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1,449 results for “Siberia”
Fig. 1 in The ammonoid recovery after the end-Permian mass extinction: Evidence from the Iran-Transcaucasia area, Siberia, Primorye, and Kazakhstan
Fig. 1. Study areas: 1, Iran−Transcaucasia area; 2, Siberia and northern Russian Far East; 3, southern Russian Far East (South Primorye and Amur River); 4, Mangyshlak, Kazakhstan.
Fig. 2 in The ammonoid recovery after the end-Permian mass extinction: Evidence from the Iran-Transcaucasia area, Siberia, Primorye, and Kazakhstan
Fig. 2. View of the Permian–Triassic sequences of the section from the Wuchiapingian–Changhsingian Hambast (H) Formation to latest Changhsigian– Induan Elikah (E) Formation at the Hambast region, 28 km to south−western of the village of Abaraku, Abadeh, Central Iran.
Fig. 8 in The ammonoid recovery after the end-Permian mass extinction: Evidence from the Iran-Transcaucasia area, Siberia, Primorye, and Kazakhstan
Fig. 8. Suture lines of some Prolecanitida. A. Mesohedenstroemia olgae sp. nov., DVGI 2/851 (holotype), height 18.4 mm; Lower Olenekian, Mesohedenstroemia bosphorensis Zone; SMID quarry at the Artyom environs, south Primorye. B, C. Hedenstroemia tscherskii (Popov, 1961). Lower Olenekian, Lepiskites kolymensis Zone; Kenyelichi River, Kolyma River basin. B. DVGI 256−3b, height 60.0 mm (B1) and 73.0 mm (B2). C. DVGI 255−19c, height 73.0 mm. Abbreviations: D, dorsal lobe; I, inner lateral lobe; L, lateral lobe; U, umbilical lobe; V, ventral lobe.
Fig. 11 in The ammonoid recovery after the end-Permian mass extinction: Evidence from the Iran-Transcaucasia area, Siberia, Primorye, and Kazakhstan
Fig. 11. Suggested phylogenetic relationships in the Changhsingian–Olenekian goniatitid, prolecanitid, ceratitid, and phylloceratid ammonoid superfamilies and families.
Fig. 9 in The ammonoid recovery after the end-Permian mass extinction: Evidence from the Iran-Transcaucasia area, Siberia, Primorye, and Kazakhstan
Fig. 9. Some Early Olenekian Prolecanitida, Ceratitida, and Phylloceratida from Lower Olenekian, Mesohedenstroemia bosphorensis Zone; SMID quarry at the Artyom environs, South Primorye. A. Prolecantid Mesohedenstroemia olgae sp. nov., DVGI 2/851 (holotype), right lateral (A1) and ventral (A2) views. B. Ceratitid Inyoites sedini sp. nov., DVGI 1/851 (holotype). C. Phylloceratid Subbalhaeceras shigetai gen. and sp. nov., DVGI 2/851 (holotype), right lateral (C1), left lateral (C2), ventral (C3) views.
Рис. 2. Ischnodes sibiricus (A) и Aplocnemus nigricornis (B). Линейка — 1 мм Fig 2. Ischnodes sibiricus (A) and Aplocnemus nigricornis (B). Scale bar — 1 mm in The beetles (Coleoptera) in nests of hollow-nesting birds in the south-east of Western Siberia (Tomskaya Region)
Рис. 2. Ischnodes sibiricus (A) и Aplocnemus nigricornis (B). Линейка — 1 мм Fig 2. Ischnodes sibiricus (A) and Aplocnemus nigricornis (B). Scale bar — 1 mm
Fig. 2 in The impact of meteorological parameters on the biological productivity of mycorrhizal mushrooms in Eastern Siberia
Fig. 2. The variation of total amount of month precipitations *** in August and biological productivity**** of mushrooms in different years. *** variation of total amount of month precipitations, **** biological productivity
Fig. 1 in The impact of meteorological parameters on the biological productivity of mycorrhizal mushrooms in Eastern Siberia
Fig. 1. The variation of average month temperature * of soil at a depth of 40 cm below the natural cover in August and biological productivity** of mushrooms in different years. * variation of average month temperature, ** biological productivity, *** 1 centner = 100 kilograms (a centner is a metric unit of mass equal to one hundred kilograms).
Fig. 11 in Tubulinosema loxostegi sp. n. (Microsporidia: Tubulinosematidae) from the Beet Webworm Loxostege sticticalis L. (Lepidoptera: Crambidae) in Western Siberia
Fig. 11. Molecular phylogenetics of Tubulinosema loxostegi and related taxa, as obtained by Bayesian inference (BI) and Maximum likelihood (ML) from an alignment of respective ribosomal RNA gene sequences listed in Table 1. The branch support is given as posterior probability for BI and bootstrap value for ML. The branch length for the outgroup Janacekia debaisieuxi is reduced twofold (double slash). Scale bar: 0.01 expected changes per site.
Figs 9–10 in Tubulinosema loxostegi sp. n. (Microsporidia: Tubulinosematidae) from the Beet Webworm Loxostege sticticalis L. (Lepidoptera: Crambidae) in Western Siberia
Figs 9–10. Electron microscopy of abberant spores of Tubulinosema loxostegi. 9 – a spore with the prominent protrusion of the anchoring disc (arrow), characteristic of spore activation (perhaps due to the fixative); 10 – an oversized teratospore with irregularly laid layers of ER, amorphous matter (asterisk) and tubules (arrows). Abbreviations as in Figs 3–8. Scale bars: 1 µm.
