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3,853 results for “russia”
FIGURE 4 in A new species of the genus Lucasioides Kwon, 1993 (Isopoda, Oniscidea,Agnaridae) from Siberia, Russia
FIGURE 4. Lucasioides altaicus sp. nov., female paratype: A—left mandible; B—right mandible; C—maxillula; D—maxilla; E—maxilliped.
FIGURE 7 in A new species of the genus Lucasioides Kwon, 1993 (Isopoda, Oniscidea,Agnaridae) from Siberia, Russia
FIGURE 7. Lucasioides altaicus sp. nov., male paratype: A—exopod and endopod of pleopod 2; B—exopod of pleopod 1; C, D—endopod of pleopod 2.
FIGURE 3 in A new species of the genus Lucasioides Kwon, 1993 (Isopoda, Oniscidea,Agnaridae) from Siberia, Russia
FIGURE 3. Lucasioides altaicus sp. nov., female paratype: A—pereionites 6, 7, pleon and telson; B—nodulis lateralis on pereonite 7; C—pereionites 1–3; D—nodulis lateralis on pereonite 2.
FIGURE 6 in A new species of the genus Lucasioides Kwon, 1993 (Isopoda, Oniscidea,Agnaridae) from Siberia, Russia
FIGURE 6. Lucasioides altaicus sp. nov., male paratype: A—exopod of pleopod 1; B—endopod of pleopod 2; C—exopod of pleopod 2; D—endopod of pleopod 2; E—exopod of pleopod 3; F—exopod of pleopod 4; G—exopod of pleopod 5.
FIGURE 2 in A new species of the genus Lucasioides Kwon, 1993 (Isopoda, Oniscidea,Agnaridae) from Siberia, Russia
FIGURE 2. Lucasioides altaicus sp. nov., female paratype: A—pereion edge; B—head; C—telson; D—antennula; E—antenna; F—pereopod 1; G—pereopod 6; H—pereopod 7.
FIGURE 3 in Meisterfeldia bitsevi-new testate amoeba of the family Cryptodifflugiidae Jung 1942 (Amoebozoa: Arcellinida) from the tree hollow in the urban park (Moscow Russia) with a key to species of the genus Meisterfeldia
FIGURE 3. Outline of Meisterfeldia bitsevi: ventral (left) and lateral (right) views. 1–5—characters of the shell measurements. Scale bar: 15 μm.
FIGURE 2 in Meisterfeldia bitsevi-new testate amoeba of the family Cryptodifflugiidae Jung 1942 (Amoebozoa: Arcellinida) from the tree hollow in the urban park (Moscow Russia) with a key to species of the genus Meisterfeldia
FIGURE 2. Scanning electron microscopic image of Meisterfeldia bitsevi: a—ventral view, b—lateral view, c—dorsal view. Scale bar 10 µm. Magnification x 2,500.
FIGURE 1 in Meisterfeldia bitsevi-new testate amoeba of the family Cryptodifflugiidae Jung 1942 (Amoebozoa: Arcellinida) from the tree hollow in the urban park (Moscow Russia) with a key to species of the genus Meisterfeldia
FIGURE 1. Light micrographs of Meisterfeldia bitsevi: a—ventral view, b—dorsal view, c, d—lateral views. Scale bar—15 µm. Magnification x 400.
FIGURE 5 in Meisterfeldia bitsevi-new testate amoeba of the family Cryptodifflugiidae Jung 1942 (Amoebozoa: Arcellinida) from the tree hollow in the urban park (Moscow Russia) with a key to species of the genus Meisterfeldia
FIGURE 5. Outlines of the species from the genus Meisterfeldia: a, b—M. bitsevi, c, d—M. chibisovi, e, f—M. wegeneri, g, h—M. vanhoornei, i, j—M. polygonia, k—M. turfacea; a, d, f, h, j—ventral views; b, c, e, g, i, k—lateral views; c–f, i, j—from Bobrov, 2016; g, h—from Beyens et al., 1986; k—from Zacharias, 1903. Scale bar 15 µm.
Plant sedimentary ancient DNA data from Far East Russia
<p>Woody plants are expanding into the Arctic in response to the warming climate. The impact on arctic plants is not well understood due to the limited knowledge about plant assembly rules. Past plant diversity over long time series is rare. Here, we applied sedimentary ancient DNA metabarcoding targeting the P6 loop of the chloroplast <i>trnL</i> gene to a sediment record from Lake Ilirney (central Chukotka, Far Eastern Russia) covering the last 28 thousand years. Our results show that forb-rich steppe-tundra and dwarf-shrub tundra dominated during the cold climate before 14 ka, while deciduous erect-shrub tundra was abundant during the warm period since 14 ka. <i>Larix</i> invasion during the late Holocene substantially lagged behind the likely warmest period between 10 and 6 ka, where the vegetation coverage was densest. We reveal highest richness during 28–23 ka and a second richness peak during 13–10 ka, with both periods being accompanied by low shrub abundance. During the cold period before 14 ka, rich communities were phylogenetically clustered, suggesting low genetic divergence in the communities despite the great number of species. This probably originates from environmental filtering along with niche differentiation due to limited resources under harsh environmental conditions. In contrast, during the warmer period after 14 ka, rich communities were phylogenetically overdispersed. This results from a high number of species which were found to harbor high genetic divergence, likely originating from an erratic recruitment process in the course of warming. Some of our evidence may be of relevance for inferring future arctic plant assembly rules and diversity changes. By analogy to the past, we expect a lagged response of tree invasion. Plant richness may overshoot in the short term; in the long-term, however, the ongoing expansion of deciduous shrubs will eventually result in a phylogenetically more diverse community.</p>
FIGURE 11 in Bryocorinae Baerensprung, 1860 (Hemiptera: Heteroptera: Miridae) of European Russia and the Caucasus: synopsis and key to species
FIGURE 11. Images of parameres of Dicyphus (Dicyphus) spp. Dicyphus (D.) constrictus (Boheman, 1852), Dicyphus (D.) cerastii Wagner, 1951, Dicyphus (D.) errans Wolff, 1804, Dicyphus (D.) epilobii Reuter, 1883, Dicyphus (D.) hyalinipennis (Burmeister, 1835), Dicyphus (D.) pallidus (Herrich-Schaeffer, 1836), and Dicyphus (D.) stachydis J. Sahlberg, 1878.
