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48 results for “Western Carpathians”
Fig. 3. Exeristes spp., male. 1 — E in A Review Of The Genus Exeristes (Hymenoptera, Ichneumonidae, Pimplinae) From Carpathians, With An Illustrated Key To Western Palearctic Species
Fig. 3. Exeristes spp., male. 1 — E. arundinis, habitus (lateral view); 2 — E. longiseta, habitus (lateral view); 3 — E. ruficollis, head and mesosoma (lateral view); 4 — E. roborator, clypeus (frontal view); 5 — E. arundinis, hind tarsus (lateral view); 6 — E. roborator, hind tarsus (lateral view).
Fig. 2. Exeristes spp., female. 1 — E in A Review Of The Genus Exeristes (Hymenoptera, Ichneumonidae, Pimplinae) From Carpathians, With An Illustrated Key To Western Palearctic Species
Fig. 2. Exeristes spp., female. 1 — E. roborator, ovipositor tip (lateral view); 2 — E. longiseta, ovipositor tip (lateral view); 3 — E. arundinis, ovipositor tip (lateral view); 4 — E. denticulator, holotype, ovipositor tip (lateral view); 5 — E. ruficollis, lectotype, ovipositor tip (lateral view); 6 — E. arundinis, fore tarsal claw (lateral view); 7 — E. ruficollis, lectotype, hind femur and tibia (lateral view); 8 — E. denticulator, holotype, hind tibia and tarsus (lateral view); 9 — E. denticulator, holotype, propodeum and tergites I–II of metasoma (dorsal view); 10 — E. roborator, propodeum and tergites I–II of metasoma (dorsal view).
Fig. 1. The Carpathian Exeristes spp. distribution map. Yellow circle — E in A Review Of The Genus Exeristes (Hymenoptera, Ichneumonidae, Pimplinae) From Carpathians, With An Illustrated Key To Western Palearctic Species
Fig. 1. The Carpathian Exeristes spp. distribution map. Yellow circle — E. roborator; red circle — E. longiseta; green circle — E. arundinis.
Text-fig. 1. Location of Ivanovce Pliocene primate site in Slovakia within the wider area of the Carpathians-Pannonian Basin (white circle). The northern wall of the former limestone quarry at Ivanovce near Trenčín in western Slovakia. Several karst fillings provided a rich early Pliocene vertebrate assemblage. a: schematic sketch of the site showing the location of different karst fillings, b: photo of the same site during the palaeontological research in 1960s. in Allosorex Stenodus Fejfar, 1966 (Eulipotyphla, Soricidae): Re-Description Of Type Material And Re-Interpretation Of Its Fossil Record
Text-fig. 1. Location of Ivanovce Pliocene primate site in Slovakia within the wider area of the Carpathians-Pannonian Basin (white circle). The northern wall of the former limestone quarry at Ivanovce near Trenčín in western Slovakia. Several karst fillings provided a rich early Pliocene vertebrate assemblage. a: schematic sketch of the site showing the location of different karst fillings, b: photo of the same site during the palaeontological research in 1960s.
