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Рис. 18. ПоΛярная крачка Sterna paradisaea (в центре Λибо на переΑнем пΛане). Остров БайΑукова, заΛив Счастья, 30.06.2022. Фото Δ. В. Коробова Fig. 18. Arctic Tern Sterna paradisaea (in the center or in the foreground). Baydukova Island, Bay of Schastꞌе, 30.06.2022. Photo by D. V. Korobov in New data on rare and insufficiently studied birds of the Shchastya Bay, the Sea of Okhotsk, and adjacent territories (Khabarovsk Krai)
Рис. 18. ПоΛярная крачка Sterna paradisaea (в центре Λибо на переΑнем пΛане). Остров БайΑукова, заΛив Счастья, 30.06.2022. Фото Δ. В. Коробова Fig. 18. Arctic Tern Sterna paradisaea (in the center or in the foreground). Baydukova Island, Bay of Schastꞌе, 30.06.2022. Photo by D. V. Korobov
Рис. 16. Пуховой птенец тихоокеанской чайки Larus schistisagus. ЗаΛив Счастья, остров Чаечный, 14.07.2018. Фото В. В. Пронкевича Fig. 16. Downy chick of the Slaty-backed Gull Larus schistisagus. Bay of Schastꞌе, Chaechny Island, 14.07.2018. Photo by V. V. Pronkevich in New data on rare and insufficiently studied birds of the Shchastya Bay, the Sea of Okhotsk, and adjacent territories (Khabarovsk Krai)
Рис. 16. Пуховой птенец тихоокеанской чайки Larus schistisagus. ЗаΛив Счастья, остров Чаечный, 14.07.2018. Фото В. В. Пронкевича Fig. 16. Downy chick of the Slaty-backed Gull Larus schistisagus. Bay of Schastꞌе, Chaechny Island, 14.07.2018. Photo by V. V. Pronkevich
Рис. 8. РаспреΑеΛение гнезΑ беΛопΛечего орΛана в заΛиве Счастья по состоянию на 2018–2020 гг. Красными точками показаны занятые гнезΑа, сиреневыми — незанятые, жеΛтыми — брошенные Fig. 8. Distribution of Steller's sea eagle nests of the Bay of Schastꞌе as of 2018–2020. Red dots indicate occupied nests, purple dots indicate unoccupied nests, and yellow dots indicate abandoned nests in New data on rare and insufficiently studied birds of the Shchastya Bay, the Sea of Okhotsk, and adjacent territories (Khabarovsk Krai)
Рис. 8. РаспреΑеΛение гнезΑ беΛопΛечего орΛана в заΛиве Счастья по состоянию на 2018–2020 гг. Красными точками показаны занятые гнезΑа, сиреневыми — незанятые, жеΛтыми — брошенные Fig. 8. Distribution of Steller's sea eagle nests of the Bay of Schastꞌе as of 2018–2020. Red dots indicate occupied nests, purple dots indicate unoccupied nests, and yellow dots indicate abandoned nests
Рис. 6. Стая горбоносых турпанов Melanitta deglandi. Остров БайΑукова, заΛив Счастья, 17.07.2022. Фото Δ. В. Коробова Fig. 6. Flock of White-winged Scoter Melanitta deglandi. Baydukov Island, Bay of Schastꞌе, 17.07.2022. Photo by D. V. Korobov in New data on rare and insufficiently studied birds of the Shchastya Bay, the Sea of Okhotsk, and adjacent territories (Khabarovsk Krai)
Рис. 6. Стая горбоносых турпанов Melanitta deglandi. Остров БайΑукова, заΛив Счастья, 17.07.2022. Фото Δ. В. Коробова Fig. 6. Flock of White-winged Scoter Melanitta deglandi. Baydukov Island, Bay of Schastꞌе, 17.07.2022. Photo by D. V. Korobov
Рис. 1. Карта района иссΛеΑований. УсΛовные обозначения: красными кружками показаны базовые Λагеря; фиоΛетовой штриховкой — территория ΛанΑшафтного памятника прироΑы местного значения «ВΛасьевские торфяники»; синей штриховкой — акватория памятника прироΑы краевого значения «ЗаΛив Счастья с островами Кевор и Чаечный» Fig. 1. Map of the study area. Legend: red circles show base camps; purple shading — the territory of the landscape natural monument of local importance "Vlasyevsky Torfyaniky"; blue shading — the water area is a natural monument of regional significance "The Bay of Schastꞌе with the islands of Kevor and Chaechny" in New data on rare and insufficiently studied birds of the Shchastya Bay, the Sea of Okhotsk, and adjacent territories (Khabarovsk Krai)
