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Figure 7 from: Gongalsky KB, Turbanov IS, Medvedev DA, Volkova JS (2018) Description of a new species of the genus Protracheoniscus Verhoeff, 1917 and redescription of Protracheoniscus kryszanovskii Borutzky, 1957 from the southeast of European Russia (Isopoda, Oniscidea, Agnaridae). In: Hornung E, Taiti S, Szlavecz K (Eds) Isopods in a Changing World. ZooKeys 801: 189-205. https://doi.org/10.3897/zookeys.801.23167
Figure 7 Protracheoniscuskryszanovskii Borutzky, 1957: A left mandible B right mandible C maxillula D maxilla E maxilliped (female).
Figure 6 from: Gongalsky KB, Turbanov IS, Medvedev DA, Volkova JS (2018) Description of a new species of the genus Protracheoniscus Verhoeff, 1917 and redescription of Protracheoniscus kryszanovskii Borutzky, 1957 from the southeast of European Russia (Isopoda, Oniscidea, Agnaridae). In: Hornung E, Taiti S, Szlavecz K (Eds) Isopods in a Changing World. ZooKeys 801: 189-205. https://doi.org/10.3897/zookeys.801.23167
Figure 6 Protracheoniscuskryszanovskii Borutzky, 1957: A dorsal scale-setae B pereon edge C head D telson E antennula F antenna (female).
Figure 4 from: Gongalsky KB, Turbanov IS, Medvedev DA, Volkova JS (2018) Description of a new species of the genus Protracheoniscus Verhoeff, 1917 and redescription of Protracheoniscus kryszanovskii Borutzky, 1957 from the southeast of European Russia (Isopoda, Oniscidea, Agnaridae). In: Hornung E, Taiti S, Szlavecz K (Eds) Isopods in a Changing World. ZooKeys 801: 189-205. https://doi.org/10.3897/zookeys.801.23167
Figure 4 Protracheoniscuspokarzhevskii sp. n.: A pereopod 1 B pereopod 6 C pereopod 7 (male, paratype).
Figure 2 from: Gongalsky KB, Turbanov IS, Medvedev DA, Volkova JS (2018) Description of a new species of the genus Protracheoniscus Verhoeff, 1917 and redescription of Protracheoniscus kryszanovskii Borutzky, 1957 from the southeast of European Russia (Isopoda, Oniscidea, Agnaridae). In: Hornung E, Taiti S, Szlavecz K (Eds) Isopods in a Changing World. ZooKeys 801: 189-205. https://doi.org/10.3897/zookeys.801.23167
Figure 2 Protracheoniscuspokarzhevskii sp. n.: A dorsal scale-setae B pereon edge C head D pleonites 3–5, telson and uropods E antennula F antenna (female, paratype).
Figure 3 from: Gongalsky KB, Turbanov IS, Medvedev DA, Volkova JS (2018) Description of a new species of the genus Protracheoniscus Verhoeff, 1917 and redescription of Protracheoniscus kryszanovskii Borutzky, 1957 from the southeast of European Russia (Isopoda, Oniscidea, Agnaridae). In: Hornung E, Taiti S, Szlavecz K (Eds) Isopods in a Changing World. ZooKeys 801: 189-205. https://doi.org/10.3897/zookeys.801.23167
Figure 3 Protracheoniscuspokarzhevskii sp. n.: A left mandible B right mandible C maxillula D maxilla E maxilliped (female, paratype).
Figure 11 from: Gongalsky KB, Turbanov IS, Medvedev DA, Volkova JS (2018) Description of a new species of the genus Protracheoniscus Verhoeff, 1917 and redescription of Protracheoniscus kryszanovskii Borutzky, 1957 from the southeast of European Russia (Isopoda, Oniscidea, Agnaridae). In: Hornung E, Taiti S, Szlavecz K (Eds) Isopods in a Changing World. ZooKeys 801: 189-205. https://doi.org/10.3897/zookeys.801.23167
Figure 11 Phylogeny of six species of the genera Protracheoniscus and Desertoniscus with outgroup taxa based on the analysis of the mtDNA COI gene by the Neighbor Joining method (NJ) with the calculation of bootstrap support of branch sites (1000 replications).
Figure 1 from: Gongalsky KB, Turbanov IS, Medvedev DA, Volkova JS (2018) Description of a new species of the genus Protracheoniscus Verhoeff, 1917 and redescription of Protracheoniscus kryszanovskii Borutzky, 1957 from the southeast of European Russia (Isopoda, Oniscidea, Agnaridae). In: Hornung E, Taiti S, Szlavecz K (Eds) Isopods in a Changing World. ZooKeys 801: 189-205. https://doi.org/10.3897/zookeys.801.23167
Figure 1 Dorsal view of male paratype of Protracheoniscuspokarzhevskii sp. n., 4 mm (A), and male ProtracheoniscuskryszanovskiiBorutzky 1957, 9 mm (B), from Kalmykia, SE of European Russia.
