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Figure 5. - Anterior edge of clypeus of Dicronocephalus. A Dicronocephalusadamsiadamsi B Dicronocephalusadamsidrumonti C Dicranocephalusyuiyui D Dicronocephalusdabryi E Dicronocephalusuenoikatoi F Dicronocephaluswallichiibowringi G Dicronocephaluswallichiiwallichii H Dicronocephaluswallichiibourgoini.
Figure 5. - Anterior edge of clypeus of Dicronocephalus. A Dicronocephalusadamsiadamsi B Dicronocephalusadamsidrumonti C Dicranocephalusyuiyui D Dicronocephalusdabryi E Dicronocephalusuenoikatoi F Dicronocephaluswallichiibowringi G Dicronocephaluswallichiiwallichii H Dicronocephaluswallichiibourgoini.
Figure 46. - Leucotrichiayungarum Angrisano & Burgos, 2002 (redrawn from Angrisano and Burgos 2002). Male genitalia: A segments IX–X, lateral B segment IX, dorsal C segment VIII, ventral D apex of segment VIII, dorsal E apex of segment IX and inferior appendage, ventral F inferior appendage and subgenital plate, dorsal G phallus, lateral.
Figure 46. - Leucotrichiayungarum Angrisano & Burgos, 2002 (redrawn from Angrisano and Burgos 2002). Male genitalia: A segments IX–X, lateral B segment IX, dorsal C segment VIII, ventral D apex of segment VIII, dorsal E apex of segment IX and inferior appendage, ventral F inferior appendage and subgenital plate, dorsal G phallus, lateral.
Figure 8. - Metasternal process (in the circle) and aedeagi of Dicronocephalusadamsidrumonti and Dicronocephalusadamsiadamsi. A, B, C, D Dicronocephalusadamsidrumonti (Tibet) E, F, G, H Dicronocephalusadamsidrumonti (Sichuan) I, J, K, L Dicronocephalusadamsiadamsi (South Korea) M, N, O, P Dicronocephalusadamsiadamsi (North Korea) Q, R, S, T Dicronocephalusadamsiadamsi (Dandong, China).
Figure 8. - Metasternal process (in the circle) and aedeagi of Dicronocephalusadamsidrumonti and Dicronocephalusadamsiadamsi. A, B, C, D Dicronocephalusadamsidrumonti (Tibet) E, F, G, H Dicronocephalusadamsidrumonti (Sichuan) I, J, K, L Dicronocephalusadamsiadamsi (South Korea) M, N, O, P Dicronocephalusadamsiadamsi (North Korea) Q, R, S, T Dicronocephalusadamsiadamsi (Dandong, China).
Figure 1. - Mitotic metaphases, karyograms and idiogram of Euterpe species with 2n=36 chromosomes. Euterpeedulis (A–B), Euterpeoleracea (C-D) and Euterpeprecatoria (E–F). Arrows indicate secondary constrictions. Semi-reticulate interphase nuclei of Euterpeedulis (G), Euterpeoleracea (H) and Euterpeprecatoria (I). Bar: 10 µm.
Figure 1. - Mitotic metaphases, karyograms and idiogram of Euterpe species with 2n=36 chromosomes. Euterpeedulis (A–B), Euterpeoleracea (C-D) and Euterpeprecatoria (E–F). Arrows indicate secondary constrictions. Semi-reticulate interphase nuclei of Euterpeedulis (G), Euterpeoleracea (H) and Euterpeprecatoria (I). Bar: 10 µm.
Figure 6. - Female of Teredoruscombfemorus sp. n.: A frontal view of head B ventral view of subgenital plate C lateral view of head and anterior pronotum D dorsal view of head and anterior pronotum E lateral view of ovipositor F lateral view of fore femur G lateral view of mid femur. Scale bars A, C–G: 1.0 mm, B: 0.5 mm.
Figure 6. - Female of Teredoruscombfemorus sp. n.: A frontal view of head B ventral view of subgenital plate C lateral view of head and anterior pronotum D dorsal view of head and anterior pronotum E lateral view of ovipositor F lateral view of fore femur G lateral view of mid femur. Scale bars A, C–G: 1.0 mm, B: 0.5 mm.
Figure 6. - Ovipositor of the Japanese Epicephala species. A, Epicephalaanthophilia (paratype, slide No. AK250) B Epicephalabipollenella (slide No. AK281) C Epicephalalanceolatella (non-type, slide No. AK251) D Epicephalaperplexa (paratype, slide No. AK253) E Epicephalaobovatella (non-type, slide No. AK246) F Epicephalacorruptrix (paratype, slide No. AK262) G Epicephalavitisidaea (slide No. AK239) H Epicephalaparasitica (non-type, slide No. AK239) I Epicephalanudilingua (paratype, slide No. AK296). Scale bar 0.1 mm.