Рис. 1. Карта района иссΛеΑований. УсΛовные обозначения: красными кружками показаны базовые Λагеря; фиоΛетовой штриховкой — территория ΛанΑшафтного памятника прироΑы местного значения «ВΛасьевские торфяники»; синей штриховкой — акватория памятника прироΑы краевого значения «ЗаΛив Счастья с островами Кевор и Чаечный» Fig. 1. Map of the study area. Legend: red circles show base camps; purple shading — the territory of the landscape natural monument of local importance "Vlasyevsky Torfyaniky"; blue shading — the water area is a natural monument of regional significance "The Bay of Schastꞌе with the islands of Kevor and Chaechny"
Рис. 7. РаспреΑеΛение гнезΑ беΛопΛечего орΛана Haliaeetus pelagicus на береговой кромке заΛ. Счастья по состоянию на 2009 г. Красными точками показаны занятые гнезΑа, сиреневыми — незанятые, жеΛтыми — брошенные Fig. 7. Distribution of nests of the Steller's Sea Eagle Haliaeetus pelagicus on the coastal edge of the Bay of Schastꞌе as of 2009. Red dots indicate occupied nests, purple dots indicate unoccupied nests, and yellow dots indicate abandoned nests in New data on rare and insufficiently studied birds of the Shchastya Bay, the Sea of Okhotsk, and adjacent territories (Khabarovsk Krai)
Рис. 7. РаспреΑеΛение гнезΑ беΛопΛечего орΛана Haliaeetus pelagicus на береговой кромке заΛ. Счастья по состоянию на 2009 г. Красными точками показаны занятые гнезΑа, сиреневыми — незанятые, жеΛтыми — брошенные Fig. 7. Distribution of nests of the Steller's Sea Eagle Haliaeetus pelagicus on the coastal edge of the Bay of Schastꞌе as of 2009. Red dots indicate occupied nests, purple dots indicate unoccupied nests, and yellow dots indicate abandoned nests
Fig. 7 in Heterophyid trematodes (Digenea) from penguins: A new species of Ascocotyle Looss, 1899, first description of metacercaria of Ascocotyle (A.) patagoniensis Hernández-Orts, Montero, Crespo, García, Raga and Aznar, 2012, and first molecular data
Fig. 7. Bayesian inference (BI) phylogram based on the partial (D1–D3 domains) sequences of 28S rDNA for the Opisthorchioidea. Posterior probability values are given above the branches. Support values with <0.95 posterior probability are omitted. The branch length scale-bar indicates the expected number of substitutions per site. The newly-generated sequences are highlighted in bold. Species of Ascocotyle are indicated in blue and the respective clade is demarcated with yellow rectangular. Doted rectangular outline the members of the family Heterophyidae. Outgroup taxa are represented in grey colour. The respective definitive hosts are symbol indicated on the tree. Abbreviations: Ad, Adult; MTC, metacercaria. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Fig. 5 in Heterophyid trematodes (Digenea) from penguins: A new species of Ascocotyle Looss, 1899, first description of metacercaria of Ascocotyle (A.) patagoniensis Hernández-Orts, Montero, Crespo, García, Raga and Aznar, 2012, and first molecular data
Fig. 5. Ascocotyle (Ascocotyle) patagoniensis Hernández-Orts, Montero, Crespo, García, Raga and Aznar, 2012'. Adults from the intestine of Spheniscus magellanicus (A and B) and metacercariae from the heart of Odontesthes argentinensis, Patagonia, Argentina. (C–E). (A) Total, ventral view, voucher (MLP-He 7503). (B) Anterior end with circumoral spines, voucher (IPCAS D-786). (C) Total, ventral view. (D) Middle part of body with ventrogenital complex, ventral view. (E) Anterior end with circumoral spines.
