Find research datasets worth reusing
Search datasets from major research repositories and use ShareScore to quickly assess how well each record supports discovery, access, and reuse.
49
datasets available to search
ShareScore release 0.9.0
Dataset results
49 results for “Spiruridae”
Fig. 1 in Pathological findings associated with Dipetalonema spp. (Spirurida, Onchocercidae) infection in two species of Neotropical monkeys from Brazil
Fig. 1 Gross lesions in Alouatta guariba clamitans and Sapajus nigritus monkeys infected by Dipetalonema spp. (a; case 2) Thoracic cavity with multifocal areas of fibrous adhesions in the visceral and parietal pleura associated with filarial nematodes (arrowhead) in an individual with polyserositis. (b; case 12) Thoracic cavity with proliferation of fibrous connective tissue in the visceral pleura causing adhesions in the lung. (c; case 7) Liver, marked proliferation of fibrous connective tissue in the form of fringes over the organ capsule. (d; case 13) Abdominal cavity, filarial nematodes in the mesentery. (e; case 13) Heart with epicardium presenting pale multifocal areas, and moderate adherence by fibrous and fibrinous serositis associated with filarial nematodes. (f; case 20) Small intestine with entrapment of intestinal segment by focal area of fibrosis with fibrous polyserositis caused by filarial nematodes
Fig. 2 in Cercopithifilaria rugosicauda (Spirurida, Onchocercidae) in a roe deer and ticks from southern Italy
Fig. 2. First-stage larvae (L1) of Cercopithifilaria rugosicauda retrieved in a skin snip of a roe deer (scale-bar = 50 µm).
Fig. 3 in Cercopithifilaria rugosicauda (Spirurida, Onchocercidae) in a roe deer and ticks from southern Italy
Fig. 3. Infective third-stage larvae (L3) of Cercopithifilaria rugosicauda found in a dissected nymph of Ixodes ricinus. (A) Cephalic region (scale-bar = 20 µm): note the shallow oral cavity lacking buccal capsule. (B) Caudal region (scale-bar = 20 µm): note the presence of three lappets, two conical lateral and one rounded central.
Fig. 1 in Cercopithifilaria rugosicauda (Spirurida, Onchocercidae) in a roe deer and ticks from southern Italy
Fig. 1. Female Cercopithifilaria rugosicauda. (A) Anterior part, lateral view. (B) Vagina, lateral view; note the oesophago-intestinal junction. (C) Tail, lateral view. (D) Tail extremity, ventral view; note ventral protuberances (arrow). Scale-bars in micrometers.
Fig. 4 in Cercopithifilaria rugosicauda (Spirurida, Onchocercidae) in a roe deer and ticks from southern Italy
Fig. 4. Phylogeny of filarioid Onchocercidae based on cox1 (a) and 12S rDNA (b) gene sequences under Maximum Likelihood method, using 8000 replicates bootstrap values. The trees were rooted against Thelazia callipaeda (out-group).
Fig. 4 in The life cycle of the reptile-inhabiting nematode Abbreviata hastaspicula (Spirurida: Physalopteridae: Physalopterinae) in Australia
Fig. 4. Adult female Abbreviata hastaspicula. AE, anterior end; ME, muscular oesophagus; GE, glandular oesophagus; TV, tubular vulva; UB, eggs in the 4 uterine branches; A, anus; T, tail.
Fig. 3 in The life cycle of the reptile-inhabiting nematode Abbreviata hastaspicula (Spirurida: Physalopteridae: Physalopterinae) in Australia
Fig. 3. Male Abbreviata hastaspicula. (A) Posterior end, dorsoventral view, where S is the spicule. (B) T is the tip of right spicule, lateral view.
Fig. 5 in The life cycle of the reptile-inhabiting nematode Abbreviata hastaspicula (Spirurida: Physalopteridae: Physalopterinae) in Australia
Fig. 5. Section of stomach of Varanus Gouldii with an adult Abbreviata hastapicula. AT, apical tooth of A. hastaspicula.
Fig. 6 in The life cycle of the reptile-inhabiting nematode Abbreviata hastaspicula (Spirurida: Physalopteridae: Physalopterinae) in Australia
Fig. 6. The postulated complete life cycle of Abbreviata hastapicula. Thick arrows indicated the life cycle in the final host (life cycle elucidated in this paper): Firstly, eggs passed from the faeces of the larger lizards. Secondly, eggs containing first stage lava (e) are ingested by suitable arthropod intermediate hosts (e.g. Teleogryllus oceanicus), and the 1st stage larva developed into 3rd stage larva/larvae then encysted on the guts of arthropod intermediate hosts. Lastly, arthropod intermediate hosts are consumed by final/definitive host (larger lizard). Or alternatively, as shown by the dashed arrows (this is not yet confirmed), if the life cycle is achieved through paratenic hosts, the arthropod intermediate hosts would be consumed by the paratenic host (smaller lizards), and the infective larva(e) persist without essential development or growth until it is consumed by the final host (larger lizards).
Fig. 2 in The life cycle of the reptile-inhabiting nematode Abbreviata hastaspicula (Spirurida: Physalopteridae: Physalopterinae) in Australia
Fig. 2. Female Abbreviata hastaspicula. (A) tubular vulva, laying eggs, dorsal view. (B) Embryonated eggs in the uterus.
Fig. 1. A in The life cycle of the reptile-inhabiting nematode Abbreviata hastaspicula (Spirurida: Physalopteridae: Physalopterinae) in Australia
Fig. 1. A large number of Abbreviata hastapicula were found in the stomach of a control Varanus gouldii.
