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.
280
datasets available to search
ShareScore release 0.9.0
Dataset results
280 results for “endoparasites”
Fig. 2 in A new species of Centrorhynchus (Acanthocephala, Centrorhynchidae) endoparasite of Guira guira (Aves, Cuculidae) from Argentina
Fig. 2. SEM micrographs of Centrorhynchus guira n. sp.: a - proboscis armament, lateral view; b - proboscis armament, apical view, showing longitudinal rows with 19 hooks per row (arrow); c - female, posterior end; d - male, posterior end with everted copulatory bursa; e - internal anatomy showing an apparent segmentation.
Fig. 1 in A new species of Centrorhynchus (Acanthocephala, Centrorhynchidae) endoparasite of Guira guira (Aves, Cuculidae) from Argentina
Fig. 1. Microphotographs of Centrorhynchus guira n. sp. a - proboscis armament; b - detail of transitional hooks; c - female, reproductive system; d - female, posterior end; e - male, posterior end with everted copulatory bursa; f - detail of uterine bell; g - detail of uterus; h - vagina showing 2 sphincters; i - egg, superficial view; j - egg, detail of acanthor and middle shell without polar prolongations.
Data for: The rediscovery of the putative ant social parasite Manica parasitica syn. nov. (Hymenoptera: Formicidae) reveals an unexpected endoparasite syndrome
Open the record for dataset details and reuse information.
Data from: Does urbanization ameliorate the effect of endoparasite infection in kangaroo rats?
<p>Urban development can fragment and degrade remnant habitat. Such habitat alterations can have profound impacts on wildlife, including effects on population density, parasite infection status, parasite prevalence, and body condition. We investigated the influence of urbanization on populations of Merriam's kangaroo rat (<i>Dipodomys merriami</i>) and their parasites. We predicted that urban development would lead to reduced abundance, increased parasite prevalence in urban populations, increased probability of parasite infection for individual animals, and decreased body condition of kangaroo rats in urban versus wildland areas. We live trapped kangaroo rats at 5 urban and 5 wildland sites in and around Las Cruces, NM, USA from 2013-2015, collected fecal samples from 209 kangaroo rats, and detected endoparasites using fecal flotation and molecular barcoding. Seven parasite species were detected, although only two, parasitic worms <i>Mastophorus dipodomis</i> and <i>Pterygodermatites dipodomis</i>, occurred frequently enough to allow for statistical analysis. We found no effects of urbanization on population density or probability of parasite infection. However, wildland animals infected with <i>P. dipodomis</i> had lower body condition scores than infected animals in urban areas or uninfected animals in either habitat. Our results suggest that urban environments may buffer Merriam's kangaroo rats from the detrimental impacts to body condition that <i>P. dipodomis</i> infections can cause. </p>
Fig. 1 in Devonian pearls and ammonoid-endoparasite co-evolution
Fig. 1. Terminology and measurements. For more information on the specimens see Figs. 2 and 5.
Integrative taxonomy, larval biology and functional morphology of the little known gall-forming coral endoparasite Petrarca (Thecostraca: Ascothoracida)
<p><em><span>Petrarca</span></em><span> is an ascothoracidan endoparasite in scleratinian dendrophyllid corals</span><span>. <em>Petrarca</em> can stimulate coral growth, forming a gall chamber to house itself inside the coral skeleton. The diversity, molecular phylogeny and feeding ecology of <em>Petrarca</em> are understudied. This is the first study of Petrarca to be based on light and scanning electron microscopy to document the fine-scale external and functional morphology of its trophi and other structures. A combined molecular and morphological approach revealed at least four closely related species of <em>Petrarca</em>, <em>P. goanna</em>, <em>P. morula</em>, <em>Petrarca nozawai </em>sp. nov. and <em>Petrarca rubus</em> sp. nov in <em>Turbinaria</em> and <em>Astreopora</em> corals in Asia. Carapace shape and fine morphology, ultrastructure of the antennular aesthetasc, morphological characteristics of the trophi and the shape and size of the penis rami are diagnostic characters. Several morphological characters, </span><span>which are all probably synapomorphies, have been proposed to distinguish the genus <em>Petrarca</em> from other Ascothoracida. M</span><span>outhparts morphology of </span><span><em>Petrarca</em> </span><span>are developed for cutting and chewing, rather than for piercing and sucking as in many other Ascothoracida. </span><span>The external surface of the carapace of<em> Petrarca</em> is ornamented with densely packed secretory papillae used putatively for the chemical dissolution of the substrate necessary for the formation of the gall chamber.</span></p>
Integrative taxonomy, larval biology and functional morphology of the little known gall-forming coral endoparasite Petrarca (Thecostraca: Ascothoracida)
Open the record for dataset details and reuse information.
Data from: Does urbanization ameliorate the effect of endoparasite infection in kangaroo rats?
Open the record for dataset details and reuse information.
FIGURES 1–4. Oochoristica noronhae n in New species of Oochoristica (Cestoda; Linstowiidae) and other endoparasites of Trachylepis atlantica (Sauria: Scincidae) from Fernando de Noronha Island, Brazil
FIGURES 1–4. Oochoristica noronhae n. sp. 1. Scolex. 2. Mature progottid. 3. Oncosphere. 4. Terminal, gravid proglottid. Scale bar in micrometers.
FIGURE 12 in Hidden diversity of endoparasitic eriophyoid mites: two new Novophytoptus Roivainen, 1947 (Acari: Eriophyoidea: Phytoptidae) species from the parenchymatous tissues of rushes (Juncaceae)
FIGURE 12. DIC images of genital region of Novophytoptus maritimus n. sp. showing difference in the thickness of opisthosomal setae in females (A,B) and males (C). Scale bar = 15 Μm.