Fig. 4 in Heterophyid trematodes (Digenea) from penguins: A new species of Ascocotyle Looss, 1899, first description of metacercaria of Ascocotyle (A.) patagoniensis Hernández-Orts, Montero, Crespo, García, Raga and Aznar, 2012, and first molecular data
Fig. 4. Ascocotyle (Phagicola) cameliae n. sp. from the intestine Spheniscus magellanicus collected in Patagonia, Argentina. Scanning electron micrographs. (A) Detail of circumoral spines; note absence of tegumental spines. (B). Detail of papillae in region devoid of tegumental spines. (C and D) Detail of the mouth of the ventrogenital sac; note gonotyl in (D). (E) Posterior end, ventral view; note simple tegumental spines reaching up to the posterior extremity. (F) Pectinate (with 4–5 digit-like processes – teeth) tegumental spines on the anterior part of the body. (G) Pectinate (with 2–3 digit-like processes) tegumental spines on the middle part of the body. (H) Simple or 2- toothed tegumental spines on the posterior part of the body.
Fig. 3 in Heterophyid trematodes (Digenea) from penguins: A new species of Ascocotyle Looss, 1899, first description of metacercaria of Ascocotyle (A.) patagoniensis Hernández-Orts, Montero, Crespo, García, Raga and Aznar, 2012, and first molecular data
Fig. 3. Ascocotyle (Phagicola) cameliae n. sp. from the intestine of Spheniscus magellanicus collected in Patagonia, Argentina. (A–D) Anterior end with circumoral spines; note variation in spine number, 22 spines (A and B), 19 spines (C) and 24 spines (D). (E) Terminal genitalia, ventral view of paratype (IPCAS D-805).
Fig. 1 in Heterophyid trematodes (Digenea) from penguins: A new species of Ascocotyle Looss, 1899, first description of metacercaria of Ascocotyle (A.) patagoniensis Hernández-Orts, Montero, Crespo, García, Raga and Aznar, 2012, and first molecular data
Fig. 1. Ascocotyle (Phagicola) cameliae n. sp. from the intestine of Spheniscus magellanicus collected in Patagonia, Argentina. (A) Total, ventral view of holotype (MLPHe 7501). (B) Total, dorsal view of paratype (IPCAS D-805).
Fig. 2 in Heterophyid trematodes (Digenea) from penguins: A new species of Ascocotyle Looss, 1899, first description of metacercaria of Ascocotyle (A.) patagoniensis Hernández-Orts, Montero, Crespo, García, Raga and Aznar, 2012, and first molecular data
Fig. 2. Ascocotyle (Phagicola) cameliae n. sp. from the intestine Spheniscus magellanicus collected in Patagonia, Argentina. Scanning electron micrographs. (A and B) Total, ventral view. (C and D). Anterior end, apical view. (E). Anterior end, ventral view.
