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3,853 results for “russia”
Figures 41–44. Scolopendra canidens Newport, 1844 in Centipedes (Chilopoda) from the Dagestan, northern Caucasus, Russia
Figures 41–44. Scolopendra canidens Newport, 1844 (ASU No. 361; ♀): 41 – dental margin of forcipular coxosternite, ventrally; 42 – tarsus of leg 1, laterally; 43, 44 – ultimate LBS and postpedal segments, ventrally and dorsally. Abbreviation: ts – tarsal spurs. Scale: 0.2 mm (41–42), 1 mm (43–44).
Figures 45–50 in Centipedes (Chilopoda) from the Dagestan, northern Caucasus, Russia
Figures 45–50. Lithobius (s.l.) liber Lignau, 1903 (ZISP No. 127; ♀): 45 – dental margin of forcipular coxosternite, ventrally; 46, 47 – gonopods, ventro-laterally and dorso-laterally; 48 – left gonopod, dorsally; 49 – gonopods, distodorsally; 50 – TT9–13, dorsally. Abbreviations: t9, t11, t13 – TT 9, 11, and 13. Scale: 0.1 mm (46–48), 0.2 mm (45, 49), 0.5 mm (50).
Figures 30–33 in Centipedes (Chilopoda) from the Dagestan, northern Caucasus, Russia
Figures 30–33. Schendyla sp. (ZMUS; ♀), ventrally: 30 – right forcipula; 31 – labrum; 32 – 4th metasternite; 33 – left coxopleuron of ultimate LBS. Abbreviations: cp – coxopleural pores, d – denticles, pf – pore field. Scale: 0.1 mm (30), 0.05 mm (31–33).
Figures 27–29 in Centipedes (Chilopoda) from the Dagestan, northern Caucasus, Russia
Figures 27–29. Strigamia cf. transsilvanica (Verhoeff, 1928) (ZIN No. 61; ♂): 27 – head, ventrally; 28, 29 – ultimate LBS and postpedal segments, ventrally and dorsally. Abbreviation: up – pleuropretergite of the ultimate LBS. Scale: 0.1 mm.
Figures 34–40 in Centipedes (Chilopoda) from the Dagestan, northern Caucasus, Russia
Figures 34–40. Cryptops (C.) caucasius Verhoeff, 1934 (ASU No. 338: 34; No. 339: 35–38; No. 340: 39–40): 34 – head ant T1, dorsally; 35 – labrum, ventrally; 36 – ultimate LBS and postpedal segments, ventrally; 37 – anterior margin of forcipular coxostenite, ventrally; 38 – ultimate leg, laterally; 39, 40 – tarsus 1 and tibia of left ultimate leg, laterally; Abbreviations: ps – paramedian sutures, ts – transverse suture, ta1 – tarsus 1, ta2 – tarsus 2, ti – tibia. Scale: 0.1 mm (35, 37, 39–40), 0.2 mm (34, 36, 38).
Figures 23–26 in Centipedes (Chilopoda) from the Dagestan, northern Caucasus, Russia
Figures 23–26. Pachymerium ferrugineum (C.L. Koch, 1835) (ZMUM; ♂), ventrally: 23 – forcipular segment; 24 – clypeus and labrum; 25 – 6th LBS; 26 – ultimate LBS and postpedal segments. Abbreviations: ap – paired anterior porefields, cl – chitin-line, ca – clypeal areas, ptb – posterior transverse pore band. Scale: 0.25 mm (23), 0.1 mm (24, 25), 0.5 mm (26).
Figures 19–22 in Centipedes (Chilopoda) from the Dagestan, northern Caucasus, Russia
Figures 19–22. Diphyonyx conjungens (Verhoeff, 1898) (ZMUS; ♂), ventrally: 19 – forcipular segment; 20 – pretarsus of leg 21; 21 – labrum; 22 – ultimate LBS and postpedal segments. Abbreviations: cl – chitin-line, cp – coxopleural pores, d – denticle, t – tubercles in the labral mid-part. Scale: 0.05 mm (20, 21), 0.1 mm (19, 22).
Figures 10–12 in Centipedes (Chilopoda) from the Dagestan, northern Caucasus, Russia
Figures 10–12. Clinopodes caucasicus (Sseliwanoff, 1884) (ASU No. 365: 10–11; 336: 12; ♀), ventrally: 10 – head; 11 – anterior LBS; 12 – ultimate LBS. Abbreviations: cl – chitin-line, cp – coxopleural pores, ptb – transverse band of pores. Scale: 0.2 mm.
Figures 13–18 in Centipedes (Chilopoda) from the Dagestan, northern Caucasus, Russia
Figures 13–18. Clinopodes escherichii (Verhoeff, 1896) (ZISP No. 126; ♂: 15, 16, 18; ♀: 13, 14, 17), ventrally: 13 – head; 14 – some anterior LBS; 15 – penultimate LBS; 16, 17 – ultimate LBS of ♂ and ♀; 18 – ultimate LBS of ♂. Abbreviations: cl – chitin-line, ptb – posterior transverse pore band, ccp – cluster of coxopleural pores, pb – ventral pore band. Scale: 0.1 mm (16–18), 0.2 mm (13–15).
Figures 2–4 in Centipedes (Chilopoda) from the Dagestan, northern Caucasus, Russia
Figures 2–4. Dignathodon microcephalus (Lucas, 1846) (ZMUS; ♀), ventrally: 2 – head and forcipules; 3 – fragment of forcipules; 4 – ultimate LBS and postpedal segments. Abbreviations: cl – chitin-line, d – denticles on tarsungulum; cp – coxopleural pores. Scale: 0.05 (3), 0.25 mm (2, 4).
