxonomic Hierarchy And Evolutionary Scenario Of The Genus Group Apodemus S. L. (Muridae) Of The Palaearctic Based On Genetic Differentiation In The Gene
Fig. 1. Phenogram of genetic distances calculated from cytb sequences amongst representatives of the genera Sylvaemus, Rattus, constructed using the UPGMA algorithm, as mentioned above. Microtus arvalis (Arvicolidae) and Cricetus cricetus (Cricetidae) are used as outgroups.
Fig. 2. A–C in A remarkable new species from the pygmaea species group of the genus Carebara Westwood, 1840 (Hymenoptera: Formicidae: Myrmicinae) from Cambodia
Fig. 2. A–C. Carebara bokorensis sp. n., paratype minor worker (KUECCRB004). A – body in profile; B – dorsal view of body; C – head in full-face view.
Fig. 1. A–C in A remarkable new species from the pygmaea species group of the genus Carebara Westwood, 1840 (Hymenoptera: Formicidae: Myrmicinae) from Cambodia
Fig. 1. A–C. Carebara bokorensis sp. n., holotype major worker (KUECCRB001). A – body in profile; B – dorsal view of body; C – head in full-face view.
Figs 20–28. Clytus venustulus. 20 in SPECIES OF THE ARIETOIDES-GROUP OF THE GENUS CLYTUS LAICHARTING, 1784 (COLEOPTERA: CERAMBYCIDAE) FROM THE RUSSIAN FAR EAST
Figs 20–28. Clytus venustulus. 20 – ♀, holototype, Russia, Primorye, Ossinovka, 14.5. 1917, P.Elsky (photo by M. Lazarev); 21 – labels of the holotype (photo by M. Lazarev); 22 – ♂, Amur, Raddevka, 6.1915 (from Plavilstshikov's collection, Moscow, identified as Clytus nigritulus); 23 – labels of a single male from Plavilstshikov's collection, Moscow; 24 – ♂, Russia, Amur Region, Mazanovsky District, Novorossiyka, 21.6.2021, A.V. Shchelokov; 25 – ♂, Russia, Primorye, Mt. Snezhnaya 1300m 27.6. –1.7.2021 V. Ustinov; 26 – ♀ with same label; 27 – ♀, Amur Region, Zeya District, Verkhnezeysk, 20.6.2020, A.V. Shchelokov; 28 – ♀, Russia, Primorye, Chuguevka District, Sokolovka, 14.7.1974, V. Kuznetsov.
Figs 11–19. Clytus nigritulus. 11, 12 in SPECIES OF THE ARIETOIDES-GROUP OF THE GENUS CLYTUS LAICHARTING, 1784 (COLEOPTERA: CERAMBYCIDAE) FROM THE RUSSIAN FAR EAST
Figs 11–19. Clytus nigritulus. 11, 12 – types of C. nigritulus Kraatz, 1879 with labels, all photos were arranged by Mr. Kevin Weissing from Senckenberg Deutsches Entomologisches Institut (SDEI): 11 – ♂, second paralectotype (present designation) "Sibirien"; 12 – labels of the second paralectotype; 13, 14 – ♂ holotype of Clytus fulvohitsutus Pic, 1940 with labels, photos by Gérard Tavakilian, Muséum national d'Histoire naturelle, Paris: 13 – holotype, "Amour: Radde"; 14 – labels of the holotype; 15 –♂, Russia, Primorye, Lazovsky nature reserve, 6.6.2007, Yu. N Sundukov (photo by M. Smirnov); 16 – ♂, Russia, Primorye, Lazovsky District, Kievka, 18.6.1991, Filimonov (photo by M. Smirnov); 17 – ♀, Primorye, Lazo, 18.6.2006, M. & L. Smirnov (photo by M. Smirnov); 18 – ♀, Primorye, Kamenushka, 30.7.1971, A.I. Tsherepanov; 19 –Primorye, Barabash, 24.3.1982, ex l., Alnus, S.Murzin.