Figure 6. - Ovipositor of the Japanese Epicephala species. A, Epicephalaanthophilia (paratype, slide No. AK250) B Epicephalabipollenella (slide No. AK281) C Epicephalalanceolatella (non-type, slide No. AK251) D Epicephalaperplexa (paratype, slide No. AK253) E Epicephalaobovatella (non-type, slide No. AK246) F Epicephalacorruptrix (paratype, slide No. AK262) G Epicephalavitisidaea (slide No. AK239) H Epicephalaparasitica (non-type, slide No. AK239) I Epicephalanudilingua (paratype, slide No. AK296). Scale bar 0.1 mm.
Figure 8. - Pollination and oviposition behavior of the Japanese Epicephala species. A Epicephalaanthophilia female actively depositing pollen on Glochidionacuminatum female flower B Epicephalaanthophilia ovipositing through stylar pit of Glochidionacuminatum flower C Epicephalabipollenella ovipositing through stylar pit of Glochidionzeylanicum flower D Epicephalalanceolatella ovipositing through stylar pit of Glochidionlanceolatum flower E Epicephalaperplexa ovipositing through lateral ovary wall of Glochidionlanceolatum flower F Epicephalaobovatella ovipositing through lateral ovary wall of Glochidionobovatum flower G Epicephalacorruptrix ovipositing through ovary wall of Glochidionrubrum flower H Epicephalavitisidaea ovipositing in the interspace between ovary and tepal I Epicephalaparasitica ovipositing in young fruit of Phyllanthuslepidocarpus.
Figure 8. - Pollination and oviposition behavior of the Japanese Epicephala species. A Epicephalaanthophilia female actively depositing pollen on Glochidionacuminatum female flower B Epicephalaanthophilia ovipositing through stylar pit of Glochidionacuminatum flower C Epicephalabipollenella ovipositing through stylar pit of Glochidionzeylanicum flower D Epicephalalanceolatella ovipositing through stylar pit of Glochidionlanceolatum flower E Epicephalaperplexa ovipositing through lateral ovary wall of Glochidionlanceolatum flower F Epicephalaobovatella ovipositing through lateral ovary wall of Glochidionobovatum flower G Epicephalacorruptrix ovipositing through ovary wall of Glochidionrubrum flower H Epicephalavitisidaea ovipositing in the interspace between ovary and tepal I Epicephalaparasitica ovipositing in young fruit of Phyllanthuslepidocarpus.
Figure 3. - Aedeagus of the Japanese Epicephala species. A Epicephalaanthophilia (paratype, slide No. AK249), lateral view B Epicephalabipollenella (slide No. AK258), lateral view C Epicephalalanceolatella, lateral (left; non-type, slide No. AK270) and dorsal (right; non-type, slide No. AK271) view D Epicephalaperplexa (paratype, slide No. AK272), lateral view E Epicephalaobovatella (non-type, slide No. AK245), lateral view F Epicephalacorruptrix (paratype, slide No. AK260), lateral view G Epicephalavitisidaea (slide No. AK234), lateral view H Epicephalaparasitica (non-type, slide No. AK290), lateral view I Epicephalanudilingua (paratype, slide No. AK292), ventral view. Scale bar: 0.5 mm.
Figure 3. - Aedeagus of the Japanese Epicephala species. A Epicephalaanthophilia (paratype, slide No. AK249), lateral view B Epicephalabipollenella (slide No. AK258), lateral view C Epicephalalanceolatella, lateral (left; non-type, slide No. AK270) and dorsal (right; non-type, slide No. AK271) view D Epicephalaperplexa (paratype, slide No. AK272), lateral view E Epicephalaobovatella (non-type, slide No. AK245), lateral view F Epicephalacorruptrix (paratype, slide No. AK260), lateral view G Epicephalavitisidaea (slide No. AK234), lateral view H Epicephalaparasitica (non-type, slide No. AK290), lateral view I Epicephalanudilingua (paratype, slide No. AK292), ventral view. Scale bar: 0.5 mm.