Figure 2 in First record of metacercariae trematodes Opisthioglyphe ranae (Digenea: Telorchiidae) and Echinostoma bolschewense (Digenea: Echinostomatidae) in Dreissena polymorpha (Bivalvia: Dreissenidae) from the Don and Volga river basins, Russia
Figure 2. Maximum likelihood phylogeny of Echinostoma genus based on the nuclear dataset (28S rDNA gene fragment). Numbers near nodes are bootstrap support (BS) values of IQ-TREE. Scale bar indicates the branch lengths. Red color indicates our sequence from the Sokolovskoe Reservoir (Don River basin).
Figure 3 in First record of metacercariae trematodes Opisthioglyphe ranae (Digenea: Telorchiidae) and Echinostoma bolschewense (Digenea: Echinostomatidae) in Dreissena polymorpha (Bivalvia: Dreissenidae) from the Don and Volga river basins, Russia
Figure 3. Maximum likelihood phylogeny of Echinostoma genus based on the mitochondrial dataset (COI gene fragment). Numbers near nodes are bootstrap support (BS) values of IQ-TREE. Scale bar indicates the branch lengths. Red color indicates our sequence from the Sokolovskoe Reservoir (Don River basin) and Volga River.
Figure 7 in First record of metacercariae trematodes Opisthioglyphe ranae (Digenea: Telorchiidae) and Echinostoma bolschewense (Digenea: Echinostomatidae) in Dreissena polymorpha (Bivalvia: Dreissenidae) from the Don and Volga river basins, Russia
Figure 7. Encysted metacercariae of Opisthioglyphe ranae detected in Dreissena polymorpha from Seversky Donets River (Don River Basin, Russia) (A) Metacercarial cysts in the visceral mass of zebra mussel. (B) Encysted metacercaria.
Figure 1 in First record of metacercariae trematodes Opisthioglyphe ranae (Digenea: Telorchiidae) and Echinostoma bolschewense (Digenea: Echinostomatidae) in Dreissena polymorpha (Bivalvia: Dreissenidae) from the Don and Volga river basins, Russia
Figure 1. Map of study area. (A) Discovery of the Dreissena polymorpha in Volga and Don rivers basin, Russia: 1. Sokolovskoe reservoir (Don River basin), 2. Volga River, 3. Seversky Donets River (Don River basin); (B) View of the habitat of D. polymorpha (a) Sokolovskoe reservoir (photo by A. Tomilova), (C) Seversky Donets River (photo by A. Lyubas).
Figure 6 in First record of metacercariae trematodes Opisthioglyphe ranae (Digenea: Telorchiidae) and Echinostoma bolschewense (Digenea: Echinostomatidae) in Dreissena polymorpha (Bivalvia: Dreissenidae) from the Don and Volga river basins, Russia
Figure 6. Encysted metacercariae of Echinostoma bolschewense detected in Dreissena polymorpha from Volga and Don River basin, Russia (A) Metacercarial cysts in the gonad of zebra mussel. (B) Encysted metacercaria.
Figure 4 in First record of metacercariae trematodes Opisthioglyphe ranae (Digenea: Telorchiidae) and Echinostoma bolschewense (Digenea: Echinostomatidae) in Dreissena polymorpha (Bivalvia: Dreissenidae) from the Don and Volga river basins, Russia
Figure 4. Maximum likelihood phylogeny of Opisthioglyphe ranae based on the nuclear dataset (28S rDNA gene fragment). Numbers near nodes are bootstrap support (BS) values of IQ-TREE. Scale bar indicates the branch lengths. Red color indicates our sequence from the Seversky Donets River.
Figure 5 in First record of metacercariae trematodes Opisthioglyphe ranae (Digenea: Telorchiidae) and Echinostoma bolschewense (Digenea: Echinostomatidae) in Dreissena polymorpha (Bivalvia: Dreissenidae) from the Don and Volga river basins, Russia
Figure 5. Maximum likelihood phylogeny of Opisthioglyphe ranae based on the mitochondrial dataset (COI gene fragment). Numbers near nodes are bootstrap support (BS) values of IQ-TREE. Scale bar indicates the branch lengths. Red color indicates our sequence from the Seversky Donets River.
Fig. 47 in Plant Type Materials from Kanagawa Prefecture (Japan) in the Herbarium of the Komarov Botanical Institute (LE; Russia): Lycophytes, Ferns, Gymnosperms, and Angiosperms (Monocots and some Dicots)
Fig. 47. Isolectotype of Carex capricornis Meinsh. ex Maxim. var. capitata Maxim. (LE 01012320; KPMNX0001323).
Fig. 46 in Plant Type Materials from Kanagawa Prefecture (Japan) in the Herbarium of the Komarov Botanical Institute (LE; Russia): Lycophytes, Ferns, Gymnosperms, and Angiosperms (Monocots and some Dicots)
Fig. 46. Lectotype of Carex capricornis Meinsh. ex Maxim. var. capitata Maxim. (LE 01012319; KPM-NX0001322).
Fig. 37 in Plant Type Materials from Kanagawa Prefecture (Japan) in the Herbarium of the Komarov Botanical Institute (LE; Russia): Lycophytes, Ferns, Gymnosperms, and Angiosperms (Monocots and some Dicots)
Fig. 37. Lectotype (LE 01012432) and syntype (LE 01012430) of Eriocaulon alpestre Hook.f. & Thomson ex Körn. var. robustium Maxim. (KPM-NX0001310).
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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.