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FIGURES 3–4 in TwonewfossilspeciesofthegenusAtomariaStephens (Coleoptera:Cryptophagidae) from Eocene European amber with a key to species described from fossil resins
FIGURES 3–4. Atomaria (Anchicera) perkovskyi sp. nov., No 6832 [MAIG]: 3—habitus, dorsal view; 4—habitus, ventrolateral view. Scale bar = 0.25 mm.
AI results complementing the 2021 Annual Report on surveillance for Avian Influenza in poultry and wild birds in Member States of the European Union - Malta
<p>This dataset contains the results of the EU co-funded surveillance activities conducted in 2021, which consisted of:</p> <ul> <li>Serological surveys to monitor the circulation of AIV subtypes H5 and H7 in poultry (active surveillance). These surveys should preferentially target poultry species or production systems with increased risk for introduction of avian influenza (AI).</li> <li>Passive surveillance aiming at the virological detection of AI in wild birds found dead or moribund</li> </ul>
AI results complementing the 2021 Annual Report on surveillance for Avian Influenza in poultry and wild birds in Member States of the European Union - Czechia
<p>This dataset contains the results of the EU co-funded surveillance activities conducted in 2021, which consisted of:</p> <ul> <li>Serological surveys to monitor the circulation of AIV subtypes H5 and H7 in poultry (active surveillance). These surveys should preferentially target poultry species or production systems with increased risk for introduction of avian influenza (AI).</li> <li>Passive surveillance aiming at the virological detection of AI in wild birds found dead or moribund.</li> </ul>
AI results complementing the 2021 Annual Report on surveillance for Avian Influenza in poultry and wild birds in Member States of the European Union - Austria
<p>This dataset contains the results of the EU co-funded surveillance activities conducted in 2021, which consisted of:</p> <ul> <li>Serological surveys to monitor the circulation of AIV subtypes H5 and H7 in poultry (active surveillance). These surveys should preferentially target poultry species or production systems with increased risk for introduction of avian influenza (AI).</li> <li>Passive surveillance aiming at the virological detection of AI in wild birds found dead or moribund.</li> </ul>
AI results complementing the 2021 Annual Report on surveillance for Avian Influenza in poultry and wild birds in Member States of the European Union - Switzerland
<p>This dataset contains the results of the surveillance activities conducted in 2021, which consisted of:</p> <ul> <li>Serological surveys to monitor the circulation of AIV subtypes H5 and H7 in poultry (active surveillance). These surveys should preferentially target poultry species or production systems with increased risk for introduction of avian influenza (AI).</li> <li>Passive surveillance aiming at the virological detection of AI in wild birds found dead or moribund</li> </ul>
Annual report on surveillance for avian influenza in poultry and wild birds in Member States of the European Union in 2021 – high-quality maps
<p>Here you can find the high-quality maps published in the ‘Annual report on surveillance for avian influenza in poultry and wild birds in Member States of the European Union in 2021' by EFSA.</p>
Effects of cadmium ingestion on reproduction and maternal egg care in the European earwig
<p>Dataset used in the study focusing on the effects of cadmium ingestion on reproduction and maternal egg care in the European earwig</p>
FIGURE 3 in Inocybe vaurasii (Agaricales, Inocybaceae), a new species of the I. xanthomelas group and similar European species with asteriform spores
FIGURE 3. Inocybe vaurasii (holotype). Micromorphological features. a. Basidiospores SEM. b. Basidiospores MO. c. Pleurocystidia. d, f. Cheilocystidia. e. Caulocystidia at the base of stipe. Bar: 2 µm = a; 10 µm = b; 50 µm = c–f. Mounting media: NH 4 OH = b–f. Photos: a = G. Moreno; b–f = F. Pancorbo.
FIGURE 4 in Inocybe vaurasii (Agaricales, Inocybaceae), a new species of the I. xanthomelas group and similar European species with asteriform spores
FIGURE 4. Fresh basidiomata in situ. a, d. Inocybe humilis AH 56423. b, e. Inocybe xanthomelas AH 47646. c, f. Inocybe subrimosa AH 44474. Scale bar: 20 mm. Photos: F. Pancorbo.
FIGURE 5 in Inocybe vaurasii (Agaricales, Inocybaceae), a new species of the I. xanthomelas group and similar European species with asteriform spores
FIGURE 5. Vouchers and SEM spores of types. a, b. Inocybe humilis J. Favre, G00126386, Z.S. 583. Holotype. c, d. Inocybe subrimosa (P. Karst.) Sacc. P.A.K. No. 3223 (H). Lectotype. e, f. Inocybe xanthomelas Boursier & Kühner, « Mail var. affinis » G00127626. Lectotype. Scale bar: 2 µm = b, d, f; 10 mm = a, c, e. Photos: G. Moreno.