Fig. 3 in Morphological and molecular characterization of adults and larvae of Crassicauda spp. (Nematoda: Spirurida) from Mediterranean fin whales Balaenoptera physalus (Linnaeus, 1758)
Fig. 3. Features of the larvae isolated from fin whales. a, b, anterior end of larvae included in intestinal nodules, showing cephalic papillae and excretory pore (a, lateral view, bar = 35 μm; b, dorsoventral view, bar = 50 μm). c, tail of the same larvae, showing the cloacal pore (bar = 60 μm). d, anterior end of larvae from the mesenteric arteries, showing bulging of the triangular-shaped head (lateral view, bar = 30 μm); e, tail of the same larvae with intestinal tube evident, ending in the cloacal opening (bar = 60 μm). f, anterior end of larvae found free within intestinal lumen, showing triangular shape of the anterior region, with cephalic papillae, buccal cavity and excretory pore (lateral view, bar = 25 μm); g, h, posterior end of the same larvae, showing either presence of a cloaca with multiple papillae (g, bar = 50 μm) or a genital pore (h, bar = 80 μm); i, anterior end of adult C. boopis, displaying triangular shaped lips and labial and cephalic papillae (sublateral view, bar = 50 μm).
Fig. 5 in Morphological and molecular characterization of adults and larvae of Crassicauda spp. (Nematoda: Spirurida) from Mediterranean fin whales Balaenoptera physalus (Linnaeus, 1758)
Fig. 5. Maximum likelihood tree (Log-likelihood: −1359.826) obtained from cox1 alignment. The tree was arbitrarily rooted on midpoint. Bootstrap support values (≥50%) are provided near the corresponding node. The scale bar represents 0.2 substitutions/site. Newly determined sequences are in bold.
Fig. 4 in Morphological and molecular characterization of adults and larvae of Crassicauda spp. (Nematoda: Spirurida) from Mediterranean fin whales Balaenoptera physalus (Linnaeus, 1758)
Fig. 4. Maximum likelihood tree (Log-likelihood: −1044.368) obtained from ITS2 alignment. The tree was rooted on midpoint. Bootstrap support values (≥50%) are provided near the corresponding node. The scale bar represents 0.02 substitutions/site. Newly determined sequences are in bold.
Fig. 1 in Characterization of aortic and brachiocephalic filariasis by Filarioidea sp (Nematoda:Spirurida:Filarioidea) in Mexican ramphastids
Fig. 1. Lesions associated with filariasis in ramphastid birds submitted to the Research and Diagnostic Laboratory for Avian Diseases, College of Veterinary Medicine- UNAM. (A) Cardiopulmonary system with severe thickening of the aortic trunk (arrow), and moderate hypertrophy of the left ventricle. (B) Heart with severe thickening of the aortic and brachiocephalic trunk (arrows), and left cardiac ventricle hypertrophy. (C) Photomicrography of the heart, in the lumen of the left auricle, there are numerous microfilariae, erythrocytes, and thrombocytes. Hematoxylin-eosin (H& E) stain, bar: 50 μm. (D) Photomicrography of a longitudinal section of the aorta artery. The wall is severely enlarged due to abundant presence of connective tissue, chondroid metaplasia, and adult filariae in a cross section (arrows). In the filarial section, cuticle, coelomic musculature, and a gravid uterus are observed. H&E stain, bar: 500 μm. (E) Photomicrography of the aortic wall (arrow); cross section of an adult, female filaria, surrounded by extensive areas of chondroid metaplasia and connective tissue. H&E stain, bar: 200 μm.
Fig. 3. Bayesian phylogenetic tree using the 12S in Characterization of aortic and brachiocephalic filariasis by Filarioidea sp (Nematoda:Spirurida:Filarioidea) in Mexican ramphastids
Fig. 3. Bayesian phylogenetic tree using the 12S mitochondrial sequences for different species of filariae. The number of the nodes indicate the values of support or posterior probability.
Fig. 2 in Characterization of aortic and brachiocephalic filariasis by Filarioidea sp (Nematoda:Spirurida:Filarioidea) in Mexican ramphastids
Fig. 2. (A) Mid-section of a filarial specimen. (B) Lateral view of the distal end of a male filaria. Primordial spicules in the copulatory bursa, distinctive of the gender, are observed (arrow).
Fig. 1 in Eyeworms of wild birds and new record of Thelazia (Thelaziella) aquilina (Nematoda: Spirurida)
Fig. 1. Thelazia (Thelaziella) aquilina on the cornea of an adult female Harpia harpyja in Amazonia region (Brazil).
Fig. 3 in Eyeworms of wild birds and new record of Thelazia (Thelaziella) aquilina (Nematoda: Spirurida)
Fig. 3. Morphology of Thelazia (Thelaziella) aquilina male: a) Posterior end, male, lateral view, spicules; b) Posterior end, right spicule and distal portion of the left spicule; c) Right spicule and gubernaculum (arrowhead); Distal portion of the right spicule, bulbar expansion with transparent hyaline membrane (arrows); d) Posterior end, male, ventral view, spicules and papillae pre (arrowhead) and post-cloacal (arrows).
Fig. 2. a in Eyeworms of wild birds and new record of Thelazia (Thelaziella) aquilina (Nematoda: Spirurida)
Fig. 2. a) Morphology of Thelazia (Thelaziella) aquilina male after extraction from the conjunctival sac; b) Anterior part of male; c) Cephalic extremity, male, lateral view, buccal cavity hexagonal (arrows); d) anterior part in lateral view, portion oesophagus lumen (arrows) and striations (arrowhead) around anterior end.
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.