FIGURE 11 in Hidden diversity of endoparasitic eriophyoid mites: two new Novophytoptus Roivainen, 1947 (Acari: Eriophyoidea: Phytoptidae) species from the parenchymatous tissues of rushes (Juncaceae)
FIGURE 11. DIC images of legs and tarsal appendages of normal (A,B) and aberrant (C,D) females of Novophytoptus maritimus n. sp. А—dorsal view of leg I and II on the level of ω I and II in focus; B—empodia I and II (same mite as on Fig. A); C, D—aberrant tarsus I, with ω I displaced medially and seta ft' short and stout. Note: on Fig. C tarsus is coloured in red and tibia is coloured in green. Scale bar: A = 15 Μm; B = 10 Μm; C, D = 5 Μm.
FIGURE 10 in Hidden diversity of endoparasitic eriophyoid mites: two new Novophytoptus Roivainen, 1947 (Acari: Eriophyoidea: Phytoptidae) species from the parenchymatous tissues of rushes (Juncaceae)
FIGURE 10. DIC images showing variation of prodorsal shield ornamentation in females (A−G) and males (H,I) of Novophytoptus maritimus n. sp. Scale bar: A–I = 15 Μm.
FIGURE 7 in Hidden diversity of endoparasitic eriophyoid mites: two new Novophytoptus Roivainen, 1947 (Acari: Eriophyoidea: Phytoptidae) species from the parenchymatous tissues of rushes (Juncaceae)
FIGURE 7. DIC images of telosome regions of Novophytoptus aculeatus Pye 2012 (A−D) and Novophytoptus luzulis n. sp. (E−G) Note: arrows indicate setae h1. Scale bar = 10 Μm.
FIGURE 6 in Hidden diversity of endoparasitic eriophyoid mites: two new Novophytoptus Roivainen, 1947 (Acari: Eriophyoidea: Phytoptidae) species from the parenchymatous tissues of rushes (Juncaceae)
FIGURE 6. DIC images of female external genitalia of Novophytoptus luzulis n. sp. (A–С) and Novophytoptus maritimus n. sp. (D–G). Note: arrows indicate a pair of pores (presumably external openings of spermathecal tubes). Scale bar: A–C = 5 Μm; D–G = 6 Μm.
FIGURE 5 in Hidden diversity of endoparasitic eriophyoid mites: two new Novophytoptus Roivainen, 1947 (Acari: Eriophyoidea: Phytoptidae) species from the parenchymatous tissues of rushes (Juncaceae)
FIGURE 5. Schematic drawings of Novophytoptus luzulis n. sp. (A–I) and Novophytoptus maritimus n. sp. (J–R): prodorsal shields (A,M), antero-ventral part of body (B,J); legs I (D,K); legs II (C,L); empodia I (E,O); empodia II (G,Q); tarsal solenidia I (F,P); tarsal solenidia II (H,R); male empodia I (I,N). Note: all images except I and N represent females. Scale bar: A, M=15; B, J=25; С, D, K, L=15; E–H and N–R=10.
FIGURE 13 in Hidden diversity of endoparasitic eriophyoid mites: two new Novophytoptus Roivainen, 1947 (Acari: Eriophyoidea: Phytoptidae) species from the parenchymatous tissues of rushes (Juncaceae)
FIGURE 13. DIC (A–C) and CLSM (D–H) images of internal genitalia of Novophytoptus aculeatus Pye 2012 (A,B), Novophytoptus maritimus n. sp. (C, F–H) vs. Novophytoptus luzulis n. sp. (D,E). Scale bar: A, B = 5 µm; C–H = 8 µm.
FIGURE 9 in Hidden diversity of endoparasitic eriophyoid mites: two new Novophytoptus Roivainen, 1947 (Acari: Eriophyoidea: Phytoptidae) species from the parenchymatous tissues of rushes (Juncaceae)
FIGURE 9. Damage symptoms caused by Novophytoptus luzulis n. sp. on leaves of Luzula pilosa. A, С—necrosis of mesophyll (arrows) in the infested area of leaves; B—infested plant.
FIGURE 4 in Hidden diversity of endoparasitic eriophyoid mites: two new Novophytoptus Roivainen, 1947 (Acari: Eriophyoidea: Phytoptidae) species from the parenchymatous tissues of rushes (Juncaceae)
FIGURE 4. SEM images of Novophytoptus luzulis n. sp. (females). A–F—images showing connection area between basal gnathosoma and anterior extremity of prodorsal shield; G—epigynium; H—entire mite (dorsal aspect); I—empodium I. Note: prodorsal shield is coloured in green, basal part of chelicerae and associated gnathosomal structures are coloured in pink. Scale bar: A–D = 5 Μm; E, F, G = 10 Μm; H = 100 Μm; I = 2 Μm.
FIGURE 3 in Hidden diversity of endoparasitic eriophyoid mites: two new Novophytoptus Roivainen, 1947 (Acari: Eriophyoidea: Phytoptidae) species from the parenchymatous tissues of rushes (Juncaceae)
FIGURE 3. DIC images of female coxosternal regions of Novophytoptus aculeatus Pye 2012 (A–C) and Novophytoptus luzulis n. sp. (D–F). Note: white arrows indicate the posterior triangular plate of the prosternal apodeme. Scale bar: 5 Μm.
FIGURE 2 in Hidden diversity of endoparasitic eriophyoid mites: two new Novophytoptus Roivainen, 1947 (Acari: Eriophyoidea: Phytoptidae) species from the parenchymatous tissues of rushes (Juncaceae)
FIGURE 2. DIC images of empodia of Novophytoptus aculeatus Pye 2012 (A–C) and Novophytoptus luzulis n. sp. (D–F). Scale bar = 7 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.