Fig. 2 in Fuel Load And Flight Range Estimation Of Migrating Passerines In The Western Part Of The Carpathian Basin During The Autumn Migration
Fig. 2. Potential flight ranges (+ SE) of passerine species stopping over in Tömörd during
Fig. 1 in Fuel Load And Flight Range Estimation Of Migrating Passerines In The Western Part Of The Carpathian Basin During The Autumn Migration
Fig. 1. Potential Mediterranean flyway in southern Europe (arrows) and the location of Tömörd
Data from: Genetic constraints of population expansion of the Carpathian lynx at the western edge of its native distribution range in Central Europe
Even though populations of many large carnivores are expanding throughout Europe, the Eurasian lynx population in the Western Carpathians seems unable to spread beyond the western boundaries of its current distributional range. Many factors, both extrinsic and intrinsic, can influence the potential for range expansion: landscape fragmentation, natal philopatry, low natural fecundity and high mortality, and low and sex-biased dispersal rates. In this study we used non-invasive genetic sampling to determine population size fluctuation, sub-structuring and social organisation of the peripheral lynx population at the Czech-Slovak border. Even though the population size has been relatively stable over the period studied (2010-2016), the individual inbreeding coefficients of residents at the end of the study were much higher than those of founders at the beginning of the study. While non-resident individuals (predominantly males) occurred regularly in the study population, only resident individuals with well-established home ranges participated in breeding and produced offspring. Almost half the offspring detected in the study (predominantly females) settled in or near the natal area. Subsequent incestuous mating resulted in production of inbred individuals, reduction of effective population size of the population, and sub-structuring of the population through formation of two distinct family lineages. Our study illustrates how social constraints, such as territoriality, breeding of residents and natal philopatry of females lead to incestuous mating in small-sized populations, especially at the periphery of their distribution. This threat should be taken into account in planning of conservation and population recovery of species with similar social structure.
FIGURE 17 in Redescription of two troglobiotic species of the genus Pseudosinella Schäffer, 1897 (Collembola, Entomobryidae) from the Western Carpathians
FIGURE 17. Pseudosinella paclti: 17a, Abd.IV segment complete setal pattern, b—Abd.IV schematic setal pattern, symbols as in Fig. 9. Scale bar: 200 μm (Fig. 17a, b).
FIGURES 18–21 in Redescription of two troglobiotic species of the genus Pseudosinella Schäffer, 1897 (Collembola, Entomobryidae) from the Western Carpathians
FIGURES 18–21. Pseudosinella paclti: 18, trochanter of leg III, internal side; 19, unguis of leg II, internal side; 20, unguis of leg II, external side; 21, unguis of leg II, view from below. Scale bars: 50 μm (Fig. 18), 30 μm Figs (19–21).
FIGURES 14–16 in Redescription of two troglobiotic species of the genus Pseudosinella Schäffer, 1897 (Collembola, Entomobryidae) from the Western Carpathians
FIGURES 14–16. Pseudosinella paclti: 14, Abd.II and III segments, dorsally, left side; 15, Abd.IV segment dorsally, setal pattern around anterior trichobothria, right side; 16, apical part of manubrium, ventral side. Scale bars:—100 μm (Figs 14–15), 40 μm (Fig. 16).
FIGURES 10–13 in Redescription of two troglobiotic species of the genus Pseudosinella Schäffer, 1897 (Collembola, Entomobryidae) from the Western Carpathians
FIGURES 10–13. Pseudosinella paclti: 10, head, dorsal side; 11, labial triangle setae and labial palps, lateral side; 12, Ant.I segment, ventral side (empty circles: serrated meso- and macrosetae); 13, apical part of Ant.III segment, ventral side (empty circles: serrated meso- and macrosetae). Scale bars: 200 μm (Fig. 10), 50 μm (Figs 11–13).
FIGURE 9 in Redescription of two troglobiotic species of the genus Pseudosinella Schäffer, 1897 (Collembola, Entomobryidae) from the Western Carpathians
FIGURE 9. Pseudosinella aggtelekiensis: 9a, Abd.IV segment complete setal pattern; b,—Abd.IV schematic setal pattern. Black circles: large—broad ciliated macrosetae with blunt apex, medium—ciliated macrosetae with sharp apex, small––ciliated meso-/microsetae; white circles—finely ciliated thin mesosetae; #—pseudoporus; x—trichobothrium; ^––supplementary microsetae with blunt apex; as, ps––smooth mesosetae. Scale bar: 200 μm (Fig. 9a,b).
