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Fig. 1. Microscope view 100 in A novel intermediate host for Taenia serialis (Gervais, 1847): The European roe deer (Capreolus capreolus L. 1758) from the Monti Sibillini National Park (MSNP), Italy
Fig. 1. Microscope view 100 magnifications of the scolex collected from one of the cysts recovered in a wild European roe deer.
Fig. 2 in A novel intermediate host for Taenia serialis (Gervais, 1847): The European roe deer (Capreolus capreolus L. 1758) from the Monti Sibillini National Park (MSNP), Italy
Fig. 2. Note the meningeal vessels' congestion and the suppurative exudate covering the meningeal surface.
Fig. 5 in Veterinary monitoring of gastrointestinal parasites in European bison, Bison bonasus designated for translocation: Comparison of two coprological methods
Fig. 5. The relationship between the prevalence of Eimeria spp. oocysts in European bison feces measured by the Willis and modified McMaster techniques (each point represents an individual parasite species).
Fig. 1 in Veterinary monitoring of gastrointestinal parasites in European bison, Bison bonasus designated for translocation: Comparison of two coprological methods
Fig. 1. Probability of detection of Eimeria spp. oocysts with the modified McMaster technique based on the number of oocysts detected using the Willis technique.
Fig. 4 in Veterinary monitoring of gastrointestinal parasites in European bison, Bison bonasus designated for translocation: Comparison of two coprological methods
Fig. 4. The relationship between the prevalence of various taxa eggs/oocysts in European bison feces measured by the Willis and modified McMaster techniques (each point represents an individual taxon/genus, blue points stand for oocysts and red point for eggs). (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Fig. 3 in Fatal spirorchiidosis in European pond turtles (Emys orbicularis) in Switzerland
Fig. 3. Phylogenetic analysis, (a) Maximum likelihood phylogenetic tree of 206 bp of the 28S rRNA gene of members of the family Spirorchiidae, with Alaria alata as outgroup. Members of the Spirorchis genus are boxed. Parasite names are provided, followed by host names (top clade only), GenBank accession numbers and country of parasite discovery. Bootstrap values above 70 are shown, and branch lengths corresponding to the number of base substitutions are indicated by the scale bar. (b) Unrooted phylogenetic network of 274 bp of the ITS2 region of Spirorchis spp. recently described from North Amercian turtle species (Roberts et al., 2019) and Swiss Emys orbicularis. Host names, location of discovery and GenBank accession numbers are given. Note that the unnamed Spirorchis parasite described from Graptemys ernsti (AL, United States) is 100% identical in both the partial 28S rRNA (MH843487), and ITS2 (MH678746) sequences amplified from all Swiss turtle specimens.
Fig. 2 in Fatal spirorchiidosis in European pond turtles (Emys orbicularis) in Switzerland
Fig. 2. Histopathological findings, (a) Five-year-old female European pond turtle (Emys orbicularis, ID2), small intestine. Multiple intravascular trematode eggs (narrow arrowheads) are present in the tunica muscularis, and submucosa associated with severe granulomatous inflammation and acute haemorrhage (large arrowheads). H&E staining, bar 500 μm. (b) Eleven-year-old female European pond turtle (Emys orbicularis, ID4), large intestine. The mucosa displays a focal deep ulceration (arrows) with replacement of the underlying submucosa and tunica muscularis by fibrous tissue (stars) and severe granulomatous coelomitis (asterisks). Multiple trematode eggs are present intravascularly, particularly in the subserosal vasculature (arrowheads). H&E staining, bar 200 μm. (c) ID2, small intestine. Focal granulomatous reaction with multinucleated giant cells (arrows) displaying intracytoplasmic, partially disrupted trematode eggs (arrowheads). H&E staining, bar 100 μm. (d) Adult male European pond turtle (Emys orbicularis ID5), testis. Interstitial granulomatous reaction composed of multinucleated giant cells (arrows) displaying intracytoplasmic embryonated (arrowheads) and non-embryonated (asterisk) trematode eggs. H&E staining, bar 50 μm.
Fig. 1 in Fatal spirorchiidosis in European pond turtles (Emys orbicularis) in Switzerland
Fig. 1. Gross findings and parasitology, (a) Gastrointestinal tract from a 6-year-old female European pond turtle (Emys orbicularis, ID8) displaying large numbers of spirorchiid eggs in the subserosal vessels (arrowheads), which are more visible in the intestine. Note the focal stricture of the intestine (arrow) with proximal severe dilation. This section was filled with a large amount of necrotic material. Bar 1 cm. (b) Autolytic testis from ID5 displaying similar lesions to the ones observed in the gastrointestinal tract from ID8 (arrowheads). Bar 25 mm. (c) Aspect of a spirorchiid egg stained with methylene blue identified following sedimentation from intestinal content. Light optical microscope, Bar 10 μm. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Fig. 3 in Veterinary monitoring of gastrointestinal parasites in European bison, Bison bonasus designated for translocation: Comparison of two coprological methods
Fig. 3. Probability of detection of Trichostrongylidae eggs with the modified McMaster technique based on the number of eggs detected using the Willis technique.