Figs 1–10. Clytus spp. 1–6 in SPECIES OF THE ARIETOIDES-GROUP OF THE GENUS CLYTUS LAICHARTING, 1784 (COLEOPTERA: CERAMBYCIDAE) FROM THE RUSSIAN FAR EAST
Figs 1–10. Clytus spp. 1–6 – Clytus arietodes: 1 – ♂, Russia, Buryatiya, Tayozhnyi, 16.6.1976, A. Kompantsev; 2 – ♀, Russia, Tuva Republic, Ishtii-Khem, 11.6.1972, M. Danilevsky; 3 – ♂, Russia, Yakutiya, Balagachi, 3.7.1955, Sazonova; 4 – ♀, Yakutia, Indigirka River, 71°N, 9.7.1973, V. Flint; 5 – ♂, Kazakhstan, 20km N Zyryanovsk, 475m, 20.6.2005, M. Danilevsky; 6 – ♀, same locality, 23.6.2005, M. Danilevsky; 7–10 – types of Clytus nigritulus Kraatz, 1879 with labels, all photos were arranged by Mr. Kevin Weissing from Senckenberg Deutsches Entomologisches Institut (SDEI): 7 – ♂ lectotype (present designation) "Amur"; 8 – labels of the lectotype; 9 – ♂ first paralectotype (present designation) "Amur"; 10 – labels of the first paralectotype.
Figs 7–18 in A NEW SPECIES OF THE HAMMERAE-GROUP OF THE GENUS ANURIDA LABOULBÈNE, 1865 (COLLEMBOLA: NEANURIDAE) FROM PRIMORSKY KRAI
Figs 7–18. Anurida octoculata sp. n. (7–14) and A. narli (specimen from Chukotka) (15– 18): 7–8 – maxillary head (two different view); 9 – mandible; 10 – labium; 11 – labrum; 12 – PAO and ocular field; 13 – Ant.3–4; 14 – tibiotarsus and unguis of hind leg; 15–16 – mandible (two different view); 17–18 – maxillary head (two different view). Scales: Figs 10– 11, 13–14 – 0.1 mm, 7–9, 12, 15–18 – 0.01 mm.
Figs 5–6 in A NEW SPECIES OF THE HAMMERAE-GROUP OF THE GENUS ANURIDA LABOULBÈNE, 1865 (COLLEMBOLA: NEANURIDAE) FROM PRIMORSKY KRAI
Figs 5–6. Abdominal chaetotaxy of Anurida octoculata sp. n. (5) and A. narli (specimen from Chukotka) (6). Scales: 0.1 mm.
Figs 1–4 in A NEW SPECIES OF THE HAMMERAE-GROUP OF THE GENUS ANURIDA LABOULBÈNE, 1865 (COLLEMBOLA: NEANURIDAE) FROM PRIMORSKY KRAI
Figs 1–4. Anurida octoculata sp. n. (1–2) and A. narli (specimen from Chukotka) (3–4). 1 – dorsal chaetotaxy of head and Th.1–2; 2 – dorsal chaetotaxy of Abd.3–6; 3 – dorsal chaetotaxy of head and Th.1–2; 4 – dorsal chaetotaxy of Abd.3–6. Scales: 0.1 mm.
Figs 1–13 in A Taxonomic Study Of The Myosoma Genus-Group With Description Of Amyosoma Cavei Sp. N. From Honduras (Hymenoptera: Braconidae: Braconinae: Braconini)
Figs 1–13. Compsobraconoides ruber (BRULLÉ), comb. n. – 1–10: female holotype, 11–13: male: 1 = scape and pedicel in outer-lateral view, 2 = head in dorsal view, 3 = head in latetral view, 4 = hind femur, 5 = claw, 6 = distal part of right fore wing, 7 = first discal cell of right fore wing, 8 = tergites 1–3, 9 = first tergite in lateral view, 10 = hypopygium and ovipositor apparatus, 11 = temple in dorsal view, 12 = vein 1–SR–M of first discal cell of fore wing, 13 = first tergite
Figs 30–37 in A Taxonomic Study Of The Myosoma Genus-Group With Description Of Amyosoma Cavei Sp. N. From Honduras (Hymenoptera: Braconidae: Braconinae: Braconini)
Figs 30–37. Amyosoma chinense (SZÉPLIGETI), female holotype: 30 = head in dorsal view, 31 = head in lateral view, 32 = hind femur with indication of its hairs, 33 = claw, 34 = distal part of right fore wing, 35 = first discal cell of right fore wing, 36 = 1r–m of hind wing, 37 = tergites 1–3
Figs 21–29 in A Taxonomic Study Of The Myosoma Genus-Group With Description Of Amyosoma Cavei Sp. N. From Honduras (Hymenoptera: Braconidae: Braconinae: Braconini)
Figs 21–29. Amyosoma cavei sp. n.: 21 = scape, pedicel and flagellomeres 1–5, 22 = head in dorsal view, 23 = head in lateral view, 24 = hind femur with indication of its hairs, 25 = claw, 26 = distal part of right fore wing, 27 = first discal cell of right fore wing, 28 = vein 1r–m of hind wing, 29 = tergites 1–3
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.