FIGURES 1–4 in Redescription of two troglobiotic species of the genus Pseudosinella Schäffer, 1897 (Collembola, Entomobryidae) from the Western Carpathians
FIGURES 1–4. Pseudosinella aggtelekiensis: 1, head, dorsal side (setae of p-row not drawn); 2, labial triangle setae and labial palps, lateral side; 3, Ant.I segment, ventral side (empty circles: serrated meso- and macrosetae), a—conical microseta (cm), enlarged; 4, apical part of Ant.III segment, ventral side (empty circles: serrated meso- and macrosetae). Scale bars:: 200 μm (Fig. 1), 50 μm (Figs 2–4).
FIGURE 10–13. P in A new cave species of the genus Protaphorura Absolon, 1901 (Collembola, Onychiuridae) from the Western Carpathians (Slovakia) with critical comments to the Palaearctic representatives of the genus
FIGURE 10–13. P. borinensis sp. nov.: 10, labium, prox.—proximal field, bm—basomedian field; 11, chaetotaxy of thorax I; 12, chaetotaxy of Abd. VI; 13, inner side of femur, arrow shows open psx––ungranulated circular area.
FIGURE 1–5. P in A new cave species of the genus Protaphorura Absolon, 1901 (Collembola, Onychiuridae) from the Western Carpathians (Slovakia) with critical comments to the Palaearctic representatives of the genus
FIGURE 1–5. P. borinensis sp. nov.: 1, chaetotaxy and position of dorsal pso; 2, maxillary outer lobe, s.h.—sublobal chaetae; b.s.—basal chaeta; 3, PAO; 4, claw, empodium and distal part of tibiotarsus of the first leg (lateral tooth marked by dashed line); 5, chaetotaxy of Abd. II–VI ventrally, cuticular fold of furca enlarged
FIGURE 6–9. P in A new cave species of the genus Protaphorura Absolon, 1901 (Collembola, Onychiuridae) from the Western Carpathians (Slovakia) with critical comments to the Palaearctic representatives of the genus
FIGURE 6–9. P. borinensis sp. nov.: 6, Ant. III–IV dorso-lateral view, sensory rods and clubs enlarged (a) and ventro-lateral view (b), apical organ, microsensillum enlarged; 7, position of s and s´chaetae on Abd. I; 8, chaetotaxy of posterior part of Abd. V; 9, hind margin of head, area between p1–p1chaetae enlarged.
FIGURES 5–9. D. kratochvili. 5 in Redescription of two troglobiotic species of Deuteraphorura Absolon, 1901 (Collembola, Onychiuridae) from the Western Carpathians
FIGURES 5–9. D. kratochvili. 5, Antennae‒‒ms, sensory rods and clubs of AOIII enlarged (lateral view). 6, leg III, lateral view. 7, maxillary outer lobe. 8, Abd. II–III sternum with MVO. 9, labrum.
FIGURE 10‒13. D. kratochvili. 10 in Redescription of two troglobiotic species of Deuteraphorura Absolon, 1901 (Collembola, Onychiuridae) from the Western Carpathians
FIGURE 10‒13. D. kratochvili. 10 head and Th. I–III ventrally. D. schoenviszkyi. 11. claw of leg I. 12, ventral tube, frontal view. 13. Abd. II–VI ventrally.
FIGURE 1 in Redescription of two troglobiotic species of Deuteraphorura Absolon, 1901 (Collembola, Onychiuridae) from the Western Carpathians
FIGURE 1. Habitus of Deuteraphorura kratochvili, Suchá jaskyňa Cave, Low Tatras Mts. Photo: Ľ. Kováč & P. Ľuptáčik.
FIGURES 2–4. D. kratochvili. 2 in Redescription of two troglobiotic species of Deuteraphorura Absolon, 1901 (Collembola, Onychiuridae) from the Western Carpathians
FIGURES 2–4. D. kratochvili. 2, chaetotaxy and position of dorsal pso. 3, head ventrally. 4, ventral side of Abd. I–VI.
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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)
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DANDI Archive for NWB datasets
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International Brain Laboratory public data
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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.