Fig. 2 in Veterinary monitoring of gastrointestinal parasites in European bison, Bison bonasus designated for translocation: Comparison of two coprological methods
Fig. 2. Probability of detection of Trichuris sp. eggs with the modified McMaster technique based on the number of eggs detected using the Willis technique.
Fig. 5 in Ascaridoid parasites in European sardine throughout the annual cycle: Variability in parasitic load according to host stock features
Fig. 5. Plot of European sardine (Sardina pilchardus) individuals by total length (cm) and its correlation with the number of ascaridoids. Orange: FAO Division 27.9. a Portuguese Waters - East; blue: GSA 1 Alboran; light grey: GSA 6 Northern Spain; electric blue: GSA 17 Northern Adriatic; pink: GSA 22 Aegean. The red dotted line shows the lowest sardine size parasitised; the black dotted line indicates the critical length from which the differences in the number of parasites cease to be significant. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Fig. 3. A in Ascaridoid parasites in European sardine throughout the annual cycle: Variability in parasitic load according to host stock features
Fig. 3. A. General picture of the Spearman correlation matrixes among the European sardine's (Sardina pilchardus) condition indices, including the abundance of ascaridoid nematodes in the parasitised stocks (Atlantic, Northern Spain and Northern Adriatic). Total length (TL; cm), relative condition index (Kn), tissue fat content (%), mesenteric fat scale, gonadosomatic index (GSI; %), and hepatosomatic index (HSI; %) were related among each other and with the number of parasites per fish. The colour gradient from maroon to dark blue corresponds to the correlation with strength, from negative to positive, respectively. The empty squares represent a nonsignificant correlation according to a p value of <0.05*. B. Annual trends of tissue fat content (%) and GSI (%). Orange: FAO Division 27.9. a Portuguese Waters - East; blue: GSA 1 Alboran; light grey: GSA 6 Northern Spain; electric blue: GSA 17 Northern Adriatic; pink: GSA 22 Aegean. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Fig. 1 in Ascaridoid parasites in European sardine throughout the annual cycle: Variability in parasitic load according to host stock features
Fig. 1. Map of the European sardine (Sardina pilchardus) stocks sampled along its distribution (in dark grey) by subareas (FAO divisions in the Atlantic and GFCM - GSAs (into FAO Major Fishing Area 37 in the Mediterranean)). Orange: FAO Division 27.9. a Portuguese Waters - East; blue: GSA 1 Alboran; light grey: GSA 6 Northern Spain; electric blue: GSA 17 Northern Adriatic; pink: GSA 22 Aegean. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Fig. 2 in Ascaridoid parasites in European sardine throughout the annual cycle: Variability in parasitic load according to host stock features
Fig. 2. Ascaridoid nematodes observed under the UV-press method. A) A specimen of Anisakis simplex (s.s.) and B) four individuals of Hysterothylacium aduncum found in sardines from the Atlantic stock (FAO Division 27.9. a Portuguese Waters – East).