Fig. 6 in Heterophyid trematodes (Digenea) from penguins: A new species of Ascocotyle Looss, 1899, first description of metacercaria of Ascocotyle (A.) patagoniensis Hernández-Orts, Montero, Crespo, García, Raga and Aznar, 2012, and first molecular data
Fig. 6. Bayesian inference (BI) phylogram based on the partial (D1–D3 domains) sequences of 28S rDNA for the species of Ascocotyle. Posterior probability values are given above the branches. Support values with <0.95 posterior probability are omitted. The branch length scale-bar indicates the expected number of substitutions per site. The newly-generated sequences are colour indicated (in blue) and highlighted in bold. The outgroup is represented in grey colour. Host origins of the specimens sequenced are symbol indicated on the tree. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Fig. 1 in Metazoan parasites of California sea lions (Zalophus californianus): A new data and review
Fig. 1. Microphotographs of the metazoan parasites of California sea lions Zalophus califronianus. A, B – Apophallus zalophi, intestine (Digenea), C – Zalophotrema hepaticum, liver (Digenea), D, G – Contracaecum ogmorhini s. l., stomach (Nematoda), E, H – Pseudoterranova decipiens s. l., stomach (Nematoda), F – Anisakis simplex s. l., stomach (Nematoda), I, S – Diphyllobothrium sp., intestine (Cestoda), J, K – Orthohalarchne attenuata, nasal cavity (Acarina), L – Orthohalarchne diminuata (Acarina), M, R – Anophryocephalus sp., intestine (Cestoda), N, O – Corynosoma obtuscens, intestine (Acanthocephala), P, Q – Profilicollis altmani, intestine (Acanthocephala). A, C, F–I, K, M, N, P – under dissecting scope. B, Q – at light microscope. D, E, O, R, S, – at scanning electron microscope. J – in situ.
Fig. 2 in Metazoan parasites of California sea lions (Zalophus californianus): A new data and review
Fig. 2. Prevalence and proportion of separate species in the gastrointestinal helminth community of California sea lions (Zalophus californianus). Abbreviations of the genera: A – Anisakis, An – Andracantha, Ap – Apophallus, C – Contracaecum, Co – Corynosoma, P – Pseudoterranova, Pa – Parafilaroides, Pr – Profilicollis, Z – Zalophotrema.
Fig. 4 in A new distribution record of Chrysosplenium grayanum Maxim. (Saxifragaceae) in Korea: Evidence from morphological and molecular data
Fig. 4. Phylogenetic relationships resulting from the maximum parsimony analysis of nrITS sequences from eight Chrysosplenium taxa and two outgroup taxa (C. flagelliferaum in ser. Flagellifera and C. japonicum in ser. Alternifolia). Numbers above the branches indicate bootstrap values (≧80) for maximum parsimony (left) and neighbor-joining (right) analysis.
Fig. 2 in A new distribution record of Chrysosplenium grayanum Maxim. (Saxifragaceae) in Korea: Evidence from morphological and molecular data
Fig. 2. Photos of Chrysosplenium grayanum Maxim. A. Plant habit during flowering; B. Leaves; C. Inflorescence with bracteal leaves; D. Close-up of sepals and stamens.
Fig. 3 in A new distribution record of Chrysosplenium grayanum Maxim. (Saxifragaceae) in Korea: Evidence from morphological and molecular data
Fig. 3. Scanning electron micrograph of seed of Chysosplenium grayanum Maxim. A. Seed; B. Close-up of seed surface, showing smooth surface with cylindrical papillose with roundish head at the tip.
Fig. 1 in A new distribution record of Chrysosplenium grayanum Maxim. (Saxifragaceae) in Korea: Evidence from morphological and molecular data
Fig. 1. Illustrations of Chrysosplenium grayanum Maxim. A. Flowering plant; B. Inflorescence; C. Sepals and stamens; D. Capsule with persistent sepals; E. Leaf arrangement. Illustrations of Chrysosplenium grayanum were drawn by Park Chan-Ae.
Fig. 15. Paradelphomyia macracantha Alexander, 1957. A. female antenna. B. wing. C. ovipositor, lateral view. Scale bars 0.5 in New data on Limoniinae and Limnophilinae crane flies (Diptera: Limoniidae) of Korea
Fig. 15. Paradelphomyia macracantha Alexander, 1957. A. female antenna. B. wing. C. ovipositor, lateral view. Scale bars 0.5 mm.
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.