FIGURE 3 in Bryocorinae Baerensprung, 1860 (Hemiptera: Heteroptera: Miridae) of European Russia and the Caucasus: synopsis and key to species
FIGURE 3. Dorsal habitus images of Dicyphus (Dicyphus) spp. Dicyphus (D.) errans Wolff, 1804 and Dicyphus (D.) epilobii Reuter, 1883.
FIGURE 2 in Bryocorinae Baerensprung, 1860 (Hemiptera: Heteroptera: Miridae) of European Russia and the Caucasus: synopsis and key to species
FIGURE 2. Dorsal habitus images of Dicyphus (Brachyceroea) spp. Dicyphus (B.) albonasutus Wagner, 1951, Dicyphus (B.) geniculatus (Fieber, 1858), Dicyphus (B.) digitalidis Josifov, 1958, Dicyphus (B.) globulifer (Fallén, 1829), and Dicyphus (B.) montandoni Reuter, 1888.
FIGURE 7 in Bryocorinae Baerensprung, 1860 (Hemiptera: Heteroptera: Miridae) of European Russia and the Caucasus: synopsis and key to species
FIGURE 7. Images of male abdominal apex of Dicyphus (D.) spp. in left lateral (above) and dorsal (below) views, respectively. Dicyphus (D.) cerastii Wagner, 1951, Dicyphus (D.) errans Wolff, 1804, Dicyphus (D.) constrictus (Boheman, 1852), Dicyphus (D.) hyalinipennis (Burmeister, 1835), and Dicyphus (D.) stachydis J. Sahlberg, 1878, Dicyphus (D.) pallidus (Herrich-Schaeffer, 1836).
FIGURE 1 in Bryocorinae Baerensprung, 1860 (Hemiptera: Heteroptera: Miridae) of European Russia and the Caucasus: synopsis and key to species
FIGURE 1. Dorsal habitus images of Bryocoris pteridis (Fallén, 1807), Monalocoris filicis (Linnaeus, 1758), and Campyloneura virgula (Herrich-Schaeffer, 1835).
FIGURE 10 in Bryocorinae Baerensprung, 1860 (Hemiptera: Heteroptera: Miridae) of European Russia and the Caucasus: synopsis and key to species
FIGURE 10. Images of parameres of Dicyphus (Brachyceroea) spp. Dicyphus (B.) albonasutus Wagner, 1951, Dicyphus (B.) geniculatus (Fieber, 1858), Dicyphus (B.) globulifer (Fallén, 1829), Dicyphus (B.) digitalidis Josifov, 1958, and Dicyphus (B.) montandoni Reuter, 1888.
FIGURE 9 in Bryocorinae Baerensprung, 1860 (Hemiptera: Heteroptera: Miridae) of European Russia and the Caucasus: synopsis and key to species
FIGURE 9. Images of parameres. Bryocoris pteridis (Fallén, 1807), Monalocoris filicis (Linnaeus, 1758) Macrolophus costalis Fieber, 1858, Macrolophus epilobii Putshkov, l978, Macrolophus pygmaeus Rambur, 1839, Macrolophus rubi Woodroffe, 1957, and Nesidiocoris tenuis (Reuter, 1895).
FIGURE 6 in Bryocorinae Baerensprung, 1860 (Hemiptera: Heteroptera: Miridae) of European Russia and the Caucasus: synopsis and key to species
FIGURE 6. Dorsal habitus images and head in lateral view of Macrolophus and Nesidiocoris spp. Macrolophus costalis Fieber, 1858, Macrolophus epilobii Putshkov, l978, Macrolophus glaucescens Fieber, 1858, Macrolophus pygmaeus Rambur, 1839, Macrolophus rubi Woodroffe, 1957, and Nesidiocoris tenuis (Reuter, 1895).
FIGURE 5 in Bryocorinae Baerensprung, 1860 (Hemiptera: Heteroptera: Miridae) of European Russia and the Caucasus: synopsis and key to species
FIGURE 5. Dorsal habitus images of Dicyphus (Dicyphus) spp. Dicyphus (D.) constrictus (Boheman, 1852) and Dicyphus (D.) pallidus (Herrich-Schaeffer, 1836).
FIGURE 4 in Bryocorinae Baerensprung, 1860 (Hemiptera: Heteroptera: Miridae) of European Russia and the Caucasus: synopsis and key to species
FIGURE 4. Dorsal habitus images of Dicyphus (Dicyphus) spp. Dicyphus (D.) cerastii Wagner, 1951, Dicyphus (D.) hyalinipennis (Burmeister, 1835), and Dicyphus (D.) stachydis J. Sahlberg, 1878.
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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.