Fig. 4. A in Ascaridoid parasites in European sardine throughout the annual cycle: Variability in parasitic load according to host stock features
Fig. 4. A. Seasonal variations in the frequency of the reproductive developmental stages (those defined by Brown-Peterson et al., 2011) of European sardine (Sardina pilchardus) in the stocks analysed. B. Presence and absence of parasitism by reproductive developmental stage in the stocks with ascaridoids prevalence. Atlantic: FAO Division 27.9. a Portuguese Waters - East; Alboran: GSA 1; Northern Spain: GSA 6; Northern Adriatic: GSA 17; Aegean: GSA 22. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Maternal smoking DNA methylation risk score associated with health outcomes in offspring of European and South Asian ancestry
<p>These are a collection of EWAS summary statistics for the following publication:</p> <p>Deng Wei Q, Cawte Nathan, Campbell Natalie, Azab Sandi M, de Souza Russell J, Lamri Amel, Morrison Katherine M, Atkinson Stephanie A, Subbarao Padmaja, Turvey Stuart E, Moraes Theo J, Teo Koon K, Mandhane Piush, Azad Meghan B, Simons Elinor, Pare Guillaume, Anand Sonia S (2024) Maternal smoking DNA methylation risk score associated with health outcomes in offspring of European and South Asian ancestry eLife 13:RP93260, https://doi.org/10.7554/eLife.93260.3</p> <p>1. CHILD_450K_R1_March2024_mateversmk_Regression_CpGWide.csv</p> <p>Maternal smoking using ever definition in CHILD (HM450K array).</p> <p>2. CHILD_450K_R1_March2024_matsmoke_Regression_CpGWide.csv</p> <p>Maternal smoking using current smoking definition in CHILD (HM450K array).</p> <p>3. CHILD_450K_R1_March2024_mblsmkexp_Regression_CpG_Wide.csv</p> <p>Maternal smoking exposure (hours per week) in CHILD (HM450K array).</p> <p>4. FAMILY_EPIC_R1_March2024_mateversmk_Regression_CpGWide.csv</p> <p>Maternal smoking using ever definition in FAMILY (customized EPIC array).</p> <p>5. FAMILY_EPIC_R1_March2024_matsmoke_Regression_CpGWide.csv</p> <p>Maternal smoking using current smoking definition in FAMILY (customized EPIC array).</p> <p>6. FAMILY_EPIC_R1_March2024_mblsmkexp_Regression_CpG_Wide.csv</p> <p>Maternal smoking exposure (hours per week) in FAMILY (customized EPIC array).</p> <p>7. START_450K_R1_March2024_mblsmkexp_Regression_CpG_Wide.csv</p> <p>Maternal smoking exposure (hours per week) in START (HM450K array).</p> <p>8. mateversmk_meta_annot_R1.csv</p> <p>Meta-analyzed european EWAS of maternal smoking using ever definition.</p> <p>9. matsmoke_meta_annot_R1.csv</p> <p>Meta-analyzed european EWAS of maternal smoking using current smoking definition.</p> <p>10. mblsmkexp_meta_annot_R1.csv</p> <p>Meta-analyzed european EWAS of maternal smoking exposure (hours per week).</p>
Fig. 9 in Frasnian-Famennian extinction and recovery of rhynchonellid brachiopods from the East European Platform
Fig. 9. Transverse serial sections of Ripidiorhynchus livonicus (Buch, 1834) from the early Frasnian of the Main Devonian Field, northwestern Russia. Numbers refer to distances in mm from the top of the ventral umbo. A. CNIGR 1/13076. B. Longitudinal section. CNIGR 2/13076, Chudovo beds, Vybuty rapids, Velikaya River, Pskov region. C. CNIGR 3/13076, Dubnik beds, quarry near town Stary Izborsk, Pechory district.
Fig. 7 in Frasnian-Famennian extinction and recovery of rhynchonellid brachiopods from the East European Platform
Fig. 7. Transverse serial sections of Ripidiorhynchuschencinensis sp. nov. from the Givetian, Jaźwica Mbr., Góra Zamkowa, Poland. Numbers refer to distances in mm from the top of the ventral umbo. A. GIUS 4−216/R−10−2. B. Longitudinal section of GIUS 4−216/R−10−3.
Fig. 6 in Frasnian-Famennian extinction and recovery of rhynchonellid brachiopods from the East European Platform
Fig. 6. Ripidiorhynchus chencinensis sp. nov. from the late Givetian of Poland. A–D. Holotype, GIUS 4−216/R−10 in ventral, dorsal, lateral, and anterior views, × 1.5. E–H. Juvenile shell GIUS 4−216/R−10−1 in ventral, dorsal, lateral, and anterior views, × 1.5. Jaźwica Mbr., Góra Zamkowa.
Fig. 10. A–I in Frasnian-Famennian extinction and recovery of rhynchonellid brachiopods from the East European Platform
Fig. 10. A–I. Ripidiorhynchushuotinus (Verneuil, 1845). A–D. CNIGR 763/4572 from the early Famennian, Zadonsk Horizon, central regions of Russia, in ventral, dorsal, anterior, and lateral views. Sosna River basin. E–I.CNIGR 4/13076, ventral, dorsal, lateral, posterior, and anterior views. Kamenka village. J–Q. Ripidiorhynchusgriasicus (Nalivkin, 1934), from early Famennian, Elets Horizon, Sosna River basin. J–M. Neotype. CNIGR 266/4572, ventral, dorsal, anterior, and lateral views. N–Q. CNIGR1046/4572, ventral, lateral, dorsal, and anterior views. R–U. Ripidiorhynchuscernosemicus (Nalivkin, 1934) CNIGR 862/4572, ventral, dorsal, anterior, and lateral views. Early Famennian, Zadonsk Horizon, Sosna River basin. All × 1.5.
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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.