Figure 5. - Apophyses and eighth abdominal segment of the Japanese Epicephala species. A Epicephalaanthophilia (paratype, slide No. AK250) B Epicephalabipollenella (slide No. AK281) C Epicephalalanceolatella (non-type, slide No. AK251) D Epicephalaperplexa (paratype, slide No. AK253) E Epicephalaobovatella (non-type, slide No. AK246) F Epicephalacorruptrix (paratype, slide No. AK262) G Epicephalavitisidaea (slide No. AK239) H Epicephalaparasitica (non-type, slide No. AK239) I Epicephalanudilingua (paratype, slide No. AK296). Scale bar: 1 mm.
Figure 5. - Apophyses and eighth abdominal segment of the Japanese Epicephala species. A Epicephalaanthophilia (paratype, slide No. AK250) B Epicephalabipollenella (slide No. AK281) C Epicephalalanceolatella (non-type, slide No. AK251) D Epicephalaperplexa (paratype, slide No. AK253) E Epicephalaobovatella (non-type, slide No. AK246) F Epicephalacorruptrix (paratype, slide No. AK262) G Epicephalavitisidaea (slide No. AK239) H Epicephalaparasitica (non-type, slide No. AK239) I Epicephalanudilingua (paratype, slide No. AK296). Scale bar: 1 mm.
Figure 2. - Valva of the Japanese Epicephala species. A Epicephalaanthophilia (paratype, slide No. AK249) B Epicephalabipollenella (slide No. AK258) C Epicephalalanceolatella (non-type, slide No. AK270) D Epicephalaperplexa (paratype, slide No. AK272) E Epicephalaobovatella (non-type, slide No. AK245) F Epicephalacorruptrix (paratype, slide No. AK260) G Epicephalavitisidaea (slide No. AK234); H, Epicephalaparasitica (non-type, slide No. AK290) I Epicephalanudilingua (paratype, slide No. AK292). Scale bar: 1 mm.
Figure 2. - Valva of the Japanese Epicephala species. A Epicephalaanthophilia (paratype, slide No. AK249) B Epicephalabipollenella (slide No. AK258) C Epicephalalanceolatella (non-type, slide No. AK270) D Epicephalaperplexa (paratype, slide No. AK272) E Epicephalaobovatella (non-type, slide No. AK245) F Epicephalacorruptrix (paratype, slide No. AK260) G Epicephalavitisidaea (slide No. AK234); H, Epicephalaparasitica (non-type, slide No. AK290) I Epicephalanudilingua (paratype, slide No. AK292). Scale bar: 1 mm.
Figure 7. - Section of the female proboscis of the Japanese Epicephala species. All photographs were taken from non-type specimens. A Epicephalaanthophilia (slide No. AK303) B Epicephalabipollenella (slide No. AK298) C Epicephalalanceolatella (slide No. AK300) D Epicephalaperplexa (slide No. AK301) E Epicephalaobovatella (slide No. AK307) F Epicephalacorruptrix (slide No. AK304) G Epicephalavitisidaea (slide No. AK297) H Epicephalaparasitica (slide No. AK308), arrows indicate rudimentary sensilla I Epicephalanudilingua (slide No. AK309). lp, labial palp. Scale bar: 0.1 mm.
Figure 7. - Section of the female proboscis of the Japanese Epicephala species. All photographs were taken from non-type specimens. A Epicephalaanthophilia (slide No. AK303) B Epicephalabipollenella (slide No. AK298) C Epicephalalanceolatella (slide No. AK300) D Epicephalaperplexa (slide No. AK301) E Epicephalaobovatella (slide No. AK307) F Epicephalacorruptrix (slide No. AK304) G Epicephalavitisidaea (slide No. AK297) H Epicephalaparasitica (slide No. AK308), arrows indicate rudimentary sensilla I Epicephalanudilingua (slide No. AK309). lp, labial palp. Scale bar: 0.1 mm.
Figure 1. - Representative specimens of the nine Epicephala species in Japan. Wing pattern of Epicephalaparasitica is sexually dimorphic, so specimens of both sexes are shown for this species. A Epicephalaanthophilia (Amami Island, Kagoshima, ♀, holotype) B Epicephalabipollenella (Henoko, Okinawa, ♀) C Epicephalalanceolatella (Cape Hedo, Okinawa, ♀, holotype) D Epicephalaperplexa (Cape Hedo, Okinawa, ♀, holotype) E Epicephalaobovatella (Tomogashima, Wakayama, ♂, paratype) F Epicephalacorruptrix (Takae, Okinawa, ♀, holotype) G Epicephalavitisidaea (Yona, Okinawa, ♀) H Epicephalaparasitica (Yonaguni Island, Okinawa, ♀, holotype) I Epicephalaparasitica (Hateruma Island, Okinawa, ♂) J Epicephalanudilingua (Watarase-yusuichi, Tochigi, ♀, holotype). Scale bar: 5 mm.