Figure 10 from: Gongalsky KB, Turbanov IS, Medvedev DA, Volkova JS (2018) Description of a new species of the genus Protracheoniscus Verhoeff, 1917 and redescription of Protracheoniscus kryszanovskii Borutzky, 1957 from the southeast of European Russia (Isopoda, Oniscidea, Agnaridae). In: Hornung E, Taiti S, Szlavecz K (Eds) Isopods in a Changing World. ZooKeys 801: 189-205. https://doi.org/10.3897/zookeys.801.23167
Figure 10 Distribution in the SE of European Russia of Protracheoniscuskryszanovskii from the original description by Borutzky (1957) (circles) and new location on Sarpa Lake, Kalmykia (square), and location of Protracheoniscuspokarzhevskii sp. n. in Bolshoi Tsaryn (diamond).
Figure 2 from: Malíček J, Palice Z, Vondrák J, Łubek A, Kukwa M (2018) Bacidia albogranulosa (Ramalinaceae, lichenized Ascomycota), a new sorediate lichen from European old-growth forests. MycoKeys 44: 51-62. https://doi.org/10.3897/mycokeys.44.30199
Figure 2 Phylogeny of selected members of Bacidia s.str. This is a Bayesian phylogenetic reconstruction based on nrITS and mtSSU sequences. The new species, Bacidiaalbogranulosa, is indicated in bold. Branches with > 0.95 Bayesian posterior probability values are indicated by thicker lines. Bayesian posterior probabilities (first value) and maximum likelihood bootstrap percentages (second value) are indicated.
Figure 1 from: Malíček J, Palice Z, Vondrák J, Łubek A, Kukwa M (2018) Bacidia albogranulosa (Ramalinaceae, lichenized Ascomycota), a new sorediate lichen from European old-growth forests. MycoKeys 44: 51-62. https://doi.org/10.3897/mycokeys.44.30199
Figure 1 Morphology of Bacidiaalbogranulosa. A Holotype (PRA/Vondrák 11888) B Common phenotype (Malíček 10802) C Typical growth form on old beech trees (Malíček 8166) D Phenotype with abundant soredia forming a seemingly leprose thallus (Malíček 8013) E Detail of soredia (Malíček 8166) F Soredia arising from granules (PRA/Vondrák 11888). Scale bars: 1 mm (A−C), 0.5 mm (D), 0.2 mm (E, F). Photos by J. Malíček (A, B) and J. Machač (C−F).
Data from: Informing conservation strategies with museum genomics: Long-term effects of past anthropogenic persecution on the elusive European wildcat
<p>Like many carnivore species, European wildcats (<em>Felis silvestris</em>) have suffered severe anthropogenic population declines in the past, resulting in a strong population bottleneck in the beginning of the 20th century. In Germany, the species has managed to survive its near-extinction in small isolated areas and is currently recolonizing former habitats owing to legal protection and concerted conservation efforts. Here, we SNP genotyped and mtDNA sequenced 56 historical and 650 contemporary samples to assess the impact of massive persecution on genetic diversity, population structure and hybridization dynamics of wildcats. Spatiotemporal analyses suggest that the presumed postglacial differentiation between two genetically distinct metapopulations in Germany is in fact the result of the anthropogenic bottleneck followed by re-expansion from few secluded refugia. We found that, despite the bottleneck, populations experienced no severe genetic erosion, nor suffered from elevated inbreeding or showed signs of increased hybridization with domestic cats. Our findings have significant implications for current wildcat conservation strategies, as the data analyses show that the two presently recognized wildcat population clusters should be treated as a single conservation unit. Although current populations appear under no imminent threat from genetic factors, fostering connectivity through the implementation of forest corridors will facilitate the preservation of genetic diversity and promote long-term viability. The present study documents how museum collections can be used as essential resource for assessing long-term anthropogenic effects on natural populations, e.g., regarding population structure and the delineation of appropriate conservation units, potentially informing todays' species conservation.</p>
Streamwater dissolved organic carbon, discharge, temperature and precipitation electrical conductivity time series and associated site information for eight European headwater streams.