FIGURE 2 in Inocybe vaurasii (Agaricales, Inocybaceae), a new species of the I. xanthomelas group and similar European species with asteriform spores
FIGURE 2. Macroscopic characters of Inocybe vaurasii. a. Collection AH 47714. Holotype. b. Collection AH 48238. c. Collection AH 48140. d. Detail of velar remains on the pileus. e. Collection EL226-11. f. Collection EL310-17. Scale bar: 20 mm. Photos: a–d = F. Pancorbo, e, f = E. Larsson.
FIGURE 1 in Inocybe vaurasii (Agaricales, Inocybaceae), a new species of the I. xanthomelas group and similar European species with asteriform spores
FIGURE 1. Most probable tree inferred by Bayesian inference (BI) analysis of the ITS and LSU regions of the rDNA in species of Inocybe xanthomelas group. Posterior probability from Bayesian analysis / Bootstrap-ML values around the branches are shown. Thick branches indicate nodes with phylogenetic support in both analysis (bootstrap values ≥ 95% and posterior probability ≥ 0.95). Sequences of Pseudosperma spurium and Pseudosperma flavellum were used to root the tree. The country of origin of each collection is abbreviated by ISO Alpha-2 codes, with specimens described in this article marked in bold.
FIGURES 22–27. 22–26 in Description of a new water mite species of the genus Piona Koch (Acari, Hydrachnidia, Pionidae) from European Russia
FIGURES 22–27. 22–26. Piona neumaniella sp. n., male: 22, ejaculatory complex; 23, I-Leg-5–6; 24, II-Leg-5-6; 25, IV-Leg- 4–6; 26, III leg claws. 27. Piona neumani, ejaculatory complex. Scale bars: 22, 26, 27= 50 μm, 23–25 = 100 μm.
FIGURES 18–21 in Description of a new water mite species of the genus Piona Koch (Acari, Hydrachnidia, Pionidae) from European Russia
FIGURES 18–21. Piona neumaniella sp. n., male: 18, seta Fch; 19, ventral view; 20, chelicera; 21, pedipalp. Scale bars: 18, 20 = 100 μm, 19 = 200 μm; 21 = 50 μm.
FIGURES 12–14 in Description of a new water mite species of the genus Piona Koch (Acari, Hydrachnidia, Pionidae) from European Russia
FIGURES 12–14. Piona neumaniella sp. n., deutonymph: 12, seta Fch; 13, ventral view; 14,pedipalp. Scale bars: 12–13 = 100 μm, 14 = 50 μm.
FIGURES 1–7 in Description of a new water mite species of the genus Piona Koch (Acari, Hydrachnidia, Pionidae) from European Russia
FIGURES 1–7. Piona neumaniella sp. n., larva: 1, dorsal shield; 2, idiosoma, coxal plates; 3–4, excretory pore plate; 5, chelicerae, dorsal view; 6, chela, lateral view; 7, pedipalp. Scale bars: 1–2, 3–4, 5 = 50 μm, 6, 7 = 25 μm.
FIGURES 30–35 in Description of a new water mite species of the genus Piona Koch (Acari, Hydrachnidia, Pionidae) from European Russia
FIGURES 30–35. Piona neumani: 30–32, larva; 33, deutonymph; 34, male; 35, female; 30, coxal plate I–III; 31, chelicerae, 32, excretory pore plate (30–32 after Wainstein 1980); 33, pedipalp (after Tuzovskij 2020); 34–35, genital field (after Gerecke et al. 2016).
FIGURES 8–11 in Description of a new water mite species of the genus Piona Koch (Acari, Hydrachnidia, Pionidae) from European Russia
FIGURES 8–11. Piona neumaniella sp. n., larva: 8, I-Leg-1–5; 9, II-Leg-1–5; 10, III-Leg-1–5; 11, leg claws. Scale bars: 8–10 = 50 μm, 11 = 25 μm.
FIGURES 15–17 in Description of a new water mite species of the genus Piona Koch (Acari, Hydrachnidia, Pionidae) from European Russia
FIGURES 15–17. Piona neumaniella sp. n., deutonymph: 15, I-Leg-4–6; 16, IV-Leg-4–6; 17, leg claw.Scale bars: 15–16= 100 μm, 17 = 50 μm.
FIGURES 28–29 in Description of a new water mite species of the genus Piona Koch (Acari, Hydrachnidia, Pionidae) from European Russia
FIGURES 28–29. Piona neumaniella sp. n., female: 28, ventral view; 29, pedipalp.Scale bars: 28 = 200 μm, 29 = 100 μm.
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.