Figure 1. - Representative specimens of the nine Epicephala species in Japan. Wing pattern of Epicephalaparasitica is sexually dimorphic, so specimens of both sexes are shown for this species. A Epicephalaanthophilia (Amami Island, Kagoshima, ♀, holotype) B Epicephalabipollenella (Henoko, Okinawa, ♀) C Epicephalalanceolatella (Cape Hedo, Okinawa, ♀, holotype) D Epicephalaperplexa (Cape Hedo, Okinawa, ♀, holotype) E Epicephalaobovatella (Tomogashima, Wakayama, ♂, paratype) F Epicephalacorruptrix (Takae, Okinawa, ♀, holotype) G Epicephalavitisidaea (Yona, Okinawa, ♀) H Epicephalaparasitica (Yonaguni Island, Okinawa, ♀, holotype) I Epicephalaparasitica (Hateruma Island, Okinawa, ♂) J Epicephalanudilingua (Watarase-yusuichi, Tochigi, ♀, holotype). Scale bar: 5 mm.
Figure 4. - Seventh abdominal segment and corpus and ductus bursae of the Japanese Epicephala species. A, Epicephalaanthophilia (paratype, slide No. AK250) B Epicephalabipollenella (slide No. AK281) C Epicephalalanceolatella (non-type, slide No. AK251) D Epicephalaperplexa (paratype, slide No. AK253) E Epicephalaobovatella (non-type, slide No. AK246) F Epicephalacorruptrix (paratype, slide No. AK262) G Epicephalavitisidaea (slide No. AK239) H Epicephalaparasitica (non-type, slide No. AK293) I Epicephalanudilingua (paratype, slide No. AK296). Scale bar: 1 mm.
Figure 4. - Seventh abdominal segment and corpus and ductus bursae of the Japanese Epicephala species. A, Epicephalaanthophilia (paratype, slide No. AK250) B Epicephalabipollenella (slide No. AK281) C Epicephalalanceolatella (non-type, slide No. AK251) D Epicephalaperplexa (paratype, slide No. AK253) E Epicephalaobovatella (non-type, slide No. AK246) F Epicephalacorruptrix (paratype, slide No. AK262) G Epicephalavitisidaea (slide No. AK239) H Epicephalaparasitica (non-type, slide No. AK293) I Epicephalanudilingua (paratype, slide No. AK296). Scale bar: 1 mm.
F I G U R E 4 in Genetic characteristics and growth patterns of the hybrid grouper derived from the hybridization of Epinephelus fuscoguttatus (female) Epinephelus polyphekadion (male)
F I G U R E 4 Examples of functional secondary structures of the 5S gene
F I G U R E 4 in Assessing the diversity of Australian tarantulas (Araneae: Theraphosidae) using DNA barcoding and iterative species delimitation
F I G U R E 4 Legend on next page.
F I G U R E 2 in Assessing the diversity of Australian tarantulas (Araneae: Theraphosidae) using DNA barcoding and iterative species delimitation
F I G U R E 2 Histogram of HKY pairwise distance with bars increasing by 0.25 pairwise distance.
F I G U R E 4 in Movement and habitat shift responses of juvenile Atlantic Salmon (Salmo salar) to annually permanent stream flooding
F I G U R E 4 Summary of Fulton's condition factor related to location, 2016–2017.
F I G U R E 3 Mass specific growth rates among locations, 2016–2017 in Movement and habitat shift responses of juvenile Atlantic Salmon (Salmo salar) to annually permanent stream flooding
F I G U R E 3 Mass specific growth rates among locations, 2016–2017.
Fig. 2 in Naturalization Of Melanoides Tuberculata And Tarebia Granifera (Thiaridae, Gastropoda) M O L L U S K S U N D E R T H E H Y D R O E C O L O G I C A L Conditions Of Zaporizhzhya Npp Cooling Pond
Fig. 2. Mollusks in the hydrobiological frame 25x25 cm.
Fig. 1 in Microhabitat Preference And Relationships B E T W E E N M E Ta Z O A N Pa R A S I T E S O N T H E G I L L A P Pa R At U S O F T H E E U R O P E A N E E L (A N G U I L L A Anguilla) From Freshwaters Of Latvia
Fig. 1. The gill apparatus and sectors of gill arch.
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.