<p>This dataset (in Microsoft Excel format) provides the underlying data described in the Science Advances paper, "Long-term rise in riverine dissolved organic carbon concentration is predicted by electrolyte solubility theory", by D.T. Monteith, P.A. Henrys, J.Hruška, H.A. de Wit, P. Krám, F. Moldan, M. Posch, A. Räike, J.L. Stoddard, E.M. Shilland, M.G. Pereira & C.D. Evans, It includes the following spreadsheets: 1) A "<strong>readme</strong>" page providing the information above; 2) <strong>Site data</strong>. including site physical attributes and information on data sources; 3) <strong>Temporal smoothing</strong>. Detailing the temporal smoothers applied to the electrical conductivity and air temperature data for modelling purposes; and 4) <strong>Input data</strong>. Multi-decadal time series of dissolved organic carbon (DOC) concentrations for a range of intensively monitored headwater streams, together with data for the following variables used to model DOC, i.e. associated stream discharge measurements, and temporally averaged precipitation electrical conductivity and air temperature data. </p>
Sample based prevalence data complementing the European Union One Health 2021 Zoonoses Report - Norway
<p>This dataset contains monitoring data on zoonoses and zoonotic agents under the Directive 2003/99/EC. This Directive requires Member Sates (MSs) to collect, evaluate and report data on zoonoses and zoonotic agents. MSs can also report monitoring data and information on some other pathogenic microbiological agents in foodstuffs. Relevant EU legislation: Commission Regulation (EC) No 2073/2005,Commission Regulation (EC) No 1441/2007, Commission Regulation (EU) No 1086/2011, Commission Regulation (EU) No 209/2013, Commission Regulation(EU) No 217/2014.</p>
Tables, figures, and country data complementing the European Union One Health Zoonoses 2021 Report
<p>European Food Safety Authority; European Centre for Disease Prevention and Control</p> <p>All summary tables and figures produced for the European Union One Health 2021 Zoonoses Report are provided as archives containing Excel files for tables, and as PDF or PNG files for figures.</p> <p><strong>All country data connected to this Report are published SEPARATELY on Knowledge Junction - see related identifiers. This is because DATA OWNERSHIP for country data stays with the organisation(s) of the country submitting the data - for further reference see doi:10.2903/sp.efsa.2019.EN-1544.</strong></p> <p>Supplementary datasets submitted are given in the related identifier section, however for clarity we give here the information on what they refer to:</p> <p>10.5281/zenodo.7390416 Foodborne outbreaks</p> <p>10.5281/zenodo.7389918 Disease status</p> <p>10.5281/zenodo.7390142 Animal Population</p> <p>10.5281/zenodo.7390884 Prevalence</p> <p><strong><em>Sample-based data submitted by specific countries</em></strong></p> <p>10.5281/zenodo.7389531 Finland</p> <p>10.5281/zenodo.7389587 Croatia</p> <p>10.5281/zenodo.7389851 Norway</p> <p>10.5281/zenodo.7389870 Luxembourg</p> <p>10.5281/zenodo.7389816 United Kingdom (Northern Ireland)</p> <p>10.5281/zenodo.7389889 Ireland</p>
Supplementary material 3 from: Craves JA, Anich NM (2023) Status and distribution of an introduced population of European Goldfinches (Carduelis carduelis) in the western Great Lakes region of North America. NeoBiota 81: 129-155. https://doi.org/10.3897/neobiota.81.97736
Natural food sources of European Goldfinches in eastern North America
FIGURE 8 in Studies on European species of the water mite family Aturidae Thor (Acari: Hydrachnidia)
FIGURE 8. Aturus natangensis, male dorsum. Scale bar = 100 µm.
Supplementary material 3 from: van Nieukerken EJ (2023) Stigmella naturnella (Klimesch, 1936) (Lepidoptera, Nepticulidae) a fast-spreading European leafminer of Betula, with a revised key to linear leafmines on Betula. Nota Lepidopterologica 46: 37-82. https://doi.org/10.3897/nl.46.99360
Synecology of Stigmella naturnella
Supplementary material 2 from: van Nieukerken EJ (2023) Stigmella naturnella (Klimesch, 1936) (Lepidoptera, Nepticulidae) a fast-spreading European leafminer of Betula, with a revised key to linear leafmines on Betula. Nota Lepidopterologica 46: 37-82. https://doi.org/10.3897/nl.46.99360
Measurements and counts Stigmella naturnella
Supplementary material 1 from: van Nieukerken EJ (2023) Stigmella naturnella (Klimesch, 1936) (Lepidoptera, Nepticulidae) a fast-spreading European leafminer of Betula, with a revised key to linear leafmines on Betula. Nota Lepidopterologica 46: 37-82. https://doi.org/10.3897/nl.46.99360
DNA barcoded specimens of Stigmella
Antimicrobial resistance monitoring results complementing the European Union Summary Report on Antimicrobial Resistance in zoonotic and indicator bacteria from humans, animals and food in 2020/2021 – Greece
<p>This dataset contains AMR monitoring results in animals and food at the isolate level pursuant to Article 9 of Directive 2003/99/EC and to Annex, part B, of Commission implementing Decision (EU) 2020/1729. In addition, the dataset includes any other results from isolates than the ones mentioned in the Commission implementing Decision (EU) 2020/172. The quantitative minimum inhibitory concentration (MIC) data from dilution methods are included.</p> <p>Reporting authorities contributing to 2021 AMR data collection: Ministry of Rural Development and Food</p>
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Allen Brain Atlas
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DANDI Archive for NWB datasets
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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.