Figs 3–8 in Tubulinosema loxostegi sp. n. (Microsporidia: Tubulinosematidae) from the Beet Webworm Loxostege sticticalis L. (Lepidoptera: Crambidae) in Western Siberia
Figs 3–8. Electron microscopy of Tubulinosema loxostegi. 3 – the sporoblast with tubules on its surface; 4 – exospore of the immature spore with short spiky extensions (arrow); 5 – mature spore within the cytoplasm of the host cell showing the disposition of bipartite polaroplast, the polar tube and the nucleus; 6 – the anterior part of the spore demonstrating structure of the anchoring disc and the polaroplast, as well as the additional layer of the exospore (arrow); 7 – the polar tube coils, with posterior coils of lesser diameter; 8 – two spores showing the diplokaryotic arrangement of the nuclei and delamination of the outer layer of the exospore (arrow), possibly due to an artifact of poor tissue preservation. AD – anchoring disc, En – endospore, ER – endoplasmatic reticulum, Ex – exospore, N – nuclei, Pp1 – anterior part of the polaroplast, Pp2 – posterior part of the polaroplast, PT – polar tube, PT1 – anterior coils of PT, PT2 – posterior coils of PT, Tb – tubules. Scale bars: 1 µm (3, 5, 8), 0.5 µm (4, 6, 7).
Figs. 1-8 in A new species of the genus Coryphium Stephens, 1834 (Coleoptera: Staphylinidae: Omaliinae: Coryphiini) from Eastern Siberia
Figs. 1-8. Coryphium enushchenkoi Shavrin, sp.n. (holotype, male). 1 – shape of body; 2 – antenna; 3 – labrum; 4 – maxilla; 5 – mentum and labial palpi; 6 – aedeagus; 7 – sternite VIII, 8 – tergite VIII. Scale bar: 1.0 mm (Fig. 1), 0.5 mm (Fig. 2), 0.1 mm (Figs. 3-6), 0.3 mm (Figs. 7-8).
Figures 1–7 in On new and poorly known Lathrobium (s.str.) species from Siberia and the Russian Far East (Insecta: Coleoptera: Staphylinidae: Paederinae)
Figures 1–7. ― Male structures of Lathrobium spp. 1–4. L. generosum sp.n. (1–2: HT, 3–4: PT): aedeagus (1: apical part laterally, 3: laterally, 2: operculum from the side opposite to the basal opening), abdominal sternite 8 ventrally (4). 5–7. L. geminum Kraatz, 1857. (Tyumen Area: Mazurovo): aedeagus (5: apical part laterally, 6: operculum from the side opposite to the basal opening), abdominal sternite 8 ventrally (7). The long axes of spicule rows in the male abdominal sternites are shown as dash-lines. Scale = 0.1 mm.
Figure 1 in Dispersal of earthworms from the Rudny Altai (Kazakhstan) into Western Siberia
Figure 1. Area of the field studies. Green triangle, E. nana; yellow square, E. tracta; red circle, E. ventripapillata; grey figures, the findings of Perel (1985); star stand for locations where none of these three species were detected; Arabic numerals refer to Table 1. Shading marks the Rudny Altai mountains. Roman numerals denote biomes: I, steppe; II, southern subzone of forest steppe; III, middle subzone of forest steppe; IV, northern subzone of forest steppe; V, subtaiga; VI, mixed forest; VII, boreal forest.
Fig. 2. Earthworm morphology. A in Dispersal of earthworms from the Rudny Altai (Kazakhstan) into Western Siberia
Fig. 2. Earthworm morphology. A, Eisenia tracta (Omsk region); B, Eisenia tracta (East-Kazakstan region); C, Eisenia ventripapillata; D, Eisenia nana. Side view. Symbol: tb, tubercle; cl, clitellum. Scale bar = 5.0 mm.
Figure 4 in Dispersal of earthworms from the Rudny Altai (Kazakhstan) into Western Siberia
Figure 4. Changes in soil freezing depth from 1963 to 2011 at the meteorological stations in the Omsk oblast. Blue line, Cherlak; green, Barabinsk; red, Omsk; black, Tara.
Figure 1 in A new species of the genus Otiorhynchus Germar, 1822 (Coleoptera: Curculionidae) from Central Altai (Western Siberia)
Figure 1. Otiorhynchus spp.: a – O. ivanovi sp. nov., holotype, habitus, dorsal view; b – O. rectipilosus, dorsal view. Scale bar for a = 1.0 mm.
Figure 4 in Redescription of Styphlus orthochaetinus (Reitter, 1916) from Siberia with new taxonomic data
Figure 4. Distribution of the subgenus Styphlomimus: black circle – S. oros, red circle – S. krueperi, triangular – S. medvedevi and S. mikhaili, ring – S. manueli, rhombus – S. caelebs, star – S. bogatshevi, square – S. armeniacus, octagon – S. orthochaetinus.
Figure 2 in Redescription of Styphlus orthochaetinus (Reitter, 1916) from Siberia with new taxonomic data
Figure 2. Styphlus (Styphlomimus) orthochaetinus: a – male, laterally, b – aedeagus, dorsally, с – aedeagus, laterally, c – tegmen, dorsally, c – armament of endophallus, dorsally. Scale bar for 1 = 1.0 mm, for b-d = 0.5 mm, for e = 0.2 mm.
Figure 1 in Redescription of Styphlus orthochaetinus (Reitter, 1916) from Siberia with new taxonomic data
Figure 1. Styphlus (Styphlomimus) orthochaetinus: a - male, dorsally, b - male, ventrally, c - female, dorsally, d - female, ventrally. Scale bar for b and d = 1.0 mm.
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.